Aquarium granuloma is a cutaneous nontuberculous mycobacterial infection caused by Mycobacterium marinum after traumatic inoculation from contaminated freshwater, saltwater, fish, or aquaria. It most often begins as a papule or nodule on a hand or extremity, can ulcerate or spread in a sporotrichoid lymphangitic pattern, and can extend to tendons, joints, or bone.
Ask a research question about Aquarium Granuloma. OpenScientist will conduct autonomous deep research using the Disorder Mechanisms Knowledge Base and PubMed literature (typically 10-30 minutes).
Do not include personal health information in your question. Questions and results are cached in your browser's local storage.
name: Aquarium Granuloma
creation_date: "2026-09-28T11:37:22Z"
category: Infectious Disease
description: >-
Aquarium granuloma is a cutaneous nontuberculous mycobacterial infection
caused by Mycobacterium marinum after traumatic inoculation from contaminated
freshwater, saltwater, fish, or aquaria. It most often begins as a papule or
nodule on a hand or extremity, can ulcerate or spread in a sporotrichoid
lymphangitic pattern, and can extend to tendons, joints, or bone.
disease_term:
preferred_term: Aquarium granuloma
term:
id: MONDO:0043314
label: aquarium granuloma
parents:
- Bacterial Infection
synonyms:
- Fish tank granuloma
- Mycobacterium marinum skin disease
prevalence:
- population: Netherlands, 2011-2018 culture-confirmed infections
measure_type: ANNUAL_INCIDENCE
prevalence_class: BAND_1_9_PER_1000000
rate_per_100000: 0.15
rate_denominator: POPULATION_PER_YEAR
evidence:
- reference: PMID:35308482
reference_title: "Treatment and Outcome of Culture-Confirmed Mycobacterium marinum Disease."
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
snippet: "The annual incidence rate was 0.15/100 000/year during the study period."
explanation: >-
The Dutch laboratory-based cohort provides a population annual-incidence
estimate for culture-confirmed M. marinum disease.
progression:
- phase: Incubation after inoculation
incubation_days: Median 21 days; range 5-270 days
notes: >-
Cutaneous disease can have a prolonged incubation, so the exposure history
remains relevant for months before lesion onset.
evidence:
- reference: PMID:10987702
reference_title: "Incubation period and sources of exposure for cutaneous Mycobacterium marinum infection: case report and review of the literature."
supports: SUPPORT
evidence_source: OTHER
snippet: "Forty cases had known incubation periods (median, 21 days; range, 5-270 days)."
explanation: >-
The exposure review pooled reported cases with known incubation periods
and quantified the median and range.
infectious_agent:
- name: Mycobacterium marinum
infectious_agent_term:
preferred_term: Mycobacterium marinum
term:
id: NCBITaxon:1781
label: Mycobacterium marinum
description: >-
Slow-growing photochromogenic nontuberculous mycobacterium associated with
aquatic exposures and cutaneous sporotrichoid infection.
evidence:
- reference: PMID:30429139
reference_title: "Cutaneous Mycobacterial Infections."
supports: SUPPORT
evidence_source: OTHER
snippet: >-
M. marinum is a slowly growing pigmented organism responsible for "fish
tank granuloma"
explanation: >-
The cutaneous-mycobacteria review identifies M. marinum as the organism
that causes fish tank granuloma. Evidence source is OTHER as this is a
review.
transmission:
- name: Aquatic traumatic inoculation
description: >-
Exposure to contaminated fresh or salt water, fish, or aquaria after skin
trauma introduces M. marinum into cooler superficial tissues of the hands and
extremities.
evidence:
- reference: PMID:30429139
reference_title: "Cutaneous Mycobacterial Infections."
supports: SUPPORT
evidence_source: OTHER
snippet: >-
Most cases of cutaneous infections take place among individuals who
suffered puncture injuries or other types of trauma in freshwater or salt
water.
explanation: >-
Establishes traumatic inoculation during aquatic exposure as the usual
acquisition route for cutaneous M. marinum infection. Evidence source is
OTHER as this is a review.
environmental:
- name: Aquarium and fish-water exposure after skin trauma
description: >-
Contact with aquarium water, fish tanks, fish, shellfish, or salt or
brackish water after a cut or puncture exposes dermal tissue to M. marinum.
exposure_term:
preferred_term: exposure to water
term:
id: ECTO:9000156
label: exposure to water
influences_mechanisms:
- target: Dermal M. marinum Inoculation and Replication
environmental_effect: TRIGGERS
causal_link_type: DIRECT
description: >-
The aquatic exposure is the source event that places M. marinum into
injured acral skin.
evidence:
- reference: PMID:10987702
reference_title: "Incubation period and sources of exposure for cutaneous Mycobacterium marinum infection: case report and review of the literature."
supports: SUPPORT
evidence_source: OTHER
snippet: >-
Of 193 infections with known exposures, 49% were aquarium-related, 27.4%
were related to fish or shellfish injuries, and 8.8% were related to
injuries associated with saltwater or brackish water.
explanation: >-
The pooled exposure review identifies the aquaria, fish or shellfish
trauma, and salt or brackish water events that trigger cutaneous disease.
evidence:
- reference: PMID:12153378
reference_title: "Sixty-three cases of Mycobacterium marinum infection: clinical features, treatment, and antibiotic susceptibility of causative isolates."
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
snippet: "In 53 (84%) of the patients, inoculation was related to fish tank exposure."
explanation: >-
The French national culture-confirmed series quantifies fish-tank exposure
as the dominant recorded inoculation setting.
- name: Local corticosteroid injection at the lesion site
description: >-
Intralesional corticosteroid exposure at the infected hand lesion can
predispose to tenosynovial complication, plausibly by locally suppressing
containment of an unrecognized mycobacterial infection.
influences_mechanisms:
- target: Deep Contiguous M. marinum Extension
environmental_effect: PREDISPOSES
causal_link_type: DIRECT
description: >-
The injection occurs locally at the lesion site and is associated with
later tenosynovitis rather than with acquisition of the bacterium.
evidence:
- reference: PMID:40535516
reference_title: "Cutaneous Infection Caused by Mycobacterium marinum in Thailand: A 14-Year Retrospective Cohort Analysis of Clinical Characteristics, Complication Risks, and Treatment Efficacy."
