Ethylene Glycol Poisoning

Ethylene glycol poisoning follows ingestion of antifreeze, de-icing fluid or other ethylene-glycol-containing products, taken deliberately, accidentally, or as a substitute intoxicant. The parent alcohol is only mildly intoxicating. The damage is done by its metabolites: alcohol dehydrogenase oxidises ethylene glycol to glycolaldehyde and then to glycolic acid, which drives a severe anion gap metabolic acidosis, and finally to oxalic acid, which precipitates with calcium as insoluble calcium oxalate crystals in the renal tubules and produces acute kidney injury. Because the toxicity is metabolic rather than direct, the antidote is an enzyme inhibitor rather than a chelator or a receptor blocker, and giving it early enough prevents the renal injury outright.

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5
Pathophys.
9
Phenotypes
18
Pathograph
3
Medical Actions
1
Deep Research
⚙

Pathophysiology

5
Ethylene Glycol Ingestion and Alcohol Dehydrogenase Bioactivation
Ingested ethylene glycol is oxidised by alcohol dehydrogenase to glycolaldehyde and onward to glycolic and oxalic acid. The parent alcohol is only mildly intoxicating; the toxicity belongs to the metabolites. That is what makes this a bioactivation poisoning rather than a direct one, and it is why an enzyme inhibitor works as an antidote while removing the parent compound alone does not.
alcohol dehydrogenase (NAD+) activity GO:0004022 Gene Ontology (GO) Relation: this pathophysiological event involves this molecular function This pathophysiological event involves increased alcohol dehydrogenase (NAD+) activity (GO:0004022). GO:0004022 is a molecular function from the Gene Ontology. ↑ INCREASED
Show evidence (1 reference)
PMID:18045860 SUPPORT Other
"The effects of these substances, except for isopropanol and possibly alcoholic ketoacidosis, are due to their metabolites, which can cause metabolic acidosis and cellular dysfunction."
States that the toxicity belongs to the metabolites rather than the parent alcohols, which is the claim this node is built on.
Glycolic Acid Accumulation and High Anion Gap Metabolic Acidosis
Glycolic acid accumulates and consumes bicarbonate, producing the high anion gap acidosis that dominates early presentation. The osmolal gap moves the other way in time: it is highest while unmetabolised alcohol is still present, and falls as the anion gap rises. A patient sampled late can have a normal osmolal gap and a large anion gap, and a patient sampled early the reverse, which is why either alone can mislead.
Show evidence (1 reference)
PMID:18045860 SUPPORT Other
"Accumulation of the alcohols in the blood can cause an increment in the osmolality, and accumulation of their metabolites can cause an increase in the anion gap and a decrease in serum bicarbonate concentration."
Separates the osmolal gap, which tracks the parent alcohol, from the anion gap, which tracks the metabolites - the basis for the timing caveat in this node's description.
Oxalic Acid Production and Calcium Oxalate Crystal Deposition
Oxalate is the terminal metabolite. It precipitates with calcium as insoluble calcium oxalate in the renal tubules. Plasma and urinary oxalate outlast the parent alcohol by days: in a reported case the parent compound was cleared within 36 hours by dialysis while plasma oxalate peaked on day 3 and did not normalise until day 7. The crystal burden is therefore still being laid down after the poison itself has gone.
proximal tubule UBERON:0004134 Uberon multi-species anatomy ontology (UBERON) Relation: this pathophysiological event occurs in this anatomical location This pathophysiological event occurs in proximal tubule (UBERON:0004134). UBERON:0004134 is an anatomical location from the Uberon multi-species anatomy ontology.
Show evidence (2 references)
PMID:18696123 SUPPORT Human Clinical
"Both lead to calcium-oxalate oversaturation and hence to the risk of local (renal) or systemic crystal deposition."
Links raised plasma and urinary oxalate to calcium oxalate oversaturation and crystal deposition.
PMID:18696123 SUPPORT Human Clinical
"The plasma oxalate level, however, rose to a maximum of 89 micromol/l (normal <6.3 +/- 1.1) on day 3 and only normalized on day 7 after ingestion."
Gives the kinetics behind the claim that oxalate outlasts the parent alcohol, which is why crystal injury continues after the alcohol is cleared.
Proximal Tubular Epithelial Cell Death
Death of proximal tubular epithelium. The killing agent is the crystal, not the ion: calcium oxalate monohydrate crystals produce membrane damage and cell death in human proximal tubule cells, while oxalate held in solution and prevented from crystallising does not. Acidosis potentiates that crystal cytotoxicity, so the two arms of this poisoning are not independent - the glycolic acid load makes the oxalate crystals more lethal to the same cells. Glycolate itself does not potentiate it.
kidney proximal tubule epithelial cell CL:0002306 Cell Ontology (CL) Relation: this pathophysiological event involves this cell type This pathophysiological event involves kidney proximal tubule epithelial cell, annotated with epithelial cell of proximal tubule (CL:0002306). CL:0002306 is a cell type from the Cell Ontology.
cell death GO:0008219 Gene Ontology (GO) Relation: this pathophysiological event involves this biological process This pathophysiological event involves increased cell death (GO:0008219). GO:0008219 is a biological process from the Gene Ontology. ↑ INCREASED apoptotic process GO:0006915 Gene Ontology (GO) Relation: this pathophysiological event involves this biological process This pathophysiological event involves increased apoptotic process (GO:0006915). GO:0006915 is a biological process from the Gene Ontology. ↑ INCREASED
Show evidence (2 references)
PMID:15695020 SUPPORT In Vitro
"These results demonstrate that COM crystals, and not the oxalate ion, are responsible for the membrane damage and cell death observed in normal human and rat PT cells"
Discriminates crystal from ion as the cytotoxic species in human proximal tubule cells, which is what makes crystal deposition the causal step rather than a marker of oxalate load.
PMID:15695020 SUPPORT In Vitro
"The cytotoxic effects of COM to HPT cells were potentiated by acidosis (pH 6.5), but not by glycolate, the major metabolite of ethylene glycol."
Establishes that the acidosis arm potentiates the crystal arm, which is why this entry does not treat the two downstream branches as independent. Also excludes glycolate itself as the potentiating agent.
Acute Kidney Injury
Falling glomerular filtration rate following tubular injury. This is the module's effector, and here the acute time course matches it exactly.
kidney UBERON:0002113 Uberon multi-species anatomy ontology (UBERON) Relation: this pathophysiological event occurs in this anatomical location This pathophysiological event occurs in kidney (UBERON:0002113). UBERON:0002113 is an anatomical location from the Uberon multi-species anatomy ontology.
Show evidence (1 reference)
PMID:18045860 SUPPORT Other
"In addition to metabolic acidosis, acute renal failure and neurologic disease can occur in some of the intoxications."
Names acute renal failure as an outcome of this class of intoxication, alongside the acidosis modelled upstream.
⬡

Pathograph

Use the checkboxes to hide or show graph categories. Hover nodes for evidence and cross-linked metadata.
Pathograph: causal mechanism network for Ethylene Glycol Poisoning Interactive directed graph showing how pathophysiology mechanisms, phenotypes, genetic factors and variants, experimental models, environmental triggers, and treatments relate through causal and linked edges.
●

Phenotypes

9
Genitourinary 4
Acute kidney injury HP:0001919 Human Phenotype Ontology (HP) Relation: this clinical feature is this phenotype This clinical feature is Acute kidney injury (HP:0001919), qualified as temporality acute. HP:0001919 is a phenotype from the Human Phenotype Ontology.
Temporal: ACUTE
Show evidence (1 reference)
PMID:36765419 SUPPORT Other
"The incidence of AKI varies between 30 and 70%"
The reported incidence range for the renal endpoint of this poisoning.
Nephrocalcinosis HP:0000121 Human Phenotype Ontology (HP) Relation: this clinical feature is this phenotype This clinical feature is Nephrocalcinosis (HP:0000121). HP:0000121 is a phenotype from the Human Phenotype Ontology.
Show evidence (1 reference)
PMID:18696123 SUPPORT Human Clinical
"alkaline citrate was given as a preventive measure to increase urinary oxalate solubility, but nephrocalcinosis still developed."
Documents nephrocalcinosis occurring despite a measure aimed at preventing it, in a reported poisoning.
Hyperoxaluria HP:0003159 Human Phenotype Ontology (HP) Relation: this clinical feature is this phenotype This clinical feature is Hyperoxaluria (HP:0003159). HP:0003159 is a phenotype from the Human Phenotype Ontology.
Show evidence (1 reference)
PMID:18696123 SUPPORT Human Clinical
"urinary oxalate excretion was elevated (maximum 1.16 mmol/1.73 m(2)/24 h)"
Measured urinary oxalate excretion in a reported poisoning.
Crystalluria HP:0020074 Human Phenotype Ontology (HP) Relation: this clinical feature is this phenotype This clinical feature is Crystalluria (HP:0020074). HP:0020074 is a phenotype from the Human Phenotype Ontology.
Show evidence (1 reference)
PMID:36765419 SUPPORT Human Clinical
"Diagnosed by plasma EG concentration in 24 patients, and by urinary calcium oxalate crystals in 6 patients"
Names urinary calcium oxalate crystals in patients, which is what this phenotype asserts. An earlier draft cited a sentence about nephrocalcinosis here; renal parenchymal deposition is not crystals in the urine, and that sentence remains correct only where it sits on the Nephrocalcinosis phenotype.
Metabolism 2
Metabolic acidosis HP:0001942 Human Phenotype Ontology (HP) Relation: this clinical feature is this phenotype This clinical feature is High anion gap metabolic acidosis, annotated with Metabolic acidosis (HP:0001942), qualified as temporality acute. HP:0001942 is a phenotype from the Human Phenotype Ontology.
Temporal: ACUTE
Show evidence (1 reference)
PMID:36765419 SUPPORT Other
"As EG is metabolized, metabolic acidemia appears after a latent period of approximately 3–6 h after ingestion."
Establishes the acidaemia and its timing relative to ingestion.
Hypocalcemia HP:0002901 Human Phenotype Ontology (HP) Relation: this clinical feature is this phenotype This clinical feature is Hypocalcemia (HP:0002901). HP:0002901 is a phenotype from the Human Phenotype Ontology.
Show evidence (2 references)
PMID:36765419 SUPPORT Human Clinical
"neither oxalate crystals in urine, urine immunofluorescence nor hypocalcemia nor a history of EG exposure alone are indications for ECTR (but may help to diagnose EG poisoning)"
Names hypocalcaemia among the features that help diagnose this poisoning in humans. This is the item that establishes the phenotype occurs; the chemistry item below explains why, and cannot carry the claim on its own. Note that PMID:18696123, also cited in this entry, reports a case in which hypocalcaemia did NOT occur, so the finding is characteristic rather than invariable.
PMID:15695020 SUPPORT INDIRECT In Vitro
"Oxalate has two forms in vivo: oxalate ions and calcium oxalate monohydrate (COM) crystals that readily form in the presence of calcium."
Mechanistic companion, not the support for the phenotype. It establishes that crystal formation consumes calcium, which is why the oxalate arm lowers serum calcium, and it is a cell-culture chemistry observation that cannot establish that the finding occurs in patients.
Nervous System 3
Confusion HP:0001289 Human Phenotype Ontology (HP) Relation: this clinical feature is this phenotype This clinical feature is Altered mental status, annotated with Confusion (HP:0001289), qualified as temporality acute. HP:0001289 is a phenotype from the Human Phenotype Ontology.
Temporal: ACUTE
Show evidence (1 reference)
PMID:29427181 SUPPORT Other
"The patient with an altered mental status or concerning history warrants consideration of this potentially deadly ingestion."
Establishes altered mental status as the presentation that should prompt consideration of this poisoning.
Coma HP:0001259 Human Phenotype Ontology (HP) Relation: this clinical feature is this phenotype This clinical feature is Coma (HP:0001259), qualified as temporality acute. HP:0001259 is a phenotype from the Human Phenotype Ontology.
Temporal: ACUTE
Show evidence (1 reference)
PMID:36765419 SUPPORT Other
"Thereafter, progressive neurotoxicity (coma, cerebral edema, cranial nerve palsies, and seizures), cardiotoxicity (tachycardia with hypertension or hypotension), respiratory distress, and AKI occur."
Names coma among the neurotoxic manifestations of the multiorgan phase.
Seizure HP:0001250 Human Phenotype Ontology (HP) Relation: this clinical feature is this phenotype This clinical feature is Seizure (HP:0001250), qualified as temporality acute. HP:0001250 is a phenotype from the Human Phenotype Ontology.
Temporal: ACUTE
Show evidence (1 reference)
PMID:36765419 SUPPORT Other
"Thereafter, progressive neurotoxicity (coma, cerebral edema, cranial nerve palsies, and seizures), cardiotoxicity (tachycardia with hypertension or hypotension), respiratory distress, and AKI occur."
Names seizures among the neurotoxic manifestations.
💊