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
snippet: >-
Females, patients with a history of intralesional corticosteroid injection,
and older patients are predisposed to tenosynovitis.
explanation: >-
The Thai cohort identifies intralesional corticosteroid injection history
as one of the factors predisposing to M. marinum tenosynovitis.
evidence:
- reference: PMID:28387180
reference_title: "Mycobacterium marinum."
supports: SUPPORT
evidence_source: OTHER
snippet: >-
Clinics distinguished skin and soft tissue lesions (typically sporotrichoid
or subacute hand nodules) and lesions disseminated to joint and bone, often
related with the local use of corticosteroids.
explanation: >-
The M. marinum review links joint and bone dissemination to local
corticosteroid use. Evidence source is OTHER as this is a review.
pathophysiology:
- name: Dermal M. marinum Inoculation and Replication
description: >-
Traumatic contact with contaminated water or fish introduces M. marinum into
cooler superficial tissue, where its low-temperature growth preference lets
bacilli persist in acral skin and soft tissue.
evidence:
- reference: PMID:28387180
reference_title: "Mycobacterium marinum."
supports: SUPPORT
evidence_source: OTHER
snippet: >-
The diagnosis is highly suspected by the mode of infection, which is related
to the hobby of fishkeeping, professional handling of marine shells, or
swimming in nonchlorinated pools.
explanation: >-
The review links cutaneous M. marinum infection to aquatic exposure routes.
Evidence source is OTHER as this is a review.
downstream:
- target: Granulomatous Dermal Inflammation
description: Inoculated M. marinum elicits granulomatous skin inflammation.
causal_link_type: DIRECT
evidence:
- reference: PMID:29493404
reference_title: "Mycobacterium marinum infection in fish and man: epidemiology, pathophysiology and management; a review."
supports: SUPPORT
evidence_source: OTHER
snippet: >-
Human infections with Mycobacterium marinum hypothetically are classified
into four clinical categories (type I-type IV) and have been associated
with the exposure of damaged skin to polluted water from fish pools or
contacting objects contaminated with infected fish.
explanation: >-
The review places damaged-skin aquatic exposure upstream of the human
granulomatous skin infection. Evidence source is OTHER as this is a review.
- name: Granulomatous Dermal Inflammation
description: >-
M. marinum infection in skin and synovium produces a chronic granulomatous
tissue response, with suppurative lesions at the acute pole and numerous
well-formed granulomas at the chronic pole.
conforms_to: "granuloma_formation#Epithelioid Transformation and Multinucleated Giant Cell Formation"
cell_types:
- preferred_term: macrophage
term:
id: CL:0000235
label: macrophage
- preferred_term: epithelioid macrophage
term:
id: CL:0002150
label: epithelioid macrophage
- preferred_term: multinucleated giant cell
term:
id: CL:0000647
label: multinucleated giant cell
biological_processes:
- preferred_term: granuloma formation
term:
id: GO:0002432
label: granuloma formation
evidence:
- reference: PMID:3840985
reference_title: "The histopathologic spectrum in Mycobacterium marinum infection."
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
snippet: >-
A range of inflammatory changes were seen in both synovial and skin lesions,
varying from mostly acute inflammation with suppuration to a more chronic
process with numerous, well-formed granulomas.
explanation: >-
The histopathology case series directly establishes granulomatous
inflammation in culture-positive M. marinum skin and synovial lesions.
downstream:
- target: Cutaneous Papule
description: Granulomatous cutaneous infection can present as a papule.
causal_link_type: DIRECT
evidence:
- reference: PMID:30429139
reference_title: "Cutaneous Mycobacterial Infections."
supports: SUPPORT
evidence_source: OTHER
snippet: >-
The clinical spectrum of cutaneous disease caused by M. marinum includes a
solitary papule or nodule that may ulcerate and then spreads in a
sporotrichoid pattern (lymphangitic spread)
explanation: The review lists papules in the M. marinum cutaneous spectrum.
- target: Cutaneous Nodule
description: Granulomatous cutaneous infection can present as a skin nodule.
causal_link_type: DIRECT
evidence:
- reference: PMID:30429139
reference_title: "Cutaneous Mycobacterial Infections."
supports: SUPPORT
evidence_source: OTHER
snippet: >-
The clinical spectrum of cutaneous disease caused by M. marinum includes a
solitary papule or nodule that may ulcerate and then spreads in a
sporotrichoid pattern (lymphangitic spread)
explanation: The review lists nodules in the M. marinum cutaneous spectrum.
- target: Skin Plaque
description: M. marinum cutaneous infection can present as a plaque.
causal_link_type: DIRECT
evidence:
- reference: PMID:40535516
reference_title: "Cutaneous Infection Caused by Mycobacterium marinum in Thailand: A 14-Year Retrospective Cohort Analysis of Clinical Characteristics, Complication Risks, and Treatment Efficacy."
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
snippet: "plaques and nodules as the primary morphologies (51.9% and 29.6%, respectively)"
explanation: The Thai cohort identifies plaques and nodules as the main lesion morphologies.
- target: Skin Ulcer
description: M. marinum papules or nodules can ulcerate.
causal_link_type: DIRECT
evidence:
- reference: PMID:30429139
reference_title: "Cutaneous Mycobacterial Infections."
supports: SUPPORT
evidence_source: OTHER
snippet: >-
The clinical spectrum of cutaneous disease caused by M. marinum includes a
solitary papule or nodule that may ulcerate and then spreads in a
sporotrichoid pattern (lymphangitic spread)
explanation: The review states that M. marinum papules or nodules may ulcerate.
- target: Sporotrichoid Lymphatic Dissemination
description: >-
Granulomatous dermal infection can spread proximally along superficial
lymphatic drainage in a sporotrichoid pattern.
causal_link_type: DIRECT
evidence:
- reference: PMID:30429139
reference_title: "Cutaneous Mycobacterial Infections."
supports: SUPPORT
evidence_source: OTHER
snippet: >-
The clinical spectrum of cutaneous disease caused by M. marinum includes a
solitary papule or nodule that may ulcerate and then spreads in a
sporotrichoid pattern (lymphangitic spread)
explanation: >-
The review places sporotrichoid lymphatic spread downstream of the
primary papular or nodular cutaneous lesion.
- target: Deep Contiguous M. marinum Extension
description: >-
In advanced disease, cutaneous M. marinum infection can extend directly
from skin into adjacent deep structures.
causal_link_type: DIRECT
evidence:
- reference: PMID:20427845
reference_title: "Review article: Mycobacterium marinum infection of the hand and wrist."
supports: SUPPORT
evidence_source: OTHER
snippet: "extension of the infection from the skin to the tenosynovium"
explanation: >-
The hand/wrist review links deep tendon-sheath disease to extension from
the original skin infection.
- name: Sporotrichoid Lymphatic Dissemination
description: >-
In some cutaneous infections, M. marinum spreads proximally along superficial
lymphatic drainage and seeds successive nodules in a sporotrichoid pattern.
evidence:
- reference: PMID:30429139
reference_title: "Cutaneous Mycobacterial Infections."
supports: SUPPORT
evidence_source: OTHER
snippet: "Characteristic sporotrichoid nodular lymphangitic spread of Mycobacterium marinum."
explanation: >-
The review figure caption identifies M. marinum as a cause of
sporotrichoid nodular lymphangitic spread.
downstream:
- target: Sporotrichoid Nodular Lymphangitis
description: >-
Cutaneous M. marinum infection can spread proximally along superficial
lymphatics, producing sequential nodules in a sporotrichoid pattern.
causal_link_type: INDIRECT_KNOWN_INTERMEDIATES
evidence:
- reference: PMID:30429139
reference_title: "Cutaneous Mycobacterial Infections."
supports: SUPPORT
evidence_source: OTHER
snippet: "Characteristic sporotrichoid nodular lymphangitic spread of Mycobacterium marinum."
explanation: >-
The figure caption in the review names M. marinum as a cause of
sporotrichoid nodular lymphangitic spread.
- name: Deep Contiguous M. marinum Extension
description: >-
In delayed or advanced infection, M. marinum can extend from skin and
subcutaneous tissue into tendon sheaths, joints, or bone, causing
tenosynovitis, septic arthritis, or osteomyelitis.
evidence:
- reference: PMID:11950119
reference_title: "Mycobacterium marinum infection in Taiwan."
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
snippet: >-
Mycobacterium marinum often causes skin infections, tenosynovitis,
arthritis, and osteomyelitis
explanation: The clinical series lists tendon, joint, and bone disease in M. marinum infection.
- reference: PMID:20427845
reference_title: "Review article: Mycobacterium marinum infection of the hand and wrist."
supports: SUPPORT
evidence_source: OTHER
snippet: "extension of the infection from the skin to the tenosynovium"
explanation: The hand/wrist review links delayed management to deep tendon-sheath extension.
- reference: PMID:12153378
reference_title: "Sixty-three cases of Mycobacterium marinum infection: clinical features, treatment, and antibiotic susceptibility of causative isolates."
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
snippet: "infection was spread to deeper structures in 18 (29%) of the patients."
explanation: >-
The French national culture-confirmed series quantifies deep-structure
extension in M. marinum infection.
downstream:
- target: Tenosynovitis
description: M. marinum can spread from skin into tendon sheaths.
causal_link_type: DIRECT
evidence:
- reference: PMID:11950119
reference_title: "Mycobacterium marinum infection in Taiwan."
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
snippet: >-
One patient had septic arthritis, the other 13 had skin infections and/or
tenosynovitis.
explanation: >-
The Taiwan series observed tenosynovitis among patients with M. marinum
infection.
- target: Septic Arthritis
description: M. marinum can involve joints and cause septic arthritis.
causal_link_type: DIRECT
evidence:
- reference: PMID:11950119
reference_title: "Mycobacterium marinum infection in Taiwan."
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
snippet: "One patient had septic arthritis"
explanation: The Taiwan series observed septic arthritis caused by M. marinum.
- target: Osteomyelitis
description: M. marinum can involve bone and cause osteomyelitis.
causal_link_type: DIRECT
evidence:
- reference: PMID:11950119
reference_title: "Mycobacterium marinum infection in Taiwan."
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
snippet: >-
Mycobacterium marinum often causes skin infections, tenosynovitis,
arthritis, and osteomyelitis
explanation: The Taiwan series lists osteomyelitis as a manifestation of M. marinum infection.
- name: Mycobacterial RNA Polymerase (Rifampicin Target)
description: >-
M. marinum depends on DNA-dependent RNA polymerase for transcription.
Rifampicin, used as one component of multidrug regimens for this infection,
inhibits bacterial RNA polymerase and is paired with companion drugs to
avoid rifamycin monotherapy.
role: therapeutic_vulnerability
conforms_to: "bacterial_rna_polymerase_inhibition#Bacterial RNA Polymerase (Rifamycin Target)"
biological_processes:
- preferred_term: DNA-Templated Transcription
term:
id: GO:0006351
label: DNA-templated transcription
evidence:
- reference: PMID:32342856
reference_title: "Inhibition of RNA Polymerase by Rifampicin and Rifamycin-Like Molecules."
supports: SUPPORT
evidence_source: OTHER
snippet: >-
The most clinically important and extensively studied class of antibiotics
known to inhibit bacterial RNAP are the rifamycins.
explanation: >-
Establishes bacterial RNA polymerase as the rifampicin target, the step
this node represents. Evidence source is OTHER as this is a review.
- name: Mycobacterial Ribosomal Translation
description: >-
The bacterial ribosome is the shared target for macrolides and tetracyclines,
drug classes used in M. marinum combination therapy. Inhibiting translation
arrests mycobacterial protein synthesis.
role: therapeutic_vulnerability
conforms_to: "bacterial_protein_synthesis_inhibition#Bacterial mRNA Translation by the Ribosome"
biological_processes:
- preferred_term: Translation
term:
id: GO:0006412
label: translation
evidence:
- reference: PMID:24336183
reference_title: "Ribosome-targeting antibiotics and mechanisms of bacterial resistance."
supports: SUPPORT
evidence_source: OTHER
snippet: "The ribosome is one of the main antibiotic targets in the bacterial cell."
explanation: >-
Establishes the bacterial ribosome as the target class for macrolides and
tetracyclines. Evidence source is OTHER as this is a review.
phenotypes:
- name: Cutaneous Papule
category: Dermatologic
phenotype_term:
preferred_term: Papule
term:
id: HP:0200034
label: Papule
evidence:
- reference: PMID:30429139
reference_title: "Cutaneous Mycobacterial Infections."
supports: SUPPORT
evidence_source: OTHER
snippet: >-
The clinical spectrum of cutaneous disease caused by M. marinum includes a
solitary papule or nodule that may ulcerate and then spreads in a
sporotrichoid pattern (lymphangitic spread)
explanation: The review lists papules as a cutaneous manifestation of M. marinum infection.