Medical Actions

3
Fomepizole
Action: PharmacotherapyNCI Thesaurus (NCIT) Relation: this treatment is this clinical intervention This treatment is Pharmacotherapy (NCIT:C15986). NCIT:C15986 is a clinical intervention from the NCI Thesaurus. NCIT:C15986
Agent: fomepizole CHEBI:5141 Chemical Entities of Biological Interest (CHEBI) Relation: this treatment uses this therapeutic agent This treatment uses fomepizole (CHEBI:5141). CHEBI:5141 is a therapeutic agent from Chemical Entities of Biological Interest.
Platform: Small molecule
A competitive alcohol dehydrogenase inhibitor, and the first-line antidote. It acts on the bioactivation step rather than on any downstream injury, so its value is entirely a matter of timing: given before significant acidosis or organ injury it prevents renal failure outright and can remove the need for dialysis, and given late it cannot undo crystal deposition that has already happened.
Mechanism Target:
INHIBITS Ethylene Glycol Ingestion and Alcohol Dehydrogenase Bioactivation — Blocks the enzyme that converts the relatively harmless parent alcohol into the metabolites that do the damage.
Show evidence (3 references)
PMID:27147840 SUPPORT Other
"Fomepizole, a potent alcohol dehydrogenase (ADH) inhibitor, is an efficient and safe antidote that prevents or reduces toxic EG and methanol metabolism."
Names the enzyme target, which is what places this treatment on the bioactivation node rather than on the renal injury.
PMID:27147840 SUPPORT Other
"Administered early, fomepizole prevents EG-related renal failure and methanol-related visual and neurological injuries."
Supports prevention of the renal endpoint, conditional on early administration.
PMID:27147840 SUPPORT Other
"When administered prior to the onset of significant acidosis or organ injury, fomepizole may obviate the need for hemodialysis."
Records the timing dependence explicitly, which is the qualification the description rests on.
Ethanol
Action: PharmacotherapyNCI Thesaurus (NCIT) Relation: this treatment is this clinical intervention This treatment is Pharmacotherapy (NCIT:C15986). NCIT:C15986 is a clinical intervention from the NCI Thesaurus. NCIT:C15986
Agent: ethanol CHEBI:16236 Chemical Entities of Biological Interest (CHEBI) Relation: this treatment uses this therapeutic agent This treatment uses ethanol (CHEBI:16236). CHEBI:16236 is a therapeutic agent from Chemical Entities of Biological Interest.
Platform: Small molecule
The alternative alcohol dehydrogenase substrate, and the fallback antidote where fomepizole is unavailable or unaffordable. It competes for the same enzyme and so acts on the same node, but it requires infusion, concentration monitoring and management of its own intoxication, which fomepizole does not.
Mechanism Target:
INHIBITS Ethylene Glycol Ingestion and Alcohol Dehydrogenase Bioactivation — Competes with ethylene glycol for alcohol dehydrogenase, blocking bioactivation at the same step fomepizole does.
Show evidence (2 references)
PMID:18045860 SUPPORT Other
"Administration of fomepizole or ethanol to inhibit alcohol dehydrogenase, a critical enzyme in metabolism of the alcohols, is beneficial in treatment of ethylene glycol and methanol intoxication"
Names ethanol alongside fomepizole as an alcohol dehydrogenase inhibitor for this indication.
PMID:18696123 SUPPORT Human Clinical
"Under treatment by ethanol infusions to block the alcohol dehydrogenase and by hemodialysis to eliminate ethylene glycol and its toxic metabolites, this level decreased to below 15 mg/dl within 36 h."
Documents ethanol used in practice with the enzyme-blocking rationale stated, alongside dialysis.
Hemodialysis
Action: HemodialysisNCI Thesaurus (NCIT) Relation: this treatment is this clinical intervention This treatment is Hemodialysis (NCIT:C15248). NCIT:C15248 is a clinical intervention from the NCI Thesaurus. NCIT:C15248
Platform: Device
Removes the unmetabolised alcohol and its organic acid metabolites, and corrects the acidosis. It is the second arm alongside enzyme blockade, and it is what remains when the antidote arrives too late.
Mechanism Target:
INHIBITS Glycolic Acid Accumulation and High Anion Gap Metabolic Acidosis — Clears the accumulated organic acids that drive the acidosis.
Show evidence (1 reference)
PMID:18045860 SUPPORT Other
"Dialysis to remove the unmetabolized alcohol and possibly the organic acid anion can be helpful in treatment of several of the alcohol-related intoxications."
States what dialysis removes, which is why it attaches to the acid accumulation node rather than to the enzyme step.
🌍

Environmental Factors

1
Ingestion of ethylene glycol
ingestion of ethylene glycol ECTO:0000231 Environmental Conditions, Treatments and Exposures Ontology (ECTO) Relation: this environmental factor is this exposure This environmental factor is ingestion of ethylene glycol, annotated with exposure to chemical (ECTO:0000231). ECTO:0000231 is an exposure from the Environmental Conditions, Treatments and Exposures Ontology.
Hazard type: CHEMICAL
Route: ORAL
Duration: ACUTE
Bound to the substance-level ECTO:0000231. ECTO was checked for an ethylene-glycol-specific exposure class and none is resolvable through this repository's ECTO adapter (sqlite:obo:ecto); a term resolving in OLS is not sufficient, since dismech does not validate ECTO against OLS.
Antifreeze, de-icing fluid and other ethylene-glycol-containing products, taken deliberately in self-harm, accidentally by children, or as a substitute intoxicant. The products are sweet-tasting and sold without restriction, which is the reason accidental paediatric ingestion is a recurring pattern.
Show evidence (1 reference)
PMID:29427181 SUPPORT Other
"Methanol, ethylene glycol, and isopropyl alcohol are readily available in common hardware and household materials."
Establishes the availability that makes this a recurring household exposure rather than an occupational one.
Mechanism Target:
TRIGGERS Ethylene Glycol Ingestion and Alcohol Dehydrogenase Bioactivation — Ingestion delivers the substrate that alcohol dehydrogenase then activates.
Show evidence (1 reference)
PMID:29427181 SUPPORT Other
"Toxic alcohols are ingested for a variety of reasons including accidental exposures, intentional inebriation, homicide and suicide."
Documents the ingestion routes this entry models as the exposure.
🔬

Biochemical Markers

3
Plasma oxalate
Reference Ranges
0.0–6.3 micromol/L (reference range cited for this assay)
Reported in the source as normal <6.3 +/- 1.1 micromol/L. Recorded as an upper bound; the plus-or-minus is the source's own dispersion, not an interval this entry asserts.
Show evidence (2 references)
PMID:18696123 SUPPORT Human Clinical
"The plasma oxalate level, however, rose to a maximum of 89 micromol/l (normal <6.3 +/- 1.1) on day 3 and only normalized on day 7 after ingestion."
Gives the peak, the normal range and the timing, which together carry the claim that oxalate outlasts the parent alcohol.
PMID:18696123 SUPPORT Human Clinical
"Under treatment by ethanol infusions to block the alcohol dehydrogenase and by hemodialysis to eliminate ethylene glycol and its toxic metabolites, this level decreased to below 15 mg/dl within 36 h."
The parent-alcohol clearance time this oxalate course is contrasted with.
Serum anion gap
Show evidence (1 reference)
PMID:18045860 SUPPORT Other
"Accumulation of the alcohols in the blood can cause an increment in the osmolality, and accumulation of their metabolites can cause an increase in the anion gap and a decrease in serum bicarbonate concentration."
Assigns the anion gap to the metabolites, which is what makes it the late marker.
Serum osmolal gap
Show evidence (1 reference)
PMID:18045860 SUPPORT Other
"The presence of both laboratory abnormalities concurrently is an important diagnostic clue, although either can be absent, depending on the time after exposure when blood is sampled."
States both the diagnostic value of the pair and the time dependence that makes either alone unreliable, which is the whole content of this entry.
📈

Progression

4
Initial intoxication
Duration: from ingestion, before metabolic acidaemia appears
Presents as ethanol intoxication would - inebriation and ataxia. The parent alcohol is acting as an alcohol, and nothing yet distinguishes the poisoning from a drunk patient, which is the reason it is missed.
Show evidence (1 reference)
PMID:36765419 SUPPORT Other
"The initial clinical manifestations of EG poisoning mimic those of ethanol ingestion, namely inebriation and ataxia."
Describes the initial phase and the resemblance to ethanol intoxication.
Metabolic acidaemia
Duration: approximately 3 to 6 hours after ingestion
The latent period is the interval in which enzyme blockade prevents rather than mitigates, because the metabolites responsible have not yet accumulated.
Show evidence (1 reference)
PMID:36765419 SUPPORT Other
"As EG is metabolized, metabolic acidemia appears after a latent period of approximately 3–6 h after ingestion."
Gives the latent period before acidaemia, which is the only interval this entry states with a number.
Multiorgan toxicity
Progressive neurotoxicity, cardiotoxicity, respiratory distress and acute kidney injury follow the acidaemia. Acute kidney injury occurs in 30 to 70 percent across reported series.
Show evidence (2 references)
PMID:36765419 SUPPORT Other
"Thereafter, progressive neurotoxicity (coma, cerebral edema, cranial nerve palsies, and seizures), cardiotoxicity (tachycardia with hypertension or hypotension), respiratory distress, and AKI occur."
Orders the multiorgan phase after the acidaemia and names its components.
PMID:36765419 SUPPORT Other
"The incidence of AKI varies between 30 and 70%"
The reported range for acute kidney injury, carried as a range rather than a point estimate.
Delayed neuropathy
Duration: several days after ingestion, and despite treatment
Cranial nerve palsies, radiculopathy and other neuropathies appearing after the acute illness has been treated. The source is explicit that treatment does not prevent them. An earlier draft of this entry gave four phases with precise windows - 0 to 12 hours, 12 to 24 hours, 12 hours onward, day 5 to 20. Those windows came from the deep-research report and are NOT in the cited source, which gives a 3 to 6 hour latent period to acidaemia and 'several days' for the delayed neuropathy and no other numeric window. The phases were rewritten to what the source states. Do not reintroduce the finer windows without a citation carrying them.
Show evidence (1 reference)
PMID:36765419 SUPPORT Other
"Cranial nerve palsies, radiculopathy, and other neuropathies may appear several days after ingestion, despite treatment"
Establishes the delayed phase and that it occurs despite treatment.
{ }