- name: Cutaneous Nodule
category: Dermatologic
frequency: >-
29.6% as a primary morphology in a 27-patient Thai cohort.
phenotype_term:
preferred_term: Skin nodule
term:
id: HP:0200036
label: Skin nodule
evidence:
- reference: PMID:30429139
reference_title: "Cutaneous Mycobacterial Infections."
supports: SUPPORT
evidence_source: OTHER
snippet: >-
The clinical spectrum of cutaneous disease caused by M. marinum includes a
solitary papule or nodule that may ulcerate and then spreads in a
sporotrichoid pattern (lymphangitic spread)
explanation: The review lists nodules as a cutaneous manifestation of M. marinum infection.
- name: Skin Ulcer
category: Dermatologic
phenotype_term:
preferred_term: Skin ulcer
term:
id: HP:0200042
label: Skin ulcer
evidence:
- reference: PMID:30429139
reference_title: "Cutaneous Mycobacterial Infections."
supports: SUPPORT
evidence_source: OTHER
snippet: >-
The clinical spectrum of cutaneous disease caused by M. marinum includes a
solitary papule or nodule that may ulcerate and then spreads in a
sporotrichoid pattern (lymphangitic spread)
explanation: The review states that M. marinum papules or nodules may ulcerate.
- name: Skin Plaque
category: Dermatologic
frequency: >-
51.9% as a primary morphology in a 27-patient Thai cohort.
phenotype_term:
preferred_term: Skin plaque
term:
id: HP:0200035
label: Skin plaque
evidence:
- reference: PMID:40535516
reference_title: "Cutaneous Infection Caused by Mycobacterium marinum in Thailand: A 14-Year Retrospective Cohort Analysis of Clinical Characteristics, Complication Risks, and Treatment Efficacy."
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
snippet: "plaques and nodules as the primary morphologies (51.9% and 29.6%, respectively)"
explanation: >-
The Thai cohort reported plaques as the most common primary morphology.
- name: Sporotrichoid Nodular Lymphangitis
category: Dermatologic
frequency: >-
25/35 in a Han Chinese dermatology series and 29.6% in a Thai tertiary-care
cohort, showing substantial cohort variation.
description: >-
Nodular lymphangitic spread in a sporotrichoid pattern, with lesions
extending along superficial lymphatic drainage from the inoculation site.
phenotype_term:
preferred_term: Sporotrichoid nodular lymphangitis
notes: >-
Deliberately left without a `term:` binding. `uv run runoak -i ols:hp search
lymphangitis` returned lymphangiectasia/lymphangioma terms rather than an
inflammatory lymphangitis term, and `uv run runoak -i ols:hp search
sporotrichoid` returned no HPO matches.
evidence:
- reference: PMID:30429139
reference_title: "Cutaneous Mycobacterial Infections."
supports: SUPPORT
evidence_source: OTHER
snippet: "Characteristic sporotrichoid nodular lymphangitic spread of Mycobacterium marinum."
explanation: >-
The review figure caption identifies this nodular lymphangitic pattern as
characteristic of M. marinum.
- reference: PMID:39262684
reference_title: "A Series of 35 Cutaneous Infections Caused by Mycobacterium marinum in Han Chinese Population."
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
snippet: "Of the 35 patients, 25 (71.4%) had lesions with sporotrichoid patterns."
explanation: >-
The Han Chinese series quantifies sporotrichoid lesions in a
dermatology-referred cohort.
- reference: PMID:40535516
reference_title: "Cutaneous Infection Caused by Mycobacterium marinum in Thailand: A 14-Year Retrospective Cohort Analysis of Clinical Characteristics, Complication Risks, and Treatment Efficacy."
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
snippet: "A sporotrichoid pattern was observed in one-third of the patients (29.6%)."
explanation: >-
The Thai cohort quantifies sporotrichoid lesions in a separate clinical
setting, supporting variable frequency across cohorts.
- name: Tenosynovitis
category: Musculoskeletal
frequency: 22.2% in a 27-patient Thai cohort.
phenotype_term:
preferred_term: Tenosynovitis
term:
id: HP:6001438
label: Tenosynovitis
evidence:
- reference: PMID:11950119
reference_title: "Mycobacterium marinum infection in Taiwan."
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
snippet: >-
One patient had septic arthritis, the other 13 had skin infections and/or
tenosynovitis.
explanation: The Taiwan series observed tenosynovitis in M. marinum infection.
- reference: PMID:40535516
reference_title: "Cutaneous Infection Caused by Mycobacterium marinum in Thailand: A 14-Year Retrospective Cohort Analysis of Clinical Characteristics, Complication Risks, and Treatment Efficacy."
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
snippet: >-
Tenosynovitis occurred in 22.2% of patients, with a female preponderance
(adjusted p = 0.028), advanced age (p = 0.032), and prior steroid injections
at the lesion site (p = 0.007) being common factors.
explanation: >-
The Thai cohort quantifies tenosynovitis frequency and its associated
lesion-site steroid injection risk.
- name: Septic Arthritis
category: Musculoskeletal
phenotype_term:
preferred_term: Septic arthritis
term:
id: HP:0003095
label: Septic arthritis
evidence:
- reference: PMID:11950119
reference_title: "Mycobacterium marinum infection in Taiwan."
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
snippet: "One patient had septic arthritis"
explanation: The Taiwan series observed M. marinum septic arthritis.
- name: Osteomyelitis
category: Musculoskeletal
phenotype_term:
preferred_term: Osteomyelitis
term:
id: HP:0002754
label: Osteomyelitis
evidence:
- reference: PMID:11950119
reference_title: "Mycobacterium marinum infection in Taiwan."
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
snippet: >-
Mycobacterium marinum often causes skin infections, tenosynovitis,
arthritis, and osteomyelitis
explanation: The series names osteomyelitis as a manifestation of M. marinum infection.
diagnosis:
- name: Tissue culture and histopathology
description: >-
Biopsy material should be sent for mycobacterial culture and histopathology.
Cultures need explicit low-temperature incubation around 30 C and prolonged
holding, because routine microscopy and cultures can be falsely negative.
results: >-
Isolation of M. marinum from a compatible skin, tendon-sheath, joint, or
bone specimen confirms the diagnosis.
evidence:
- reference: PMID:26143432
reference_title: "Nontuberculous Mycobacteria: Skin and Soft Tissue Infections."
supports: SUPPORT
evidence_source: OTHER
snippet: "Obtaining tissue for mycobacterial culture and histopathology aids diagnosis."
explanation: >-
The skin-and-soft-tissue NTM review identifies tissue mycobacterial
culture and histopathology as diagnostic material. Evidence source is
OTHER as this is a review.
- reference: PMID:28387180
reference_title: "Mycobacterium marinum."
supports: SUPPORT
evidence_source: OTHER
snippet: >-
microscopy and culture are often negative because growth requires low
temperature (30°C) and several weeks to succeed in primary cultivation
explanation: >-
The M. marinum-specific review explains the culture condition that can
make routine microbiology falsely negative.
- name: T-SPOT.TB interferon-gamma release assay
description: >-
T-SPOT.TB can be positive in cutaneous M. marinum infection because the
organism shares ESAT-6/CFP-10 antigens with M. tuberculosis, but it is an
adjunctive rather than species-confirming test.
results: >-
A positive assay supports a compatible cutaneous mycobacterial infection
after tuberculosis has been excluded.
evidence:
- reference: PMID:41147233
reference_title: "Application of T-SPOT.TB in the Diagnosis of Cutaneous Myco-bacterium marinum Infections and Evaluation of Treatment Efficacy."
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
snippet: >-
The baseline T-SPOT.TB positivity rate was 71% (95% CI: 63.2-77.8%).
explanation: >-
The 145-patient retrospective series quantifies baseline T-SPOT.TB
positivity among cutaneous M. marinum cases after excluding tuberculosis.
- name: Molecular species identification
description: >-
PCR-based or targeted next-generation sequencing assays can identify M.
marinum from tissue or culture material when paired with the compatible
clinical and histopathologic picture.
results: >-
Identification of M. marinum sequence confirms the causative nontuberculous
mycobacterial species.
evidence:
- reference: PMID:42639276
reference_title: "Mycobacterium marinum Infection: A Clinical Case Report and 5-Year Systematic Literature Review (2021-2025)."
supports: SUPPORT
evidence_source: OTHER
snippet: >-
Histopathological examination of skin biopsy specimens demonstrated
infectious granuloma formation, and combined bacterial culture, hsp65 PCR
and next-generation sequencing (NGS) confirmed M. marinum as the causative
pathogen.
explanation: >-
The case report and systematic review documents hsp65 PCR and NGS as
species-identification tools. Evidence source is OTHER because this is a
case report embedded in a review.
histopathology:
- name: Granulomatous and suppurative inflammation
description: >-
Biopsies of culture-positive skin or synovial lesions can show a spectrum
from acute suppurative inflammation to chronic well-formed granulomas, and
organisms may be absent from routine sections.
finding_term:
preferred_term: granulomatous and suppurative inflammation
diagnostic: true
notes: >-
Left without a `term:` binding because the HistopathologyFindingTerm dynamic
enum is rooted in NCIT histopathology-result concepts, and the true NCIT
granuloma term is outside that branch.
evidence:
- reference: PMID:3840985
reference_title: "The histopathologic spectrum in Mycobacterium marinum infection."
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
snippet: >-
A range of inflammatory changes were seen in both synovial and skin lesions,
varying from mostly acute inflammation with suppuration to a more chronic
process with numerous, well-formed granulomas.
explanation: >-
The culture-confirmed histopathology series describes the key microscopic
spectrum in M. marinum tissue.
treatments:
- name: Multidrug antimycobacterial therapy
description: >-
Localized cutaneous M. marinum is treated with a species-directed
multidrug oral regimen, commonly combining agents such as a macrolide,
rifamycin, ethambutol, trimethoprim-sulfamethoxazole, or a tetracycline.
Regimen choice and duration vary with susceptibility and depth of disease.
treatment_term:
preferred_term: Pharmacotherapy
term:
id: NCIT:C15986
label: Pharmacotherapy
therapeutic_agent:
- preferred_term: rifampicin
term:
id: CHEBI:28077
label: rifampicin
- preferred_term: clarithromycin
term:
id: CHEBI:3732
label: clarithromycin
- preferred_term: ethambutol
term:
id: CHEBI:4877
label: ethambutol
- preferred_term: trimethoprim
term:
id: CHEBI:45924
label: trimethoprim
- preferred_term: sulfamethoxazole
term:
id: CHEBI:9332
label: sulfamethoxazole
- preferred_term: doxycycline
term:
id: CHEBI:50845
label: doxycycline
therapeutic_modality: SMALL_MOLECULE
target_mechanisms:
- target: Mycobacterial RNA Polymerase (Rifampicin Target)
treatment_effect: INHIBITS
description: The rifampicin component inhibits bacterial RNA polymerase.
- target: Mycobacterial Ribosomal Translation
treatment_effect: INHIBITS
description: The macrolide or tetracycline component inhibits bacterial translation.
evidence:
- reference: PMID:30429139
reference_title: "Cutaneous Mycobacterial Infections."
supports: SUPPORT
evidence_source: OTHER
snippet: >-
Treatment of this mycobacterial infection requires a combination of at
least two drugs, including a macrolide, ethambutol,
trimethoprim-sulfamethoxazole, or rifamycin
explanation: >-
The review supports multidrug therapy assembled from these active drug
classes. Evidence source is OTHER as this is a review.
- reference: PMID:28387180
reference_title: "Mycobacterium marinum."
supports: SUPPORT
evidence_source: OTHER
snippet: "The treatment is not standardized, and no randomized control trials have been done."
explanation: >-
The M. marinum review supports keeping the treatment description
non-prescriptive rather than encoding a single definitive regimen.
- reference: PMID:35308482
reference_title: "Treatment and Outcome of Culture-Confirmed Mycobacterium marinum Disease."
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
snippet: "Antibiotic treatment cured 36/40 patients (90%) after a mean treatment duration of 25 weeks."
explanation: >-
The Dutch culture-confirmed cohort provides outcome evidence for prolonged
antibiotic treatment.
- name: Surgical debridement for deep infection
description: >-
Deep hand or wrist disease with tenosynovial, joint, or bone involvement can
require operative debridement in addition to antimycobacterial therapy.
treatment_term:
preferred_term: Debridement
term:
id: NCIT:C51682
label: Debridement
therapeutic_modality: SURGERY
target_mechanisms:
- target: Deep Contiguous M. marinum Extension
description: >-
Debridement removes infected or necrotic deep tissue that antimicrobial
therapy alone may not clear.
evidence:
- reference: PMID:20427845
reference_title: "Review article: Mycobacterium marinum infection of the hand and wrist."
supports: SUPPORT
evidence_source: OTHER
snippet: "debridement is indicated in patients with deep-seated infections"
explanation: >-
The hand/wrist review recommends debridement for deep-seated M. marinum
infections. Evidence source is OTHER as this is a review.