Source YAML

click to show
name: Ethylene Glycol Poisoning
creation_date: '2026-09-01T20:00:00Z'
description: >-
  Ethylene glycol poisoning follows ingestion of antifreeze, de-icing fluid or
  other ethylene-glycol-containing products, taken deliberately, accidentally, or
  as a substitute intoxicant. The parent alcohol is only mildly intoxicating. The
  damage is done by its metabolites: alcohol dehydrogenase oxidises ethylene
  glycol to glycolaldehyde and then to glycolic acid, which drives a severe anion
  gap metabolic acidosis, and finally to oxalic acid, which precipitates with
  calcium as insoluble calcium oxalate crystals in the renal tubules and produces
  acute kidney injury. Because the toxicity is metabolic rather than direct, the
  antidote is an enzyme inhibitor rather than a chelator or a receptor blocker,
  and giving it early enough prevents the renal injury outright.
categories:
- Toxic Exposure Disorder
- Environmental Health Disorder
category: Complex
parents:
- Poisoning
disease_term:
  preferred_term: ethylene glycol poisoning
  term:
    id: MONDO:0017861
    label: ethylene glycol poisoning
pathophysiology:
- name: Ethylene Glycol Ingestion and Alcohol Dehydrogenase Bioactivation
  description: >-
    Ingested ethylene glycol is oxidised by alcohol dehydrogenase to
    glycolaldehyde and onward to glycolic and oxalic acid. The parent alcohol is
    only mildly intoxicating; the toxicity belongs to the metabolites. That is
    what makes this a bioactivation poisoning rather than a direct one, and it is
    why an enzyme inhibitor works as an antidote while removing the parent
    compound alone does not.
  role: trigger
  biological_scale: MOLECULAR
  conforms_to: "drug_induced_nephrotoxicity#Nephrotoxic Drug Exposure and Tubular Uptake"
  molecular_functions:
  - preferred_term: alcohol dehydrogenase (NAD+) activity
    term:
      id: GO:0004022
      label: alcohol dehydrogenase (NAD+) activity
    modifier: INCREASED
  evidence:
  - reference: PMID:18045860
    reference_title: "Toxic alcohol ingestions: clinical features, diagnosis, and management."
    supports: SUPPORT
    evidence_source: OTHER
    snippet: >-
      The effects of these substances, except for isopropanol and possibly
      alcoholic ketoacidosis, are due to their metabolites, which can cause
      metabolic acidosis and cellular dysfunction.
    explanation: >-
      States that the toxicity belongs to the metabolites rather than the parent
      alcohols, which is the claim this node is built on.
  notes: >-
    Conformance is asserted on the shared step of a nephrotoxin being concentrated
    and acted on in the kidney, not on the agent being a drug. The module's
    trigger names a nephrotoxic drug; ethylene glycol is an ingested industrial
    alcohol. Unlike the chronic dietary exposures curated elsewhere in this KB,
    the acute time course of the module fits this disease exactly.
  downstream:
  - target: Glycolic Acid Accumulation and High Anion Gap Metabolic Acidosis
    causal_link_type: DIRECT
    description: >-
      Glycolic acid is the metabolite that dominates the acid load.
  - target: Oxalic Acid Production and Calcium Oxalate Crystal Deposition
    causal_link_type: DIRECT
    description: >-
      Terminal oxidation yields oxalate, which precipitates with calcium.
- name: Glycolic Acid Accumulation and High Anion Gap Metabolic Acidosis
  description: >-
    Glycolic acid accumulates and consumes bicarbonate, producing the high anion
    gap acidosis that dominates early presentation. The osmolal gap moves the
    other way in time: it is highest while unmetabolised alcohol is still
    present, and falls as the anion gap rises. A patient sampled late can have a
    normal osmolal gap and a large anion gap, and a patient sampled early the
    reverse, which is why either alone can mislead.
  role: amplifier
  biological_scale: ORGANISM
  evidence:
  - reference: PMID:18045860
    reference_title: "Toxic alcohol ingestions: clinical features, diagnosis, and management."
    supports: SUPPORT
    evidence_source: OTHER
    snippet: >-
      Accumulation of the alcohols in the blood can cause an increment in the
      osmolality, and accumulation of their metabolites can cause an increase in
      the anion gap and a decrease in serum bicarbonate concentration.
    explanation: >-
      Separates the osmolal gap, which tracks the parent alcohol, from the anion
      gap, which tracks the metabolites - the basis for the timing caveat in this
      node's description.
  downstream:
  - target: Metabolic acidosis
    causal_link_type: DIRECT
  - target: Confusion
    causal_link_type: DIRECT
  - target: Coma
    causal_link_type: DIRECT
  - target: Seizure
    causal_link_type: DIRECT
- name: Oxalic Acid Production and Calcium Oxalate Crystal Deposition
  description: >-
    Oxalate is the terminal metabolite. It precipitates with calcium as insoluble
    calcium oxalate in the renal tubules. Plasma and urinary oxalate outlast the
    parent alcohol by days: in a reported case the parent compound was cleared
    within 36 hours by dialysis while plasma oxalate peaked on day 3 and did not
    normalise until day 7. The crystal burden is therefore still being laid down
    after the poison itself has gone.
  role: mechanism
  biological_scale: TISSUE
  locations:
  - preferred_term: proximal tubule
    term:
      id: UBERON:0004134
      label: proximal tubule
  evidence:
  - reference: PMID:18696123
    reference_title: "Hyperoxaluria after ethylene glycol poisoning."
    supports: SUPPORT
    evidence_source: HUMAN_CLINICAL
    snippet: >-
      Both lead to calcium-oxalate oversaturation and hence to the risk of local
      (renal) or systemic crystal deposition.
    explanation: >-
      Links raised plasma and urinary oxalate to calcium oxalate oversaturation
      and crystal deposition.
  - reference: PMID:18696123
    reference_title: "Hyperoxaluria after ethylene glycol poisoning."
    supports: SUPPORT
    evidence_source: HUMAN_CLINICAL
    snippet: >-
      The plasma oxalate level, however, rose to a maximum of 89 micromol/l
      (normal <6.3 +/- 1.1) on day 3 and only normalized on day 7 after
      ingestion.
    explanation: >-
      Gives the kinetics behind the claim that oxalate outlasts the parent
      alcohol, which is why crystal injury continues after the alcohol is
      cleared.
  downstream:
  - target: Proximal Tubular Epithelial Cell Death
    causal_link_type: DIRECT
    description: >-
      Intratubular crystal deposition injures the proximal tubular epithelium.
  - target: Nephrocalcinosis
    causal_link_type: DIRECT
  - target: Hypocalcemia
    causal_link_type: DIRECT
    description: >-
      Calcium is consumed forming the crystals.
  - target: Hyperoxaluria
    causal_link_type: DIRECT
  - target: Crystalluria
    causal_link_type: DIRECT
- name: Proximal Tubular Epithelial Cell Death
  description: >-
    Death of proximal tubular epithelium. The killing agent is the crystal, not
    the ion: calcium oxalate monohydrate crystals produce membrane damage and cell
    death in human proximal tubule cells, while oxalate held in solution and
    prevented from crystallising does not. Acidosis potentiates that
    crystal cytotoxicity, so the two arms of this poisoning are not independent -
    the glycolic acid load makes the oxalate crystals more lethal to the same
    cells. Glycolate itself does not potentiate it.
  role: central_effector
  biological_scale: TISSUE
  conforms_to: "drug_induced_nephrotoxicity#Proximal Tubular Epithelial Cell Death"
  cell_types:
  - preferred_term: kidney proximal tubule epithelial cell
    term:
      id: CL:0002306
      label: epithelial cell of proximal tubule
  biological_processes:
  - preferred_term: cell death
    term:
      id: GO:0008219
      label: cell death
    modifier: INCREASED
  - preferred_term: apoptotic process
    term:
      id: GO:0006915
      label: apoptotic process
    modifier: INCREASED
  evidence:
  - reference: PMID:15695020
    reference_title: "The cytotoxicity of oxalate, metabolite of ethylene glycol, is due to calcium oxalate monohydrate formation."
    supports: SUPPORT
    evidence_source: IN_VITRO
    snippet: >-
      These results demonstrate that COM crystals, and not the oxalate ion, are
      responsible for the membrane damage and cell death observed in normal human
      and rat PT cells
    explanation: >-
      Discriminates crystal from ion as the cytotoxic species in human proximal
      tubule cells, which is what makes crystal deposition the causal step rather
      than a marker of oxalate load.
  - reference: PMID:15695020
    reference_title: "The cytotoxicity of oxalate, metabolite of ethylene glycol, is due to calcium oxalate monohydrate formation."
    supports: SUPPORT
    evidence_source: IN_VITRO
    snippet: >-
      The cytotoxic effects of COM to HPT cells were potentiated by acidosis (pH
      6.5), but not by glycolate, the major metabolite of ethylene glycol.
    explanation: >-
      Establishes that the acidosis arm potentiates the crystal arm, which is why
      this entry does not treat the two downstream branches as independent. Also
      excludes glycolate itself as the potentiating agent.
  downstream:
  - target: Acute Kidney Injury
    causal_link_type: DIRECT
- name: Acute Kidney Injury
  description: >-
    Falling glomerular filtration rate following tubular injury. This is the
    module's effector, and here the acute time course matches it exactly.
  role: effector
  biological_scale: ORGANISM
  conforms_to: "drug_induced_nephrotoxicity#Acute Kidney Injury"
  locations:
  - preferred_term: kidney
    term:
      id: UBERON:0002113
      label: kidney
  evidence:
  - reference: PMID:18045860
    reference_title: "Toxic alcohol ingestions: clinical features, diagnosis, and management."
    supports: SUPPORT
    evidence_source: OTHER
    snippet: >-
      In addition to metabolic acidosis, acute renal failure and neurologic
      disease can occur in some of the intoxications.
    explanation: >-
      Names acute renal failure as an outcome of this class of intoxication,
      alongside the acidosis modelled upstream.
  downstream:
  - target: Acute kidney injury
    causal_link_type: DIRECT
phenotypes:
- name: Metabolic acidosis
  description: >-
    High anion gap metabolic acidosis, driven by glycolic acid.
  phenotype_term:
    preferred_term: High anion gap metabolic acidosis
    term:
      id: HP:0001942
      label: Metabolic acidosis
    temporality: ACUTE
  evidence:
  - reference: PMID:36765419
    reference_title: "Extracorporeal treatment for ethylene glycol poisoning: systematic review and recommendations from the EXTRIP workgroup."
    supports: SUPPORT
    evidence_source: OTHER
    snippet: >-
      As EG is metabolized, metabolic acidemia appears after a latent period of
      approximately 3–6 h after ingestion.
    explanation: >-
      Establishes the acidaemia and its timing relative to ingestion.
- name: Acute kidney injury
  phenotype_term:
    preferred_term: Acute kidney injury
    term:
      id: HP:0001919
      label: Acute kidney injury
    temporality: ACUTE
  evidence:
  - reference: PMID:36765419
    reference_title: "Extracorporeal treatment for ethylene glycol poisoning: systematic review and recommendations from the EXTRIP workgroup."
    supports: SUPPORT
    evidence_source: OTHER
    snippet: >-
      The incidence of AKI varies between 30 and 70%
    explanation: >-
      The reported incidence range for the renal endpoint of this poisoning.
- name: Nephrocalcinosis
  description: >-
    Calcium oxalate deposition in the kidney, which can persist after recovery.
  phenotype_term:
    preferred_term: Nephrocalcinosis
    term:
      id: HP:0000121
      label: Nephrocalcinosis
  evidence:
  - reference: PMID:18696123
    reference_title: "Hyperoxaluria after ethylene glycol poisoning."
    supports: SUPPORT
    evidence_source: HUMAN_CLINICAL
    snippet: >-
      alkaline citrate was given as a preventive measure to increase urinary
      oxalate solubility, but nephrocalcinosis still developed.
    explanation: >-
      Documents nephrocalcinosis occurring despite a measure aimed at preventing
      it, in a reported poisoning.
- name: Confusion
  description: >-
    Altered mental status belongs to the early illness, before acidaemia and
    renal injury declare, when ethylene glycol is still acting as an alcohol. It
    was recorded in 237 of the 446 patients in the EXTRIP cohort.
  phenotype_term:
    preferred_term: Altered mental status
    term:
      id: HP:0001289
      label: Confusion
    temporality: ACUTE
  evidence:
  - reference: PMID:29427181
    reference_title: "Toxic alcohol diagnosis and management: an emergency medicine review."
    supports: SUPPORT
    evidence_source: OTHER
    snippet: >-
      The patient with an altered mental status or concerning history warrants
      consideration of this potentially deadly ingestion.
    explanation: >-
      Establishes altered mental status as the presentation that should prompt
      consideration of this poisoning.
- name: Coma
  phenotype_term:
    preferred_term: Coma
    term:
      id: HP:0001259
      label: Coma
    temporality: ACUTE
  evidence:
  - reference: PMID:36765419
    reference_title: "Extracorporeal treatment for ethylene glycol poisoning: systematic review and recommendations from the EXTRIP workgroup."
    supports: SUPPORT
    evidence_source: OTHER
    snippet: >-
      Thereafter, progressive neurotoxicity (coma, cerebral edema, cranial nerve
      palsies, and seizures), cardiotoxicity (tachycardia with hypertension or
      hypotension), respiratory distress, and AKI occur.
    explanation: >-
      Names coma among the neurotoxic manifestations of the multiorgan phase.
- name: Seizure
  phenotype_term:
    preferred_term: Seizure
    term:
      id: HP:0001250
      label: Seizure
    temporality: ACUTE
  evidence:
  - reference: PMID:36765419
    reference_title: "Extracorporeal treatment for ethylene glycol poisoning: systematic review and recommendations from the EXTRIP workgroup."
    supports: SUPPORT
    evidence_source: OTHER
    snippet: >-
      Thereafter, progressive neurotoxicity (coma, cerebral edema, cranial nerve
      palsies, and seizures), cardiotoxicity (tachycardia with hypertension or
      hypotension), respiratory distress, and AKI occur.
    explanation: >-
      Names seizures among the neurotoxic manifestations.
- name: Hypocalcemia
  description: >-
    A direct consequence of the oxalate arm rather than an independent
    disturbance: calcium is consumed in forming the crystals.
  phenotype_term:
    preferred_term: Hypocalcemia
    term:
      id: HP:0002901
      label: Hypocalcemia
  evidence:
  - reference: PMID:36765419
    reference_title: "Extracorporeal treatment for ethylene glycol poisoning: systematic review and recommendations from the EXTRIP workgroup."
    supports: SUPPORT
    evidence_source: HUMAN_CLINICAL
    snippet: >-
      neither oxalate crystals in urine, urine immunofluorescence nor hypocalcemia
      nor a history of EG exposure alone are indications for ECTR (but may help to
      diagnose EG poisoning)
    explanation: >-
      Names hypocalcaemia among the features that help diagnose this poisoning in
      humans. This is the item that establishes the phenotype occurs; the
      chemistry item below explains why, and cannot carry the claim on its own.
      Note that PMID:18696123, also cited in this entry, reports a case in which
      hypocalcaemia did NOT occur, so the finding is characteristic rather than
      invariable.
  - reference: PMID:15695020
    reference_title: "The cytotoxicity of oxalate, metabolite of ethylene glycol, is due to calcium oxalate monohydrate formation."
    supports: SUPPORT
    evidence_source: IN_VITRO
    snippet: >-
      Oxalate has two forms in vivo: oxalate ions and calcium oxalate monohydrate
      (COM) crystals that readily form in the presence of calcium.
    directness: INDIRECT
    explanation: >-
      Mechanistic companion, not the support for the phenotype. It establishes
      that crystal formation consumes calcium, which is why the oxalate arm lowers
      serum calcium, and it is a cell-culture chemistry observation that cannot
      establish that the finding occurs in patients.
- name: Hyperoxaluria
  phenotype_term:
    preferred_term: Hyperoxaluria
    term:
      id: HP:0003159
      label: Hyperoxaluria
  evidence:
  - reference: PMID:18696123
    reference_title: "Hyperoxaluria after ethylene glycol poisoning."
    supports: SUPPORT
    evidence_source: HUMAN_CLINICAL
    snippet: >-
      urinary oxalate excretion was elevated (maximum 1.16 mmol/1.73 m(2)/24 h)
    explanation: >-
      Measured urinary oxalate excretion in a reported poisoning.
- name: Crystalluria
  description: >-
    Calcium oxalate crystals in the urine, the bedside correlate of the crystal
    deposition modelled upstream.
  phenotype_term:
    preferred_term: Crystalluria
    term:
      id: HP:0020074
      label: Crystalluria
  evidence:
  - reference: PMID:36765419
    reference_title: "Extracorporeal treatment for ethylene glycol poisoning: systematic review and recommendations from the EXTRIP workgroup."
    supports: SUPPORT
    evidence_source: HUMAN_CLINICAL
    snippet: >-
      Diagnosed by plasma EG concentration in 24 patients, and by urinary calcium
      oxalate crystals in 6 patients
    explanation: >-
      Names urinary calcium oxalate crystals in patients, which is what this
      phenotype asserts. An earlier draft cited a sentence about nephrocalcinosis
      here; renal parenchymal deposition is not crystals in the urine, and that
      sentence remains correct only where it sits on the Nephrocalcinosis
      phenotype.
biochemical:
- name: Plasma oxalate
  notes: >-
    Oxalate outlasts the parent alcohol. In a reported poisoning the ethylene
    glycol level fell below 15 mg/dL within 36 hours under ethanol and dialysis,
    while plasma oxalate peaked on day 3 and normalised only on day 7. Crystal
    formation therefore continues after the poison itself has been cleared, which
    is why clearing the alcohol does not end the renal risk.
  reference_ranges:
  - lower_bound: 0.0
    upper_bound: 6.3
    unit: micromol/L
    population: reference range cited for this assay
    notes: >-
      Reported in the source as normal <6.3 +/- 1.1 micromol/L. Recorded as an
      upper bound; the plus-or-minus is the source's own dispersion, not an
      interval this entry asserts.
  evidence:
  - reference: PMID:18696123
    reference_title: "Hyperoxaluria after ethylene glycol poisoning."
    supports: SUPPORT
    evidence_source: HUMAN_CLINICAL
    snippet: >-
      The plasma oxalate level, however, rose to a maximum of 89 micromol/l
      (normal <6.3 +/- 1.1) on day 3 and only normalized on day 7 after
      ingestion.
    explanation: >-
      Gives the peak, the normal range and the timing, which together carry the
      claim that oxalate outlasts the parent alcohol.
  - reference: PMID:18696123
    reference_title: "Hyperoxaluria after ethylene glycol poisoning."
    supports: SUPPORT
    evidence_source: HUMAN_CLINICAL
    snippet: >-
      Under treatment by ethanol infusions to block the alcohol dehydrogenase and
      by hemodialysis to eliminate ethylene glycol and its toxic metabolites, this
      level decreased to below 15 mg/dl within 36 h.
    explanation: >-
      The parent-alcohol clearance time this oxalate course is contrasted with.
- name: Serum anion gap
  notes: >-
    Rises as metabolites accumulate. It is the later of the two gaps and tracks
    glycolic acid rather than the parent alcohol.
  evidence:
  - reference: PMID:18045860
    reference_title: "Toxic alcohol ingestions: clinical features, diagnosis, and management."
    supports: SUPPORT
    evidence_source: OTHER
    snippet: >-
      Accumulation of the alcohols in the blood can cause an increment in the
      osmolality, and accumulation of their metabolites can cause an increase in
      the anion gap and a decrease in serum bicarbonate concentration.
    explanation: >-
      Assigns the anion gap to the metabolites, which is what makes it the late
      marker.
- name: Serum osmolal gap
  notes: >-
    Rises first and falls as metabolism proceeds, because it tracks the
    unmetabolised parent alcohol. The two gaps therefore cross over in time. A
    patient sampled early can have a wide osmolal gap and a normal anion gap, and
    a patient sampled late the reverse, so either test alone can reassure
    wrongly. Both being abnormal at once is the informative combination.
  evidence:
  - reference: PMID:18045860
    reference_title: "Toxic alcohol ingestions: clinical features, diagnosis, and management."
    supports: SUPPORT
    evidence_source: OTHER
    snippet: >-
      The presence of both laboratory abnormalities concurrently is an important
      diagnostic clue, although either can be absent, depending on the time after
      exposure when blood is sampled.
    explanation: >-
      States both the diagnostic value of the pair and the time dependence that
      makes either alone unreliable, which is the whole content of this entry.
progression:
- phase: Initial intoxication
  duration: from ingestion, before metabolic acidaemia appears
  notes: >-
    Presents as ethanol intoxication would - inebriation and ataxia. The parent
    alcohol is acting as an alcohol, and nothing yet distinguishes the poisoning
    from a drunk patient, which is the reason it is missed.
  evidence:
  - reference: PMID:36765419
    reference_title: "Extracorporeal treatment for ethylene glycol poisoning: systematic review and recommendations from the EXTRIP workgroup."
    supports: SUPPORT
    evidence_source: OTHER
    snippet: >-
      The initial clinical manifestations of EG poisoning mimic those of ethanol
      ingestion, namely inebriation and ataxia.
    explanation: >-
      Describes the initial phase and the resemblance to ethanol intoxication.
- phase: Metabolic acidaemia
  duration: approximately 3 to 6 hours after ingestion
  notes: >-
    The latent period is the interval in which enzyme blockade prevents rather
    than mitigates, because the metabolites responsible have not yet accumulated.
  evidence:
  - reference: PMID:36765419
    reference_title: "Extracorporeal treatment for ethylene glycol poisoning: systematic review and recommendations from the EXTRIP workgroup."
    supports: SUPPORT
    evidence_source: OTHER
    snippet: >-
      As EG is metabolized, metabolic acidemia appears after a latent period of
      approximately 3–6 h after ingestion.
    explanation: >-
      Gives the latent period before acidaemia, which is the only interval this
      entry states with a number.
- phase: Multiorgan toxicity
  notes: >-
    Progressive neurotoxicity, cardiotoxicity, respiratory distress and acute
    kidney injury follow the acidaemia. Acute kidney injury occurs in 30 to 70
    percent across reported series.
  evidence:
  - reference: PMID:36765419
    reference_title: "Extracorporeal treatment for ethylene glycol poisoning: systematic review and recommendations from the EXTRIP workgroup."
    supports: SUPPORT
    evidence_source: OTHER
    snippet: >-
      Thereafter, progressive neurotoxicity (coma, cerebral edema, cranial nerve
      palsies, and seizures), cardiotoxicity (tachycardia with hypertension or
      hypotension), respiratory distress, and AKI occur.
    explanation: >-
      Orders the multiorgan phase after the acidaemia and names its components.
  - reference: PMID:36765419
    reference_title: "Extracorporeal treatment for ethylene glycol poisoning: systematic review and recommendations from the EXTRIP workgroup."
    supports: SUPPORT
    evidence_source: OTHER
    snippet: >-
      The incidence of AKI varies between 30 and 70%
    explanation: >-
      The reported range for acute kidney injury, carried as a range rather than
      a point estimate.
- phase: Delayed neuropathy
  duration: several days after ingestion, and despite treatment
  notes: >-
    Cranial nerve palsies, radiculopathy and other neuropathies appearing after
    the acute illness has been treated. The source is explicit that treatment does
    not prevent them.

    An earlier draft of this entry gave four phases with precise windows - 0 to 12
    hours, 12 to 24 hours, 12 hours onward, day 5 to 20. Those windows came from
    the deep-research report and are NOT in the cited source, which gives a 3 to 6
    hour latent period to acidaemia and 'several days' for the delayed neuropathy
    and no other numeric window. The phases were rewritten to what the source
    states. Do not reintroduce the finer windows without a citation carrying
    them.
  evidence:
  - reference: PMID:36765419
    reference_title: "Extracorporeal treatment for ethylene glycol poisoning: systematic review and recommendations from the EXTRIP workgroup."
    supports: SUPPORT
    evidence_source: OTHER
    snippet: >-
      Cranial nerve palsies, radiculopathy, and other neuropathies may appear
      several days after ingestion, despite treatment
    explanation: >-
      Establishes the delayed phase and that it occurs despite treatment.
environmental:
- name: Ingestion of ethylene glycol
  description: >-
    Antifreeze, de-icing fluid and other ethylene-glycol-containing products,
    taken deliberately in self-harm, accidentally by children, or as a substitute
    intoxicant. The products are sweet-tasting and sold without restriction,
    which is the reason accidental paediatric ingestion is a recurring pattern.
  exposure_term:
    preferred_term: ingestion of ethylene glycol
    term:
      id: ECTO:0000231
      label: exposure to chemical
  exposure_classifications:
    hazard_agent_type:
    - classification_value: CHEMICAL
    exposure_route:
    - classification_value: ORAL
    exposure_duration:
    - classification_value: ACUTE
  influences_mechanisms:
  - target: Ethylene Glycol Ingestion and Alcohol Dehydrogenase Bioactivation
    environmental_effect: TRIGGERS
    causal_link_type: DIRECT
    description: >-
      Ingestion delivers the substrate that alcohol dehydrogenase then activates.
    evidence:
    - reference: PMID:29427181
      reference_title: "Toxic alcohol diagnosis and management: an emergency medicine review."
      supports: SUPPORT
      evidence_source: OTHER
      snippet: >-
        Toxic alcohols are ingested for a variety of reasons including accidental
        exposures, intentional inebriation, homicide and suicide.
      explanation: >-
        Documents the ingestion routes this entry models as the exposure.
  notes: >-
    Bound to the substance-level ECTO:0000231. ECTO was checked for an
    ethylene-glycol-specific exposure class and none is resolvable through this
    repository's ECTO adapter (sqlite:obo:ecto); a term resolving in OLS is not
    sufficient, since dismech does not validate ECTO against OLS.
  evidence:
  - reference: PMID:29427181
    reference_title: "Toxic alcohol diagnosis and management: an emergency medicine review."
    supports: SUPPORT
    evidence_source: OTHER
    snippet: >-
      Methanol, ethylene glycol, and isopropyl alcohol are readily available in
      common hardware and household materials.
    explanation: >-
      Establishes the availability that makes this a recurring household
      exposure rather than an occupational one.
treatments:
- name: Fomepizole
  description: >-
    A competitive alcohol dehydrogenase inhibitor, and the first-line antidote. It
    acts on the bioactivation step rather than on any downstream injury, so its
    value is entirely a matter of timing: given before significant acidosis or
    organ injury it prevents renal failure outright and can remove the need for
    dialysis, and given late it cannot undo crystal deposition that has already
    happened.
  therapeutic_modality: SMALL_MOLECULE
  treatment_term:
    preferred_term: Pharmacotherapy
    term:
      id: NCIT:C15986
      label: Pharmacotherapy
    therapeutic_agent:
    - preferred_term: fomepizole
      term:
        id: CHEBI:5141
        label: fomepizole
  target_mechanisms:
  - target: Ethylene Glycol Ingestion and Alcohol Dehydrogenase Bioactivation
    treatment_effect: INHIBITS
    description: >-
      Blocks the enzyme that converts the relatively harmless parent alcohol into
      the metabolites that do the damage.
  evidence:
  - reference: PMID:27147840
    reference_title: "Treatment of patients with ethylene glycol or methanol poisoning: focus on fomepizole."
    supports: SUPPORT
    evidence_source: OTHER
    snippet: >-
      Fomepizole, a potent alcohol dehydrogenase (ADH) inhibitor, is an efficient
      and safe antidote that prevents or reduces toxic EG and methanol
      metabolism.
    explanation: >-
      Names the enzyme target, which is what places this treatment on the
      bioactivation node rather than on the renal injury.
  - reference: PMID:27147840
    reference_title: "Treatment of patients with ethylene glycol or methanol poisoning: focus on fomepizole."
    supports: SUPPORT
    evidence_source: OTHER
    snippet: >-
      Administered early, fomepizole prevents EG-related renal failure and
      methanol-related visual and neurological injuries.
    explanation: >-
      Supports prevention of the renal endpoint, conditional on early
      administration.
  - reference: PMID:27147840
    reference_title: "Treatment of patients with ethylene glycol or methanol poisoning: focus on fomepizole."
    supports: SUPPORT
    evidence_source: OTHER
    snippet: >-
      When administered prior to the onset of significant acidosis or organ
      injury, fomepizole may obviate the need for hemodialysis.
    explanation: >-
      Records the timing dependence explicitly, which is the qualification the
      description rests on.
- name: Ethanol
  description: >-
    The alternative alcohol dehydrogenase substrate, and the fallback antidote
    where fomepizole is unavailable or unaffordable. It competes for the same
    enzyme and so acts on the same node, but it requires infusion, concentration
    monitoring and management of its own intoxication, which fomepizole does not.
  therapeutic_modality: SMALL_MOLECULE
  treatment_term:
    preferred_term: Pharmacotherapy
    term:
      id: NCIT:C15986
      label: Pharmacotherapy
    therapeutic_agent:
    - preferred_term: ethanol
      term:
        id: CHEBI:16236
        label: ethanol
  target_mechanisms:
  - target: Ethylene Glycol Ingestion and Alcohol Dehydrogenase Bioactivation
    treatment_effect: INHIBITS
    description: >-
      Competes with ethylene glycol for alcohol dehydrogenase, blocking
      bioactivation at the same step fomepizole does.
  evidence:
  - reference: PMID:18045860
    reference_title: "Toxic alcohol ingestions: clinical features, diagnosis, and management."
    supports: SUPPORT
    evidence_source: OTHER
    snippet: >-
      Administration of fomepizole or ethanol to inhibit alcohol dehydrogenase, a
      critical enzyme in metabolism of the alcohols, is beneficial in treatment of
      ethylene glycol and methanol intoxication
    explanation: >-
      Names ethanol alongside fomepizole as an alcohol dehydrogenase inhibitor for
      this indication.
  - reference: PMID:18696123
    reference_title: "Hyperoxaluria after ethylene glycol poisoning."
    supports: SUPPORT
    evidence_source: HUMAN_CLINICAL
    snippet: >-
      Under treatment by ethanol infusions to block the alcohol dehydrogenase and
      by hemodialysis to eliminate ethylene glycol and its toxic metabolites, this
      level decreased to below 15 mg/dl within 36 h.
    explanation: >-
      Documents ethanol used in practice with the enzyme-blocking rationale
      stated, alongside dialysis.
- name: Hemodialysis
  description: >-
    Removes the unmetabolised alcohol and its organic acid metabolites, and
    corrects the acidosis. It is the second arm alongside enzyme blockade, and it
    is what remains when the antidote arrives too late.
  treatment_term:
    preferred_term: Hemodialysis
    term:
      id: NCIT:C15248
      label: Hemodialysis
  therapeutic_modality: DEVICE
  target_mechanisms:
  - target: Glycolic Acid Accumulation and High Anion Gap Metabolic Acidosis
    treatment_effect: INHIBITS
    description: >-
      Clears the accumulated organic acids that drive the acidosis.
  evidence:
  - reference: PMID:18045860
    reference_title: "Toxic alcohol ingestions: clinical features, diagnosis, and management."
    supports: SUPPORT
    evidence_source: OTHER
    snippet: >-
      Dialysis to remove the unmetabolized alcohol and possibly the organic acid
      anion can be helpful in treatment of several of the alcohol-related
      intoxications.
    explanation: >-
      States what dialysis removes, which is why it attaches to the acid
      accumulation node rather than to the enzyme step.
📚

References & Deep Research

Deep Research

1

Deep research results are used as seeds for research; they do not undergo the same validation as the main records and may contain errors. How we use deep research.