- reference: PMID:40535516
reference_title: "Cutaneous Infection Caused by Mycobacterium marinum in Thailand: A 14-Year Retrospective Cohort Analysis of Clinical Characteristics, Complication Risks, and Treatment Efficacy."
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
snippet: >-
Surgical debridement combined with oral antibiotics successfully treated
all tenosynovitis patients, with no recurrence during the 1-year follow-up.
explanation: >-
The Thai cohort supports debridement as part of successful management for
M. marinum tenosynovitis.
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.
Create: Aquarium Granuloma · 2026-09-28T11:55:09Z · View source
Created a de-novo Aquarium Granuloma entry for MONDO:0043314. Curated Mycobacterium marinum as the infectious agent; traumatic freshwater or saltwater inoculation as the acquisition route; papules, cutaneous nodules, ulceration, sporotrichoid nodular lymphangitis, tenosynovitis, septic arthritis, and osteomyelitis as connected phenotypes; tissue culture and histopathology as the diagnostic pathway; and multidrug antimycobacterial therapy plus surgical debridement for deep infection. Added cache-backed evidence from focused M. marinum and cutaneous nontuberculous-mycobacteria reviews plus a clinical series. Deep research: one claude_code run, committed; reference_validation resolved 55/55 references with 0 not_found and term_validation resolved 94/94 terms. just preflight-dr returned SKIP because MONDO records no causal gene for this infectious disease, so the gene-identity heuristic cannot discriminate; the MONDO ID, synonym set, and infectious-agent identity were checked independently before curation.
Aquarium granuloma is a localized, chronic, granulomatous skin and soft-tissue infection caused by Mycobacterium marinum, a slow-growing, photochromogenic nontuberculous mycobacterium (NTM) of fresh and salt water. It is an inoculation infection: the organism enters through a pre-existing break in the skin during contact with aquarium water, fish, shellfish, or non-chlorinated pools. Because M. marinum grows optimally near 30 °C and poorly at core body temperature, disease is confined almost entirely to the cool, distal skin — above all the hand and forearm — and progression to deep structures or dissemination is the exception rather than the rule.
Two conditions are jointly necessary, which is the single most useful framing for curation:
"Two conditions are required to develop M. marinum infection: (1) skin solution of continuity and (2) exposure to the contaminated water or direct contact with fish or shellfish." [A] — Canetti et al. 2022, PMID:35864075
Among NTM, it occupies a distinctive epidemiological position:
"Among nontuberculous mycobacteria (NTM), it is the leading cause of extrarespiratory human infections worldwide." [A] — Aubry et al. 2017, PMID:28387180
| Resource | Identifier | Label |
|---|---|---|
| MONDO | MONDO:0043314 | aquarium granuloma |
| MeSH (supplementary concept) | C535526 | — |
| SNOMED CT | 240417004 | — |
| UMLS | C0275708 | — |
| MedGen | 78814 | — |
| ICD-10-CM | A31.1 | Cutaneous mycobacterial infection |
| NCBI Taxonomy (agent) | NCBITaxon:1781 | Mycobacterium marinum |
MONDO's own definition: "A skin condition caused by Mycobacterium marinum, characterized by a skin lesion that presents roughly three weeks after exposure." MONDO places the term under two parents, both verified: MONDO:0020590 (mycobacterial infectious disease) and MONDO:0024295 (skin disease caused by bacterial infection). The term conforms to MONDO's infectious_disease_by_agent design pattern, which is the correct model for a dismech disease_term binding here.
ICD-11: not verified in this session. The WHO ICD-11 API requires OAuth, so no ICD-11 code should be written into the entry from this report. ICD-10-CM A31.1 was confirmed against the NLM Clinical Tables service and is exact.
OMIM / Orphanet: not applicable. This is an acquired environmental infection with no Mendelian basis, so no OMIM phenotype number exists, and the concept is not a rare-disease entity in the Orphanet sense.
MONDO records: fish tank granuloma, Mycobacterium marinum infection, Mycobacterium marinum skin disease, Mycobacterium marinum caused skin disease, M. marinum, aquarium granuloma.
Additional names in the literature but not in MONDO's synonym list: swimming pool granuloma, fish fancier's finger, fish handler's disease, fish gambler's tenosynovitis. The name tracks the exposure rather than the biology:
"M. marinum causes the so-called 'fish finger's fancier' or fish tank granuloma, or swimming pool granuloma in humans, depending on where the infection was contracted." [F] — search snippet, Hashish et al. 2018, PMID:29493404
M. balnei and M. platypoecilus are historical taxonomic synonyms of the organism.
All quantitative data below are individual-patient case series and retrospective cohorts, not registry or EHR-derived aggregates. There is no disease registry for aquarium granuloma. The largest denominators available are laboratory-based: a nationwide Dutch laboratory cohort (n=40) and single-centre dermatology series from China (n=145 and n=200 isolates), Thailand (n=27), France (n=63), Taiwan (n=27), and the USA (n=31). Prevalence figures therefore rest on culture-confirmed case counts, which systematically undercount because culture sensitivity is poor (see §10).
A single necessary and sufficient agent: Mycobacterium marinum (NCBITaxon:1781). This is a monomicrobial infectious etiology; there is no genetic cause and no known non-infectious mimic of the entity itself.
Microbiological properties that drive the clinical picture:
"Microbiological characteristics include the fact that it grows in 7 to 14 days with photochromogenic colonies and is difficult to differentiate from Mycobacterium ulcerans and other mycolactone-producing NTM on a molecular basis." [A] — Aubry et al. 2017, PMID:28387180
The organism is a Runyon group I photochromogen. Its restricted thermal optimum (roughly 30–33 °C) is the single most important physiological fact for this disease, since it both explains the anatomical distribution of lesions and defeats routine mycobacterial culture at 37 °C.