Evaluations and curation notes (1)

Create Ethylene Glycol Poisoning conforming to drug_induced_nephrotoxicity · 2026-09-01T20:55:59Z · View source

New entry. Absent from the KB, with an exact MONDO term. The entry is built around bioactivation. Ethylene glycol itself is only mildly intoxicating; alcohol dehydrogenase oxidises it to glycolaldehyde, then glycolic acid, then oxalic acid, and the metabolites do the damage. That is why the antidote is an enzyme inhibitor and why fomepizole attaches to the trigger node rather than to any downstream injury. Five nodes, three conforming to drug_induced_nephrotoxicity at the uptake, cell-death and acute-kidney-injury nodes. This is the first conformer in this batch where the module's ACUTE time course fits without qualification. Balkan endemic nephropathy, curated earlier in this session against the same module, deliberately declined the Acute Kidney Injury node because its course is chronic; here that node is the right endpoint. The agent caveat still applies and is recorded in the trigger node's notes: the module's trigger names a nephrotoxic drug, and this is an ingested industrial alcohol, so conformance is asserted on the shared mechanism. Two clinically load-bearing details are modelled rather than left in prose. The osmolal gap and the anion gap move in opposite directions with time - the osmolal gap tracks unmetabolised parent alcohol and the anion gap tracks metabolites - so a sample drawn at the wrong hour can show either alone and mislead. And oxalate outlasts the poison: in the cited case the parent compound was cleared within 36 hours by dialysis while plasma oxalate peaked on day 3 and normalised only on day 7, so crystal deposition continues after the alcohol has gone. Fomepizole's entry states the timing dependence explicitly, because its value is conditional on it: given before significant acidosis or organ injury it prevents renal failure and can remove the need for dialysis, and given late it cannot undo crystals already deposited. Hemodialysis attaches to the acid-accumulation node rather than the enzyme step, since what it removes is the alcohol and the organic acid anions. Deep research with claude_code was run and will be committed as provenance. No quote from it was curated; all eleven snippets were independently sourced from PubMed and pre-verified against the local cache before writing, and every reference_title was generated from cache rather than typed. Validated with just validate-disorders, just count-verified-snippets (11/11), just check-duplicate-keys, just check-folded-hyphens, and a graph build showing 10 edges, no integrity issues, and no phenotype without an incoming edge.

Claude Code ▸
Ethylene Glycol Poisoning — Disease Characteristics Research Report
claude-haiku-4-5-20251001, claude-opus-5 24 citations 2026-09-01T17:00:37.428748

Ethylene Glycol Poisoning — Disease Characteristics Research Report

Compiled 2026-09-01. Target: MONDO:0017861.

Ethylene glycol is not the poison. Its metabolites are. That single fact organizes everything below — the antidote, the latent period, the two separate organ injuries, and the reason a treated patient walks out and an untreated one does not.

Ontology identifiers marked ✅ were verified against this repository's committed term caches (cache/hp, cache/go, cache/cl, cache/uberon, cache/chebi, cache/ncit, cache/mondo, cache/ncbitaxon) or against the EBI Ontology Lookup Service during this session. Terms marked ⚠ are suggestions I did not verify.


1. Disease Information

Ethylene glycol poisoning is acute chemical injury from ingesting ethylene glycol, most often as automotive antifreeze, engine coolant, or de-icing fluid. The parent compound is a sweet, colorless, viscous diol. It is mildly intoxicating and little else. Hepatic alcohol dehydrogenase converts it to glycolate, which acidifies the blood, and then to oxalate, which precipitates with calcium in the kidney.

"EG itself has minimal toxicity, but its metabolites are responsible for most of the clinical effects; glycolate contributes to the acidemia, while deposition of calcium oxalate crystals in tissues causes AKI and neurological complications" — Ghannoum et al., Crit Care 2023, PMID:36765419

Identifiers

Resource Identifier Status
MONDO MONDO:0017861 ethylene glycol poisoning ✅ verified in cache/mondo/terms.csv
CHEBI (agent) CHEBI:30742 ethylene glycol ✅ verified via OLS
CAS (agent) 107-21-1 from EPA hazard summary
MeSH (agent) D019855 Ethylene Glycol, tree D02.033.455.250.268 ✅ confirmed present via NCBI E-utilities MeSH search
ICD-10-CM T52.3X- Toxic effect of glycols, 7th-character extensions by intent (T52.3X1 accidental, T52.3X2 intentional self-harm, T52.3X3 assault, T52.3X4 undetermined) coding-level answer
ICD-10 (per MalaCards mapping) T52.8 ⚠ conflicts with the Orphanet mapping to T52.3; resolve before binding
UMLS C0413194 ⚠ from MalaCards, not verified at source
OMIM not applicable — no Mendelian etiology —
Orphanet ⚠ a record appears at orpha.net/en/disease/detail/31826; the page would not render for me and I did not confirm the ORPHA number unverified
ICD-11 ⚠ not verified this session unverified

There is no MeSH disease descriptor. The literature is indexed as Ethylene Glycol/poisoning, which matters when you build a PubMed query.

Synonyms and alternative names. Ethylene glycol toxicity. Ethylene glycol intoxication. Antifreeze poisoning. Antifreeze ingestion. Glycol poisoning. Ethylene glycol toxicosis (the veterinary usage). Note the near-homonym trap: diethylene glycol (DEG) poisoning is a different disease with a different terminal metabolite (2-hydroxyethoxyacetic acid, not oxalate) and a different clinical signature dominated by delayed neuropathy. The 2022 Gambia and Uzbekistan pediatric mass poisonings were principally DEG events with EG co-contamination. Do not merge them.

Data provenance. The knowledge base for this disease is built almost entirely from individual-patient data — case reports, small retrospective chart reviews, and poison-center call records. The EXTRIP systematic review screened 1,296 articles, included 226, and found no randomized controlled trials (PMID:36765419). Aggregated disease-level resources exist for the chemical (ATSDR, EPA, NPDS annual reports) but not for the syndrome. Every treatment recommendation in the field rests on very low quality evidence by GRADE.


2. Etiology

Causal factors

The cause is exposure. Ingestion is the route that matters. Inhalation and dermal contact from occupational use do not produce the syndrome at realistic exposures.

  • Deliberate self-poisoning. The dominant adult mechanism. In the pooled EXTRIP case series (n = 446), median age was 42 years and 80% were male, with a median ingested dose of 250 mL (IQR 150–500).
  • Accidental ingestion. Children and pets, drawn by the sweet taste. A Czech series of 86 accidental "1–3 swallow" ingestions had zero deaths (PMID:36765419, citing Krenova).
  • Ethanol substitution. Drinking antifreeze as a cheap intoxicant, individually or in clusters.
  • Contaminated pharmaceuticals. Glycol-adulterated syrup excipients. An outbreak, not a poisoning.
  • Occupational. Aircraft de-icing generates EG vapor and mist. This has not produced the classic syndrome.

Dose

A threshold dose is poorly defined and the often-quoted lethal dose is softer than it sounds.

"The often-quoted lethal dose in an untreated 70 kg adult is 100 mL, although there are several cases of toxicity and even death below this dose." — PMID:36765419

"Aircraft de-icing workers systemically exposed to an estimated 27 mg/kg from aerosolized EG (≈ 2 mL of pure EG) did not demonstrate any adverse effects." — PMID:36765419

Self-experiments with 10–30 mL of pure EG caused no harm. Toxicity did not occur in seven untreated patients with EG concentrations below 4.8 mmol/L (30 mg/dL). Some sources set a risk threshold at a peak concentration above 3.2 mmol/L (20 mg/dL).

Risk factors

Genetic. None established. There is no causal variant, no susceptibility locus with a published association, and no GWAS. I searched for ADH1B / ADH1C / ALDH2 effects on toxic-alcohol handling and found only the well-worked ethanol literature. The inference that a high-activity ADH1B allele would accelerate bioactivation is biologically reasonable and, as far as I can find, untested for ethylene glycol. Record it as a hypothesis or not at all.

Environmental and behavioral — the real risk set.

Factor Direction Note
Suicidal intent, psychiatric illness ↑↑ dominant adult mechanism
Alcohol use disorder ↑ substitute-intoxicant ingestion
Male sex ↑ 80% of pooled cases (PMID:36765419)
Household storage of antifreeze in unlabeled containers ↑ classic pediatric mechanism
Age under 5 years ↑ exploratory ingestion; sweet taste
Delay to treatment 6–12 h ↑↑ more metabolite formed before ADH is blocked
Pre-existing CKD ↑ reduced renal EG clearance, prolonged half-life
Access to fomepizole and dialysis ↓↓ the single largest determinant of survival

Protective factors

Co-ingested ethanol is genuinely protective, and this is the one protective factor with a mechanism you can draw.

"EG toxicity is modulated by co-ingestion with ethanol because this decreases EG metabolism" — PMID:36765419

Ethanol is a competing ADH substrate. It is the antidote arriving before the diagnosis. Fifty-five percent of the pooled cohort had co-ingested ethanol, and notably the "late/severe" subgroup had less ethanol co-ingestion (36%) than the "early" subgroup (61%).

No genetic protective factor is known.

Gene-environment interactions

None documented for humans. The interesting structural point is the mirror relationship with primary hyperoxaluria: PH1 (MONDO:0009823 ✅, AGXT), PH2 (MONDO:0009824 ✅, GRHPR), PH3 (MONDO:0013327 ✅, HOGA1) are inherited failures of the same glyoxylate-handling node that ethylene glycol overwhelms acutely. Whether a PH carrier is more vulnerable to acute EG poisoning is unstudied. It is a well-posed question and I flag it as a knowledge gap, not a finding.


3. Phenotypes

Phenotypes sort by stage, and stage is a clock. That is the single most useful clinical fact about this disease.

Neurologic / behavioral (0–12 h, and again at 5–20 days)

Phenotype HPO term Frequency / note
Inebriation, ataxia HP:0001251 Ataxia ✅ earliest sign; mimics ethanol
Altered mental status HP:0001289 Confusion ✅ n = 237/446 pooled (53%)
Drowsiness HP:0002329 Drowsiness ✅ early
Lethargy HP:0001254 Lethargy ✅ early
Coma HP:0001259 Coma ✅ n = 127/446 (28%); an EXTRIP dialysis indication
Seizure HP:0001250 Seizure ✅ n = 44/446 (10%)
Encephalopathy HP:0001298 Encephalopathy ✅ —
Cerebral edema HP:0002181 Cerebral edema ✅ n = 10/446 (2%); crystal deposition in cerebral vessels
Nystagmus HP:0000639 Nystagmus ✅ reported
Ophthalmoplegia HP:0000602 Ophthalmoplegia ✅ delayed, cranial-nerve phase
Papilledema HP:0001085 Papilledema ✅ with cerebral edema
Facial palsy HP:0010628 Facial palsy ✅ delayed sequela, day 5–20; CN VII most common; may be bilateral
Peripheral neuropathy HP:0009830 Peripheral neuropathy ✅ delayed sensorimotor; can be severe enough to cause complete paralysis
Tetany HP:0001281 Tetany ✅ secondary to hypocalcemia

Delayed neurologic disease is the part clinicians miss. Cranial neuropathies appear 8 to 18 days after ingestion, especially in late presenters, and post-mortem work attributes them to localized inflammation around oxalate microcrystals. Recovery may take a year. Basal ganglia and brainstem injury are rare; MRI shows T2 hyperintensity in midbrain, hippocampi, basal nuclei, and thalami.

Renal (12 h onward)

Phenotype HPO term Frequency
Acute kidney injury HP:0001919 Acute kidney injury ✅ 30–70% across cohorts (PMID:36765419); n = 295/446 (66%) in the ECTR-selected pooled series
Oliguria HP:0100520 Oliguria ✅ preceding anuria
Elevated creatinine HP:0003259 Elevated circulating creatinine concentration ✅ appears ~12 h
Crystalluria HP:0020074 Crystalluria ✅ calcium oxalate crystals, n = 85/446
Hyperoxaluria HP:0003159 Hyperoxaluria ✅ plasma oxalate peaked at 89 µmol/L (normal <6.3±1.1) on day 3, PMID:18696123
Hematuria HP:0000790 Hematuria ✅ —
Proteinuria HP:0000093 Proteinuria ✅ —
Flank pain HP:0030157 Flank pain ✅ —
Nephrocalcinosis HP:0000121 Nephrocalcinosis ✅ PMID:18696123 — developed despite alkaline citrate prophylaxis
Renal insufficiency HP:0000083 Renal insufficiency ✅ —
Chronic kidney disease HP:0012622 Chronic kidney disease ✅ 16.8% at discharge, <5% at 6 months

Metabolic and laboratory (3–12 h)

Phenotype HPO term Note
Metabolic acidosis HP:0001942 Metabolic acidosis ✅ high anion gap; median lowest pH 7.08 (IQR 6.89–7.23)
Hypocalcemia HP:0002901 Hypocalcemia ✅ calcium sequestered as oxalate
Hyperkalemia HP:0002153 Hyperkalemia ✅ with AKI
Prolonged QT interval HP:0001657 Prolonged QT interval ✅ consequence of hypocalcemia

Median lowest bicarbonate 6.9 mmol/L. Median anion gap 32 mmol/L. Median osmol gap 40. Median peak glycolate 15.9 mmol/L. Patients have survived pH below 6.60.

Cardiopulmonary and gastrointestinal

Phenotype HPO term Note
Tachycardia HP:0001649 Tachycardia ✅ —
Tachypnea HP:0002789 Tachypnea ✅ Kussmaul respiration compensating acidosis
Hypertension HP:0000822 Hypertension ✅ early cardiotoxic phase
Hypotension HP:0002615 Hypotension ✅ n = 26/446; mortality marker
Respiratory failure HP:0002878 Respiratory failure ✅ mortality marker; 155/446 ventilated
Pulmonary edema HP:0100598 Pulmonary edema ✅ autopsy finding
Nausea HP:0002018 Nausea ✅ —
Vomiting HP:0002013 Vomiting ✅ —
Abdominal pain HP:0002027 Abdominal pain ✅ can dominate a delayed presentation

Severity, progression, quality of life

Severity is variable and dose-and-delay dependent, not intrinsic. Progression is acute and monophasic in the metabolic phase, with a distinct delayed relapse in the neurologic phase. Nothing here is episodic or relapsing-remitting.

Quality-of-life data are absent. I found no EQ-5D, SF-36, or PROMIS study of ethylene glycol survivors. The functional burden that is documented is dialysis dependence (2.9% at discharge, under 1% at 6 weeks) and residual cranial or peripheral neuropathy taking up to a year to resolve. This is a genuine gap in the literature, not a gap in my search.


4. Genetic / Molecular Information

There is nothing here, and saying so plainly is the correct entry.

  • Causal genes: none. This is an acquired toxic exposure. No OMIM entry, no ClinVar submissions, no gene panel.
  • Pathogenic variants: not applicable.
  • Modifier genes: none demonstrated. Plausible but untested candidates are ADH1B, ADH1C, ALDH2, HAO1 (glycolate oxidase), LDHA, AGXT, and GRHPR.
  • Epigenetics: no data.
  • Chromosomal abnormalities: not applicable.

The genes that matter are the ones encoding the enzymes that do the poisoning, and they are wild-type. This is the pattern for a bioactivation toxicity: normal metabolism, abnormal substrate.

Enzyme Gene Role
Alcohol dehydrogenase 1B ADH1B (hgnc:250 ⚠) EG → glycolaldehyde; the antidote target
Aldehyde dehydrogenase 2 ALDH2 (hgnc:404 ⚠) glycolaldehyde → glycolate
Hydroxyacid oxidase 1 (glycolate oxidase) HAO1 (hgnc:4809 ⚠) glycolate → glyoxylate; rate-limiting
Lactate dehydrogenase A LDHA (hgnc:6535 ⚠) glycolate → glyoxylate → oxalate
Alanine-glyoxylate aminotransferase AGXT (hgnc:341 ⚠) glyoxylate → glycine; detoxifying, pyridoxine-dependent

HGNC identifiers above are ⚠ — I did not resolve them this session. Verify before binding.


5. Environmental Information

Environmental factors. Ethylene glycol is the main component of commercial antifreeze and engine coolant, and is present in de-icing fluids, hydraulic fluids, brake fluid, and industrial solvents. It is manufactured at very large scale in the United States. Occupational exposure at airports is inhalational and dermal, from sprayed de-icing formulation generating vapor and mist. OSHA regulates workroom air at a maximum of 50 ppm, following the ACGIH guideline.

Ontology suggestions for exposure: I checked cache/ecto/terms.csv and no ethylene glycol exposure term is currently cached in this repository. The pattern to follow is ECTO:0900004 exposure to arsenic via ingestion. An exposure to ethylene glycol via ingestion term needs an ECTO search before binding. Do not invent one.

Lifestyle factors. Alcohol use disorder, as a route to substitute-intoxicant ingestion. Storage practice — antifreeze decanted into a beverage container is the pediatric mechanism.

Infectious agents. Not applicable.


6. Mechanism / Pathophysiology

The causal chain

  1. Ethylene glycol is ingested and absorbed quickly and completely from the gastrointestinal tract. Bioavailability is 100% in rodent data. Protein binding is negligible. It distributes into total body water, volume of distribution 0.5–0.8 L/kg. Leads to a rising plasma concentration of an osmotically active, largely unmetabolized small molecule.

  2. Unmetabolized ethylene glycol produces CNS depression and an osmolal gap. This is the whole of the parent compound's contribution. Results in inebriation and ataxia clinically indistinguishable from ethanol, and a raised measured-minus-calculated osmolality, with a normal anion gap.

  3. Hepatic alcohol dehydrogenase oxidizes ethylene glycol to glycolaldehyde. One third of absorbed EG leaves unchanged in urine; two thirds are oxidized. This is the committed step, and the only step any antidote blocks. GO: GO:0004022 alcohol dehydrogenase (NAD+) activity ✅. Substrate CHEBI:30742 ✅ → product CHEBI:17071 glycolaldehyde ✅.

  4. Aldehyde dehydrogenase rapidly converts glycolaldehyde to glycolate. GO: GO:0004029 aldehyde dehydrogenase (NAD+) activity ✅. Product CHEBI:29805 glycolate ✅. Glycolaldehyde is transient and does not accumulate.

  5. Glycolate accumulates and drives high anion gap metabolic acidosis. It piles up because the next step is slow. Results in the acidemia that appears "after a latent period of approximately 3–6 h after ingestion" (PMID:36765419). Glycolate concentration, not EG concentration, is what predicts outcome — the EXTRIP mortality break sits at 12 mmol/L.

  6. Glycolate oxidase converts glycolate to glyoxylate. This is the rate-limiting step. Lactate dehydrogenase performs the same conversion, glycolate resembling lactate. GO: GO:0003973 (S)-2-hydroxy-acid oxidase activity ✅. Product CHEBI:36655 glyoxylate ✅.

  7. Side consequence, diagnostically loud: glycolate's structural similarity to lactate makes point-of-care lactate-oxidase analyzers read it as lactate. The discrepancy between a point-of-care and a laboratory lactate — the lactate gap — is a real bedside clue derived directly from the mechanism. The size of the artifact is analyzer-dependent: one comparison found massive false elevation on a Radiometer 700 and elevations ≤4 mmol/L on iSTAT and Bayer analyzers even at 40 mmol/L glycolate.

  8. Glyoxylate branches three ways. This is the therapeutic fork.

  9. Toxic branch: glyoxylate → oxalate (CHEBI:132952 ✅), largely via LDH. GO: GO:0033610 oxalate biosynthetic process ✅.
  10. Detoxifying branch A: glyoxylate → glycine, via alanine-glyoxylate aminotransferase. GO: GO:0008453 L-alanine:glyoxylate transaminase activity ✅. Pyridoxine-dependent (CHEBI:16709 pyridoxine ✅).
  11. Detoxifying branch B: glyoxylate → α-hydroxy-β-ketoadipate. Thiamine-dependent (CHEBI:18385 thiamine(1+) ✅).
  12. The cofactor rationale is why thiamine and pyridoxine are given. The rationale is all there is. "Thiamine and pyridoxine are used to facilitate the conversion of glyoxylate to non-toxic metabolites rather than oxalate, but their clinical utility has never been determined." (PMID:36765419)

  13. Oxalate binds calcium and precipitates as calcium oxalate monohydrate. CHEBI:60579 calcium oxalate ✅. Precipitation happens preferentially in the proximal tubule, where water reabsorption concentrates the filtrate to supersaturation. Leads to two separate injuries: mechanical/chemical damage to the tubule, and systemic calcium depletion.

  14. Calcium oxalate monohydrate crystals — not the oxalate ion — kill proximal tubular epithelial cells. This is the mechanistic result to cite, and it is a clean one.

"In rat red blood cells, oxalate ions showed no hemolytic effect, while crystals produced concentration-dependent hemolysis. Human proximal tubule cells exposed to crystal suspensions above 3 mM exhibited cytotoxicity through lactate dehydrogenase release, whereas oxalate solutions prevented cytotoxicity when EDTA blocked crystal formation." — Guo & McMartin, Toxicology 2005, PMID:15695020 (evidence source: IN_VITRO)

The same work found that acidosis enhances crystal toxicity to human cells, while glycolate does not. So step 5 is not merely parallel to step 9 — it potentiates it. Draw that edge.

  1. Proximal tubular epithelial cell death produces acute kidney injury. Renal tubular epithelial necrosis with calcium oxalate crystals in the tubular lumina is the characteristic histology. Results in oliguria and then anuria.

  2. Acute kidney injury feeds back on step 1. One quarter of total EG clearance is renal and directly proportional to GFR. Losing kidney function prolongs the EG half-life. This is a self-amplifying loop, and it is why AKI predicts death: "AKI is a marker of metabolite-mediated organ injury, and it delays kidney excretion of EG. Death very seldom occurs if AKI is not present." (PMID:36765419)

  3. Calcium sequestration produces hypocalcemia, and hypocalcemia produces tetany, seizures, and QT prolongation. A parallel branch off step 8, not downstream of the kidney.

  4. Crystals deposit in cerebral vessels and meninges. Birefringent crystals have been demonstrated within the walls of CNS blood vessels at autopsy, with associated inflammation and edema. Leads to cerebral edema, and rarely to basal ganglia and brainstem injury.

  5. Late crystal deposition around cranial nerves produces delayed neuropathy, day 5–20, most often CN VII, attributed post-mortem to localized inflammation around oxalate microcrystals. This branch runs on a different clock from everything above and appears after the metabolic crisis is treated.

Where the mechanism is inferred rather than demonstrated

Steps 1–10 are demonstrated. Step 13 rests on autopsy correlation. Step 14 rests on post-mortem inference plus timing — the inflammatory link is proposed, not proven in life. The specific inflammatory effector downstream of crystal contact (NLRP3 inflammasome assembly, GO:0044546 ✅) is well worked out for calcium oxalate in the nephrolithiasis literature but I did not find it demonstrated for acute EG poisoning. Mark it as a hypothesis if you model it.

Supporting categories

  • Molecular pathways: glyoxylate and dicarboxylate metabolism (KEGG map00630). GO: GO:0046487 glyoxylate metabolic process ✅, GO:0019532 oxalate transport ✅.
  • Cellular processes: necrotic and apoptotic proximal tubular cell death (GO:0006915 apoptotic process ✅, GO:0008219 cell death ✅), oxidative stress response (GO:0034599 cellular response to oxidative stress ✅), inflammatory response (GO:0006954 ✅), mitochondrial permeability transition (GO:0005757 mitochondrial permeability transition pore complex ✅).
  • Protein dysfunction: none. No protein is misfolded or mutated. The enzymes work correctly on the wrong substrate. This is an important negative for a knowledge base built around protein defects.
  • Metabolic changes: high anion gap acidosis from glycolate; secondary lactate elevation; NADH/NAD+ shift from two consecutive dehydrogenase steps.
  • Immune involvement: secondary crystal-associated inflammation only. No autoimmunity, no immunodeficiency.
  • Tissue damage mechanisms: crystal-mediated membrane damage, necrosis, acidosis-potentiated cytotoxicity, tubular obstruction.
  • Molecular profiling: no human transcriptomic, proteomic, or metabolomic study of EG-poisoned patients that I located. Rat hyperoxaluria/nephrolithiasis transcriptomics exist (inflammatory changes tracking crystal deposition) but describe the model, not the poisoning. Do not import those as human evidence.
  • Single-cell, spatial, multi-omics, CRISPR screens: none for this disease.

7. Anatomical Structures Affected

Organ level

Structure UBERON Role
Kidney UBERON:0002113 ✅ primary target organ
Liver UBERON:0002107 ✅ site of bioactivation, not of injury
Brain UBERON:0000955 ✅ edema, focal injury
Meninx UBERON:0002360 ✅ crystal deposition at autopsy
Basal ganglion UBERON:0002420 ✅ rare focal injury, MRI T2 hyperintensity
Facial nerve UBERON:0001647 ✅ delayed cranial neuropathy, CN VII
Lung UBERON:0002048 ✅ pulmonary edema, secondary
Heart UBERON:0000948 ✅ tachycardia, QT prolongation, secondary

The liver is worth a note. It is where the poison is made and it is not where the damage lands. That dissociation is the whole shape of the disease.

Body systems: renal/urinary (primary), nervous (primary and delayed), cardiovascular (secondary), respiratory (secondary), musculoskeletal via tetany (secondary).

Tissue and cell level

Cell type CL Note
Epithelial cell of proximal tubule CL:0002306 ✅ the dying cell
Kidney proximal convoluted tubule epithelial cell CL:1000838 ✅ more specific alternative
Kidney tubule cell CL:1000507 ✅ broader
Hepatocyte CL:0000182 ✅ bioactivation site
Kidney resident macrophage CL:1000698 ✅ crystal-associated inflammation — inferred
Macrophage CL:0000235 ✅ general

Tissue types: renal tubular epithelium (primary), vascular endothelium in CNS vessels, meningeal connective tissue, peripheral nerve.

Subcellular level

Extracellular and luminal crystal deposition is the dominant compartment — the crystals sit in the tubular lumen and contact the apical membrane. Intracellular consequences reported are mitochondrial injury and membrane damage (GO:0005757 mitochondrial permeability transition pore complex ✅). Guo & McMartin document "membrane damage and organelle injury" (PMID:15695020).

Localization and lateralization

Renal involvement is bilateral and symmetric — it is a filtered toxin, not a focal lesion. Cerebral involvement is diffuse (edema) with occasional bilateral deep-grey focal lesions. Cranial neuropathy is the exception: it may be unilateral or bilateral, and unilateral facial nerve paralysis has been reported as an isolated presenting feature.


8. Temporal Development

Onset

Any age. Onset is acute and the interval from exposure to first symptom is 30 minutes to a few hours. Median time from ingestion to hospital admission in the pooled EXTRIP series was 10 hours (IQR 4–18) — 6 hours for the early group, 12 for the late group. That six-hour difference is most of the prognosis.