Historical first description (two dates circulate and should be recorded carefully — they refer to different events):
"The first human cases of M. marinum infection were reported from skin lesions of swimmers in a contaminated pool, in 1951, in Sweden by Norden and Linell." [A] — Canetti et al. 2022, PMID:35864075
"Mycobacterium marinum was first described in humans in 1954, known to infect fish species and contaminate water and fish products." [A] — Kravvas et al. 2024, PMID:39759953
Exposure source distribution, from the largest systematic exposure review (193 infections with a known exposure):
| Exposure | Share |
|---|---|
| Aquarium-related | 49% |
| Fish or shellfish injury | 27.4% |
| Saltwater or brackish-water injury | 8.8% |
"Of 193 infections with known exposures, 49% were aquarium-related, 27.4% were related to fish or shellfish injuries, and 8.8% were related to injuries associated with saltwater or brackish water." [A] — Jernigan & Farr 2000, PMID:10987702
In the French national series, fish-tank exposure dominated even more heavily:
"In 53 (84%) of the patients, inoculation was related to fish tank exposure." [A] — Aubry et al. 2002, PMID:12153378
Occupational and hobby exposures recorded across series: home aquarium keeping and tank cleaning, ornamental-fish trade, commercial fishing, fish mongering and fish processing, seafood preparation, shellfish handling, aquaculture work, and swimming in non-chlorinated pools. In a Chinese series of 35, fish-bone puncture wounds accounted for 54.3% and an aquatic-related occupation for 37.1% (PMID:39262684). In the Thai cohort, only 59.3% of patients reported any fish or water exposure at all — meaning roughly 40% of culture-confirmed cases had no elicited aquatic history (PMID:40535516). A negative exposure history does not exclude the diagnosis.
Iatrogenic risk factor of particular importance — intralesional corticosteroid. This is both a risk factor for deep extension and a diagnostic trap, because trigger-finger injection sites are exactly where tenosynovitis then appears:
"Tenosynovitis occurred in 22.2% of patients, with a female preponderance (adjusted p = 0.028), advanced age (p = 0.032), and prior steroid injections at the lesion site (p = 0.007) being common factors." [A] — Jirawattanadon et al. 2025, PMID:40535516
"Additionally, three patients (11.1%) developed lesions at the same site as previously reported for intralesional triamcinolone injections, which had been administered 3–8 weeks before the onset of the lesion for the treatment of stenosing tenosynovitis (or trigger fingers)." [F] — Jirawattanadon et al. 2025, PMID:40535516
The 2017 review makes the same point for deep disease generally: lesions "disseminated to joint and bone" are "often related with the local use of corticosteroids" [A] (PMID:28387180).
Systemic immunosuppression. TNF-α inhibitors, systemic corticosteroids, solid-organ and haematopoietic stem-cell transplantation, HIV infection, poorly controlled diabetes, and autoimmune disease on immunosuppressants. These do not appear to greatly increase susceptibility to the ordinary cutaneous form but strongly shift the disease toward deep, multifocal, and disseminated presentations and toward longer treatment:
"The mean duration of cure was 5.6 ± 3.1 months, with immunosuppression significantly associated with a longer duration (p = 0.047)." [A] — PMID:40535516
"Systemic dissemination is exceptional and has been reported to occur only in immunocompromised patients (e.g., solid-organ and hematopoietic stem cell transplant recipients or those on anti-TNF treatment)." [F] — search snippet, Aubry et al. 2017, PMID:28387180
Demographic factors. Female sex is associated with tenosynovitis specifically (adjusted OR 16.8, p=0.028; PMID:40535516), plausibly confounded by trigger-finger injection practice. Advancing age is associated with tenosynovitis (p=0.032). Mean or median ages across recent series cluster between 45 and 55 years.
No established human genetic risk factor is specific to M. marinum. A targeted PubMed search combining M. marinum with Mendelian susceptibility to mycobacterial disease (MSMD) genes (IFNGR1, STAT1, IL12RB1, "host genetics", "polymorphism", "innate immune") returned no study establishing a M. marinum-specific susceptibility locus; the top hits were antimicrobial-susceptibility papers about the bacterium, not the host. Two things follow for curation:
genetic: section with MSMD genes for this entry. Any inference from the broader NTM/MSMD literature would be an extrapolation this disease's own literature does not support.discussions: KNOWLEDGE_GAP, not as a curated gene.One host-genetic finding from the closely related zebrafish model is worth flagging as mechanistically informative but non-human: LTA4H (leukotriene A4 hydrolase) genotype modulates the inflammatory set-point in mycobacterial disease, with heterozygote advantage and both extremes disadvantaged (Tobin et al. 2012, PMID:22304914). That work was done in zebrafish–M. marinum and human tuberculosis cohorts, not in aquarium granuloma patients.
Not applicable in the usual GxE sense. The interaction that matters is drug–environment: an environmental inoculation event whose outcome is determined by pharmacological interference with host TNF signalling. This is mechanistically grounded rather than merely epidemiological — TNF is the cytokine the zebrafish model shows to be rate-limiting for containment (§6) — and it has a direct management consequence:
"It should be recommended to stop TNF-α inhibitor or other immunosuppressive therapy during the course of antibiotics when M. marinum infection occurs in patients treated with these medications." [F] — search snippet, Aubry et al. 2017, PMID:28387180
Frequencies differ substantially between series, and the differences are informative rather than noise: the Chinese series recruited through a dermatology mycobacterium referral centre (sporotrichoid 71.4%), the Thai series through a general tertiary hospital (sporotrichoid 29.6%). Curate both, stratified by population.
| Phenotype | Suggested HP term | Frequency | Source |
|---|---|---|---|
| Skin nodule | HP:0200036 Skin nodule | 27/35 (77.1%) | PMID:39262684 |
| Papules and nodules | HP:0200034 Papule | 8/27 (29.6%) | PMID:40535516 |
| Skin plaque | HP:0200035 Skin plaque | 14/27 (51.9%) | PMID:40535516 |
| Erythema | HP:0010783 Erythema | 20/35 (57.1%) | PMID:39262684 |
| Abscess | HP:0025615 Abscess | 18.5% (Thai); 1/35 (2.9%) (Chinese) | PMID:40535516; PMID:39262684 |
| Skin ulcer | HP:0200042 Skin ulcer | 3.7% | PMID:40535516 |
| Pustule | HP:0200039 Pustule | 3.7% | PMID:40535516 |
| Granuloma (histological) | HP:0032252 Granuloma | 35/35 (100%) histology; 22/35 (63%) biopsies | PMID:39262684; PMID:8002687 |
| Tenosynovitis | HP:6001438 Tenosynovitis | 6/27 (22.2%) | PMID:40535516 |
| Arthritis | HP:0001369 Arthritis | reported, not quantified in these series | PMID:28387180 |
| Osteomyelitis | HP:0002754 Osteomyelitis | reported, not quantified in these series | PMID:25664190 |
| Joint swelling | HP:0001386 Joint swelling | all tenosynovitis patients had pain and soft-tissue swelling | PMID:40535516 |
| Unusual mycobacterial skin infection | HP:5210242 | the entity-level descriptor | OLS4, verified |
| Disseminated NTM infection | HP:0032283 | exceptional; immunocompromised only | PMID:28387180 |
The sporotrichoid pattern has no HPO term. Explicit OLS4 searches of the HP ontology for Sporotrichoid and for Lymphangitis returned no defining-ontology match (the latter returned only lymphangioma, lymphangiectasis, and pulmonary lymphangiomyomatosis, which are different concepts). Record the ascending linear arrangement of nodules in preferred_term and description, bind the nodule itself to HP:0200036, and put the searched-and-absent finding in notes naming both queries. Do not stretch a lymphatic-malformation term to cover it.