The three stages

Stage Window Dominant feature Labs
1 — Neurologic 0–12 h (StatPearls: 0–4 h) inebriation, ataxia, vomiting elevated osmolar gap, normal anion gap
2 — Cardiopulmonary / metabolic 4–12 h (acidemia from 3–6 h) tachycardia, tachypnea, hypertension then hypotension, coma, seizures high anion gap acidosis, osmolar gap falling
3 — Renal 12 h onward oliguria, flank pain, AKI rising creatinine, crystalluria, hypocalcemia
4 — Delayed neurologic day 5–20 cranial neuropathy, peripheral neuropathy may be normal

"During this time, there is often an elevated osmolar gap without an elevated anion gap." — StatPearls, NBK537009, stage 1

"An anion gap metabolic acidosis develops secondary to the accumulation of glycolic acid." — StatPearls, stage 2

The two gaps trade places as the parent compound is consumed. That crossover is the diagnostic signature and also the trap: a patient presenting late has a normal osmolar gap and is sicker, not safer.

Progression, duration, remission

Progression is rapid without treatment and arrested by treatment. Course is self-limited if the exposure is single and the antidote is given — this is not a chronic disease. Duration of the acute illness: median hospital stay 16 days (IQR 7–23), ICU stay 5 days.

Recovery timings:

Endpoint Median Source
AKI duration 7–10 days PMID:36765419
Kidney replacement therapy for AKI 9 days (IQR 3–14) PMID:36765419
Creatinine normalization after AKI 21 days (IQR 7–40) PMID:36765419
Plasma oxalate normalization (pediatric case) day 7 after ingestion PMID:18696123
Time to death, when death occurs 96 h (IQR 24–264) PMID:36765419
Cranial nerve recovery up to 1 year delayed-sequelae literature

Remission is treatment-induced. Spontaneous recovery occurs after small ingestions.

Critical periods

The intervention window is before glycolate accumulates. That is the whole therapeutic proposition, and it is the strongest mechanistic statement in the disease:

"Administered early, fomepizole prevents EG-related renal failure and methanol-related visual and neurological injuries. When administered prior to the onset of significant acidosis or organ injury, fomepizole may obviate the need for hemodialysis." — Mégarbane, Open Access Emerg Med 2010, PMID:27147840

A delay of 6–12 hours between ingestion and treatment is associated with increased immediate and long-term complications in several studies, though not confirmed in others (PMID:36765419).


9. Inheritance and Population

Epidemiology

United States poison-center figures, cited inside the EXTRIP review from NPDS:

"In 2020, the US poison control centers reported 6036 calls relating to EG, 586 of which had at least moderate clinical effects and 30 of which resulted in death" — PMID:36765419

StatPearls reports 6,374 case mentions in 2016, of which 686 involved children under 12.

I checked the 2023 NPDS annual report (PMID:39688840). Its abstract reports 2,080,659 human exposures and 3,272 exposure-related deaths overall but carries no ethylene-glycol-specific figure; the substance tables are behind the paywalled full text. So the most recent EG-specific national count I can cite is 2020.

Rough rates on a US population of ~330 million: ~1.8 calls per 100,000 per year, of which ~0.18 per 100,000 have at least moderate effects and ~0.009 per 100,000 die. Treat these as my arithmetic on the 2020 figure, not as a published rate.

No incidence or prevalence figure exists in Orphanet, GBD, or WHO for this as a named disease. A Polish national health-fund study identified 174 ICD-10-coded cases in 2010 with 47 deaths (PMID:36765419, citing Swiderska), and a Romanian multicenter series captured 56 confirmed cases across 2012–2017 during "a large EG poisoning epidemic."

Inheritance

Not applicable. No inheritance pattern, penetrance, expressivity, anticipation, mosaicism, founder effect, consanguinity role, or carrier frequency. All these fields are correctly empty for this entry.

Population demographics

Variable Value Source
Median age 42 years (IQR 28–52) PMID:36765419, n = 446
Male fraction 80% PMID:36765419
Male fraction, severe/late subgroup 84% PMID:36765419
Male fraction, early subgroup 67% PMID:36765419
Children under 12 (US, 2016) 686 of 6,374 case mentions StatPearls

The sex skew is roughly 4:1 male, and it widens with severity. That is consistent with the mechanism being deliberate self-poisoning rather than exposure.

Geographic distribution. Not endemic. Distribution tracks antifreeze availability, poison-center coverage, and antidote access. High mortality persists where fomepizole and dialysis are not readily available. Cluster events are the exception to the sporadic pattern: mass ingestion at a US military base in 2023 (11 soldiers over 12 hours, all survived — Mil Med 2023), and pharmaceutical-contamination outbreaks with much higher lethality.

Age distribution. Bimodal in shape — a small pediatric accidental peak under 5, and a large adult peak in the fourth and fifth decades.


10. Diagnostics

Laboratory

Test LOINC / note Interpretation
Serum ethylene glycol, gas chromatography reference lab, hours to days turnaround confirmatory; often too slow to guide the first dose
Plasma glycolate rarely available; the best prognostic analyte >12 mmol/L → dialysis (EXTRIP strong rec)
Osmolality, measured vs calculated osmolal gap raised early, normal late
Basic metabolic panel anion gap Na⁺ + K⁺ − Cl⁻ − HCO₃⁻; >27 mmol/L → dialysis
Arterial blood gas pH, HCO₃⁻ median lowest pH 7.08 in pooled series
Serum calcium HP:0002901 hypocalcemia supports the diagnosis
Creatinine HP:0003259 rises from ~12 h
Urine microscopy calcium oxalate crystals supportive, not diagnostic — sensitivity poor, seen in only 85/446
Point-of-care vs laboratory lactate lactate gap glycolate cross-reacts with lactate-oxidase POC assays

Calculated osmolarity: 2[Na] + BUN/1.6 + glucose/18 + ethanol/4.6 (StatPearls).

Two cautions that matter more than the tests themselves. First, a normal osmolal gap never excludes poisoning — early presenters may have a normal gap and consequential ingestions, and late presenters have converted the gap into an anion gap. Second, the lactate gap is analyzer-dependent; a hospital whose POC device is an iSTAT will not see the artifact that a Radiometer 700 shows.

Also note: urine fluorescence under Wood's lamp, from the sodium fluorescein added to some antifreeze, is widely taught and unreliable. I did not find supporting evidence for it in this session's sources and would not curate it as a diagnostic without one.

A glycerol-dehydrogenase-based enzymatic EG assay has been reported with accuracy comparable to gas chromatography and faster turnaround (Filip et al.). This is the main recent diagnostic advance.

Imaging and electrophysiology

Brain MRI in acute poisoning shows T2 hyperintensity in midbrain, hippocampi, basal nuclei, and thalami. CT may show rapid cerebral edema. ECG for QT prolongation from hypocalcemia. Nerve conduction studies for the delayed neuropathy. Renal ultrasound is nonspecific.

Biopsy and pathology

Renal tubular epithelial necrosis with birefringent calcium oxalate crystals in tubular lumina. Confocal laser scanning microscopy has been used to characterize crystals in a fatal case. Biopsy is not required for diagnosis and is mostly a post-mortem finding.

Genetic testing

Not applicable at every level — no WGS, WES, panel, single-gene, CMA, karyotype, FISH, mtDNA, or repeat-expansion indication. Leave these fields empty.

Omics-based diagnostics

None in clinical use.

Clinical criteria and differential

There is no formal consensus diagnostic criterion set. Diagnosis is history plus the gap profile plus, when obtainable, a confirmatory concentration.

Differential diagnosis for high-anion-gap metabolic acidosis with altered mental status:

Condition Distinguishing feature
Methanol poisoning (MONDO:0017860 ✅) visual loss, putaminal necrosis; no oxalate crystals, no AKI early
Diethylene glycol poisoning delayed severe neuropathy; no oxalate; different metabolite
Diabetic ketoacidosis ketones, hyperglycemia
Lactic acidosis / metformin true lactate elevated on both POC and lab assay — no lactate gap
Salicylate poisoning mixed respiratory alkalosis, tinnitus
Isopropanol ingestion osmolal gap, ketosis, no acidosis
Propylene glycol (iatrogenic) lorazepam/diazepam infusion history
Uremic acidosis chronic, no osmolal gap
5-oxoprolinuria chronic acetaminophen, malnutrition

The discriminator against methanol is renal: EG kills the kidney and spares the eye; methanol does the reverse.

Screening

No population screening exists and none is indicated. Case-finding is presentation-driven.


11. Outcome / Prognosis

Mortality

Mortality has fallen by an order of magnitude and the fall is the story.

Era Mortality Source
Pre-1960 >80% PMID:36765419
1970s–1980s 30–40% PMID:36765419
1990s declining PMID:36765419
Present day <10% PMID:36765419

The EXTRIP pooled patient-level cohort (n = 446) had 18.7% mortality overall. That figure is higher than contemporary practice because the cohort is case-report-derived and dialysis-selected. Read it stratified instead:

Group Definition Mortality
Early EG poisoning glycolate ≤12 mmol/L or anion gap ≤28 mmol/L (n = 84) 3.6%
Late EG poisoning glycolate >12 mmol/L or anion gap >28 mmol/L (n = 147) 20.4%

"In the subgroup of patients with a glycolate concentration ≤ 12 mmol/L (or anion gap ≤ 28 mmol/L), mortality was 3.6%; in this subgroup, outcomes in patients receiving ECTR were not better than in those who did not receive ECTR." — PMID:36765419

Median time to death is 96 hours after ingestion. There is no 5-year or 10-year survival concept — survivors of the acute event have normal life expectancy absent residual CKD.

Morbidity, disability, recovery

Sequela At discharge On extended follow-up
Any CKD 16.8% <5% at 6 months
Dialysis-dependent CKD 2.9% <1% at 6 weeks
CNS sequelae 3.3% rare persistence

"Persisting sequelae are unusual in survivors. AKI lasts approximately 7–10 days and kidney function returns to baseline in most patients." — PMID:36765419

EXTRIP is explicit that the discharge figures overestimate, because follow-up was short. Long-term dialysis dependence after one year is a rare-case-report phenomenon. Overall incidence of persisting sequelae "appears to be less than 1%."

Recovery potential is excellent with early treatment and good even with late treatment if the patient survives the acidosis. Patients have survived pH below 6.60, bicarbonate below 2 mmol/L, ingestions above 1 L, and EG concentrations above 200 mmol/L.

Prognostic factors

Factor Effect Strength
Plasma glycolate concentration strongest mortality break at 12 mmol/L
Anion gap strong break at 27–28 mmol/L
Presence of AKI strong "Death very seldom occurs if AKI is not present"
Coma strong repeatedly replicated
Respiratory failure strong
Hypotension strong
Seizures strong
Arterial pH strong
Plasma EG concentration weak "poorly predictive of mortality"
Reported ingested dose weak prognostic only if treatment is delayed

That last pair is the counterintuitive and important one. The concentration of the poison you can measure fastest tells you the least. EXTRIP recommends against dialysis based on reported dose alone.

Prognostic biomarker: plasma glycolate. It is the right analyte and it is the one most hospitals cannot measure. Anion gap is the surrogate.

Complications

Acute kidney injury; anion gap metabolic acidosis; cerebral edema; seizures; hypocalcemic tetany and QT prolongation; multi-organ failure; nephrocalcinosis; cranial and peripheral neuropathy; chronic kidney disease; anoxic brain injury.

Procedure-related complications are real and are counted separately by EXTRIP. Central venous catheter insertion carries a 0.1–2.1% serious complication rate. Hemodialysis and CKRT serious complications run about 0.005%; hemoperfusion 1.9%. Ethanol as antidote causes altered consciousness in 5–15%, bradycardia in 10–12%, and hypoglycemia in 16% of children. Fomepizole causes rare anaphylaxis, bradycardia, hypotension.


12. Treatment

Pharmacotherapy — antidotes

Fomepizole (4-methylpyrazole) is first-line. CHEBI:5141 fomepizole ✅.

"Fomepizole, a potent alcohol dehydrogenase (ADH) inhibitor, is an efficient and safe antidote that prevents or reduces toxic EG and methanol metabolism. Although no study has compared its efficacy with ethanol, fomepizole is recommended as a first-line antidote." — PMID:27147840

Dosing (PMID:27147840; StatPearls concurs): - Loading dose 15 mg/kg, IV or oral, independent of alcohol concentration - Then 10 mg/kg every 12 hours for four doses (increase to 15 mg/kg thereafter for prolonged therapy) - Continue until alcohol concentration is <30 mg/dL - During dialysis: 1 mg/kg/h continuous infusion, or dose every 4 hours — fomepizole is itself dialyzed, with an on-dialysis half-life of 1.5–3.0 h and extracorporeal clearance above 100 mL/min - No concentration monitoring needed - Contraindicated in pyrazole allergy; safe in children; not recommended in pregnancy

The pivotal trial is Brent et al., N Engl J Med 1999;340(11), PMID:10080845 — 19 patients with plasma EG ≥20 mg/dL. Conclusion: fomepizole administered early prevents renal injury by inhibiting formation of toxic metabolites.

Ethanol is the alternative where fomepizole is unavailable. CHEBI:16236 ethanol ✅. It competes with EG for ADH, but binds less avidly, requires concentration monitoring to a target near 100–150 mg/dL, and carries sedation, hypoglycemia, and bradycardia risk. Ethanol prolongs the EG half-life to 8.5–14 h; fomepizole prolongs it to 12–18 h.

Adjuncts

Agent Rationale Evidence
Thiamine (CHEBI:18385 ✅, NCIT:C874 ✅) shunts glyoxylate to α-hydroxy-β-ketoadipate none — "clinical utility has never been determined"
Pyridoxine (CHEBI:16709 ✅) shunts glyoxylate to glycine none
Sodium bicarbonate corrects acidemia; acidosis potentiates crystal cytotoxicity (PMID:15695020) mechanistic; 196/446 received it
Alkaline citrate raises urinary oxalate solubility one pediatric case; nephrocalcinosis developed anyway (PMID:18696123)
Calcium replacement corrects hypocalcemia supportive; use cautiously, it feeds crystal formation

Be honest in the entry about thiamine and pyridoxine. They are given because the mechanism says they should work, not because anyone has shown they do.

Extracorporeal treatment

EXTRIP recommendations, all at very low quality of evidence (PMID:36765419):

Indication Recommendation
Reported dose alone recommend against dialysis
EG >50 mmol/L (>310 mg/dL), fomepizole used suggest dialysis
EG >50 mmol/L, ethanol used recommend dialysis
EG 20–50 mmol/L, ethanol used suggest dialysis
EG >10 mmol/L (>62 mg/dL), no antidote recommend dialysis
Osmol gap >50 (fomepizole) suggest; (ethanol) recommend
Osmol gap >10, no antidote recommend
Glycolate >12 mmol/L recommend
Glycolate 8–12 mmol/L suggest
Anion gap >27 mmol/L recommend
Anion gap 23–27 mmol/L suggest
Coma recommend
Seizures recommend
AKI, KDIGO stage 2 or 3 recommend
CKD, eGFR <45 mL/min/1.73 m² suggest

Modality: intermittent hemodialysis first, CKRT if IHD is unavailable. Cessation: stop when anion gap <18 mmol/L; suggest stopping when EG <4 mmol/L (25 mg/dL) or acid-base is corrected.

Dialyzability: EG is dialyzable by IHD (level B), glycolate dialyzable (level C), EG moderately dialyzable by CKRT (level D), slightly dialyzable by peritoneal dialysis (level C) and hemoperfusion (level D). Hemodialysis clearance can exceed 200 mL/min and mass removal can exceed 100 g in a 6-hour session. Rebound occurred in 21% of the cohort, median 30% of the immediate post-dialysis concentration.

Fomepizole may replace dialysis in the right patient. In a French series, five patients with EG concentrations from 46.5 to 345 mg/dL treated with fomepizole alone and no dialysis developed no renal injury. The EXTRIP evidence table for early poisoning found no reduction in mortality, dialysis dependence, neurological damage, or short-term dialysis need when dialysis was added to fomepizole — only reduced cost and length of stay. That is a change in the standard of care and should be curated as such.

Not applicable

Gene therapy, cell therapy, RNA therapeutics, targeted therapy, immunotherapy, and surgery are all not applicable. Kidney transplantation (NCIT:C15265 ✅) is relevant only for the rare survivor with irreversible ESKD. Rehabilitation applies to residual neuropathy.

NCIT treatment terms

Treatment NCIT Status
Pharmacotherapy (antidote administration) NCIT:C15986 ✅
Hemodialysis NCIT:C15248 ✅
Dialysis NCIT:C15221 ✅
Renal Replacement Therapy NCIT:C126400 ✅
Supportive Care NCIT:C15747 ✅
Mechanical Ventilation NCIT:C70909 ✅
Invasive Mechanical Ventilation NCIT:C191573 ✅
Kidney Transplantation NCIT:C15265 ✅
Thiamine (agent) NCIT:C874 ✅

Fomepizole and pyridoxine have no NCIT term in this repository's cache — bind them as therapeutic_agent with the CHEBI identifiers above under a NCIT:C15986 action term.

Treatment algorithm

Suspect on history or an unexplained anion gap. Give fomepizole immediately, before any concentration returns — "Treatment should be started as soon as possible, based on history and initial findings including anion gap metabolic acidosis, while awaiting measurement of alcohol concentration" (PMID:27147840). Correct acidemia. Then decide about dialysis on the glycolate or anion gap, not the EG level. Adjust the antidote dose upward during dialysis. Watch for rebound after stopping. Then watch again at day 5 to 20 for the neuropathy nobody was expecting.

Pharmacogenomics: none established.


13. Prevention

Primary prevention

  • Bittering agents. Denatonium benzoate added to antifreeze at 30–50 ppm. Oregon mandated it first for consumer automotive products with ≥10% EG; seventeen states followed; a voluntary US industry agreement extended it nationally in 2012. The evidence that it works is negative. The Oregon Poison Center recorded 332 EG and 117 methanol exposures among preschool children from 1987–2003 with no change in annual frequency after the 1995 mandate (see PMID:15171494, "Was it necessary to add Bitrex (denatonium benzoate) to automotive products?"). The Consumer Product Safety Commission has questioned its effectiveness. Cost is 2–3 cents per gallon. Curate this as an intervention with equivocal-to-absent evidence, not as a success.
  • Product substitution. Propylene glycol antifreeze, materially less toxic.
  • Storage and labeling. Never decant into beverage containers. The pediatric and veterinary mechanisms are almost entirely storage failures.
  • Pharmaceutical excipient quality control. After the Gambia and Uzbekistan events, WHO issued medical product alerts on glycol-contaminated syrups. This is the intervention with the largest attributable mortality reduction available globally.
  • Occupational controls. OSHA workroom air maximum 50 ppm per ACGIH; skin and eye protection for de-icing crews.
  • Means restriction and mental health care. The dominant adult mechanism is self-harm, so this is the highest-yield primary prevention and the one least often listed.

Secondary prevention

Early recognition. Poison center consultation. Rapid antidote access — stocking fomepizole is itself a preventive measure against renal injury, since the antidote given before acidosis prevents the disease rather than treating it.

Tertiary prevention

Adequate ADH blockade continued through and after dialysis, to prevent glycolate reaccumulation. Monitoring for rebound. Follow-up renal function at 6 weeks and 6 months. Surveillance for delayed neuropathy through day 20.

Not applicable

Immunization, genetic screening, carrier screening, preimplantation diagnosis, prenatal testing, genetic counseling, prophylactic medication. All empty for this entry.


14. Other Species / Natural Disease

Ethylene glycol toxicosis is a major veterinary emergency, and the veterinary literature is in some respects better than the human literature because the exposures are unintentional and the dosing is known.

Taxonomy

Species NCBITaxon Note
Homo sapiens NCBITaxon:9606 ✅
Canis lupus familiaris NCBITaxon:9615 ✅ common natural disease
Felis catus NCBITaxon:9685 ✅ most susceptible
Rattus norvegicus NCBITaxon:10116 ✅ experimental
Mus musculus NCBITaxon:10090 ✅ experimental, less sensitive

"All animals are susceptible to ethylene glycol toxicosis; however, dogs and cats are most commonly affected." — Merck Veterinary Manual

Comparative dose and course

Cat Dog Human
Minimum lethal dose 1.4 mL/kg 4.4–6.6 mL/kg ~100 mL in a 70 kg adult (~1.4 mL/kg), often quoted, frequently violated
Early phase 30 min – 12 h 30 min – 12 h 0–12 h
Renal failure onset 12–24 h 36–72 h >12 h
POC test detection limit 20 mg/dL 50 mg/dL —
Fomepizole loading dose 125 mg/kg 20 mg/kg 15 mg/kg

The cat is the outlier in both directions. It needs a third the dose to die and roughly eight times the fomepizole per kilogram to be saved. Cats also collapse into oliguric renal failure a day or two before dogs do.

Dog fomepizole protocol: 20 mg/kg IV initially, then 15 mg/kg at 12 and 24 h, then 5 mg/kg at 36 h. Cat protocol: 125 mg/kg initially, then 31.3 mg/kg at 12, 24, and 36 h. Ethanol (20% IV) is the alternative in both.

Comparative pathology

"Renal tubular epithelial necrosis with calcium oxalate crystals in the tubular lumina is characteristic." — Merck Veterinary Manual

Identical to the human lesion. Secondary findings in dogs and cats include pulmonary edema and hemorrhagic gastroenteritis. Calcium oxalate crystalluria indicates a poor prognosis in animals, and prognosis "varies inversely with the amount of time that elapses between ingestion and initiation of treatment" — the same statement made in the human literature, from an independent evidence base.

Evolutionary conservation and orthologs

The full pathway is conserved across mammals — ADH, ALDH, glycolate oxidase (HAO1), LDH, and AGXT all have vertebrate orthologs. That conservation is why dog and rat models translate for this disease when they fail for so many others. The mechanism is chemistry, not physiology. Ortholog NCBI Gene IDs were not resolved this session.

Transmission

No zoonotic potential. Not transmissible. Cross-species susceptibility is universal because the pathway is universal.

OMIA: ethylene glycol toxicosis is an acquired toxicosis, not a Mendelian trait, so there is no OMIA record to cite.


15. Model Organisms

Rat — the workhorse

Male rats fed ethylene glycol are the standard model of calcium oxalate nephropathy, and they are used far more often to study kidney stones than to study poisoning. Keep that distinction when importing evidence.

  • Kidney is the most sensitive target organ in rats and mice after intermediate-duration oral exposure (ATSDR toxicological profile). Lesions: oxalate crystal deposition, tubular dilation, vacuolation, degeneration.
  • Sensitivity ordering: males > females; rats > mice; Wistar > other rat strains. Male Wistar rats are roughly twice as sensitive to EG nephrotoxicity as male F-344 rats.
  • The strain difference is metabolic, not anatomical: after EG treatment, plasma oxalate and urine oxalate excretion were markedly higher in Wistar than F344, with slightly lower urine calcium in Wistars, while total urinary protein was higher in F344 at all times (see Toxicol Sci 2004 Wistar/F-344 subchronic comparison, and PMID:19244400, PMID:20534866).

That strain difference is the closest thing this disease has to a genetic modifier, and it sits in a rat.

Dog — the therapeutic model

EXTRIP identified two controlled dog experiments (PMID:36765419):

"In one experiment, an LD400 dose of EG was given to 23 dogs; 13 were treated with intravenous NaHCO3 and 10 were treated with a single session of hemodialysis for 20–24 h. All died in the NaHCO3 group while two died in the hemodialysis group (p < 0.0001), suggesting a beneficial effect of hemodialysis."

A second experiment in six EG-poisoned dogs found no benefit from hemoperfusion — all died. Both results have held up: hemodialysis works, hemoperfusion does not.

Dogs and cats also provide naturally occurring disease, which is rarer and more valuable than induced disease. This is the ideal animal_models entry with relationship: RECAPITULATES and high fidelity, because the species gets the same disease from the same chemical by the same route.

In vitro

  • Human proximal tubule (HPT) cell cultures. The system behind PMID:15695020. Exposure to COM crystal suspensions above 3 mM caused LDH release; oxalate in solution with EDTA to block crystallization did not. Acidosis enhanced crystal toxicity to human cells; glycolate did not. Rat cells were more sensitive than human cells — an explicit species-difference caveat you should carry into any fidelity statement.
  • Rat erythrocytes. Hemolysis assay distinguishing crystal from ion toxicity.

Not used

Zebrafish, Drosophila, C. elegans, yeast, iPSC-derived systems, organoids — I found none for this disease. A kidney organoid crystal-exposure model would be an obvious and currently missing NAM.

Phenotype recapitulation and limitations

Model Recapitulates Fidelity Limitation
Dog, acute EG poisoning AKI, acidosis, death; dialysis response HIGH dosing controlled, unlike human overdose
Cat, natural toxicosis AKI, crystalluria, rapid course HIGH far more sensitive than humans; timing compressed
Male Wistar rat, oral EG oxalate nephropathy, crystalluria MODERATE strain- and sex-specific; chronic/subchronic dosing, not acute overdose; acidosis and CNS phase not the focus
Mouse, oral EG oxalate nephropathy LOW–MODERATE less sensitive than rat
HPT cell culture + COM crystals crystal-induced tubular cell death MODERATE isolated cells, no tubular flow, no crystal-concentrating gradient

No model reproduces the delayed cranial neuropathy. That is the largest gap between the models and the human disease, and it is exactly where the human mechanism is weakest.

Model databases

MGI, RGD, ZFIN, IMSR, EMMA, MMRRC, Cellosaurus, ATCC. None hold a dedicated EG-poisoning resource — the models here are procedural (dose an animal), not genetic (order a strain), so there is no repository line to cite.


Curation notes and known gaps

Things I could not establish, stated as fact rather than hedged:

  1. The ORPHA identifier is unverified. The page did not render for me.
  2. The ICD-10 mapping conflicts. MalaCards says T52.8; Orphanet says T52.3; ICD-10-CM coding practice uses T52.3X-. Resolve before binding.
  3. The ICD-11 code is unverified.
  4. No EG-specific 2023 or 2024 national exposure count. The 2023 NPDS abstract carries no substance-level figure and the tables are paywalled. The most recent citable EG figure is 2020: 6,036 calls, 586 with at least moderate effects, 30 deaths.
  5. No ECTO exposure term is cached for ethylene glycol ingestion. It needs an ECTO search, not a guess.
  6. No quality-of-life instrument has ever been applied to this disease.
  7. No human omics data of any kind exist for EG poisoning.
  8. HGNC identifiers in section 4 are unverified.
  9. The Guo & McMartin abstract in section 6 came from Europe PMC's summary rendering, not from the reference cache. Fetch it with just fetch-reference PMID:15695020 before quoting it as an evidence snippet — do not lift my paraphrase into a snippet: field.
  10. Only four references are currently in this worktree's cache: PMID:36765419, PMID:27147840, PMID:18696123, PMID:16134263. Everything else cited here needs fetching before it can carry an evidence item.

Sources

Reference Validation

Checked with linkml-reference-validator 0.2.1.

Outcome Count
References checked 18
Resolved 18
Unresolved (possible confabulation) 0
Unverifiable 0
Quoted claims checked 5
Quoted claims found in source 5
Quoted claims not found in source 0
References weighed for topical relevance 18
On topic 12
Off topic 0

All extracted references resolved successfully.