Frequency of the pattern, both series:
"Nodules were the most common cutaneous manifestation (27/35, 77.1%)" and, of those, a sporotrichoid arrangement in 25/27 — 71.4% of the whole series [F] (PMID:39262684).
"A linear arrangement, indicative of a lymphocutaneous or sporotrichoid pattern, was noted in 8 cases (29.6%)." [F] — PMID:40535516
An older US series found local or lymphatic spread even more often:
"The upper extremity was affected in 90% of cases, and lymphatic or local spread was seen during the initial examination or during observation in 25 patients (81%)." [A] — Edelstein 1994, PMID:8002687
Onset. Age of onset is exposure-determined, not developmental: adult-onset in essentially all series (mean 45.5 ± 15.4 years, Thailand; median 55 years, IQR 49–59, China). Paediatric cases occur with aquarium exposure but are not the reported norm. There is no congenital, neonatal, or late-onset pattern to record.
Incubation period — a key curation number.
"Forty cases had known incubation periods (median, 21 days; range, 5-270 days). Thirty-five percent of cases had an incubation period > or =30 days." [A] — Jernigan & Farr 2000, PMID:10987702
The practical consequence, which is the reason the paper exists:
"Because the incubation period for cutaneous M. marinum infection can be prolonged, patients with atypical cutaneous infections should be questioned about high-risk exposures that may have occurred up to 9 months before the onset of symptoms." [A] — PMID:10987702
Note that MONDO's definition ("roughly three weeks after exposure") matches the 21-day median and understates the tail.
Severity. Variable, and best modelled as a staged spectrum rather than a severity grade. The Dutch cohort used a four-stage scheme in which stage IV (deep) disease was 15% of cases (6/40; PMID:35308482). The veterinary/human review describes a type I–IV clinical classification [A] (PMID:29493404). Most disease is mild and localized; morbidity concentrates in the deep-infection minority.
Progression. Chronic, indolent, and slowly progressive if untreated. Lesions evolve over weeks to months from a papule to a nodule, then plaque, with possible superficial crusting, verrucous change, or ulceration; sporotrichoid spread follows lymphatic drainage proximally. Deep extension unfolds over months:
"These infections can progress over several months to involve deeper soft tissues, resulting in arthritis, tenosynovitis, and osteomyelitis, irrespective of the patient's immunological status." [F] — PMID:40535516
Spontaneous resolution over months to years is described but is not a reliable outcome, and the untreated course can run for years — one report documents a 20-year infection.
Quality-of-life impact. No EQ-5D, SF-36, or PROMIS data exist for this disease; a search of the clinical literature surfaces none. What is documented is functional rather than instrumented: hand and finger involvement in 81.5–82.9% of cases, pain and soft-tissue swelling in all tenosynovitis patients, surgical debridement in 28–48% of cohorts, and treatment courses of 4–6 months minimum. Record the absence of formal QoL measurement as a gap rather than substituting a plausible-sounding estimate.
This section is largely not applicable and should be curated as such. Aquarium granuloma is an acquired bacterial infection. There are no causal human genes, no pathogenic variants, no inheritance pattern, no carrier frequency, no ACMG variant classifications, no allele frequencies in gnomAD, and no chromosomal abnormalities. Populating a genetic: section with human genes would be a category error.
Two genuinely relevant molecular-genetic topics exist, and both belong to the pathogen, not the host.
"The genome of the M strain of M. marinum comprises a 6,636,827-bp circular chromosome with 5424 CDS, 10 prophages, and a 23-kb mercury-resistance plasmid. Prominent features are the very large number of genes (57) encoding polyketide synthases (PKSs) and nonribosomal peptide synthases (NRPSs) and the most extensive repertoire yet reported of the mycobacteria-restricted PE and PPE proteins, and related-ESX secretion systems." [A] — Stinear et al. 2008, PMID:18403782
Relatedness to M. tuberculosis (NCBITaxon:1773) is the reason this organism matters beyond dermatology:
"Genome comparisons confirmed the close genetic relationship between these two species, as they share 3000 orthologs with an average amino acid identity of 85%." [A] — PMID:18403782
And the evolutionary asymmetry:
"M. tuberculosis has undergone genome downsizing and extensive lateral gene transfer to become a specialized pathogen of humans and other primates without retaining an environmental niche. M. marinum has maintained a large genome so as to retain the capacity for environmental survival while becoming a broad host range pathogen that produces disease strikingly similar to M. tuberculosis." [A] — PMID:18403782
M. marinum is also the direct progenitor of M. ulcerans (NCBITaxon:1809), which arose by plasmid acquisition and reductive evolution — the basis for the molecular-identification difficulty noted in §1. Reported figures of >97% nucleotide identity with M. ulcerans, >85% with M. tuberculosis, and 29 esx genes in M. marinum against 23 in M. tuberculosis come from [F] secondary-review snippets and must be sourced to the primary paper before use.
Acquired resistance is genuinely rare in M. marinum, which distinguishes it sharply from M. abscessus:
"All strains showed the same susceptibility pattern without acquired resistance." [A] — Aubry et al. 2002, PMID:12153378
The largest modern isolate panel (200 M. marinum) confirms a broadly susceptible wild-type phenotype and, notably, found no resistance determinant worth sequencing in M. marinum — the erm(41), rrl, rrs, gyrA, gyrB sequencing in that study was applied to the M. abscessus comparator arm only (PMID:41135669). See §12 for the MIC data.
Epigenetics, modifier genes, chromosomal abnormalities: not applicable.
Mycobacterium marinum, NCBITaxon:1781. Environmental niche is aquatic and extremely broad:
"M. marinum is a nontuberculous mycobacterium (NTM) and zoonotic pathogen that has been isolated from mammals, fish, amphibians, reptiles, birds, invertebrates, and protists; M. marinum is also widely distributed in nature, especially in aquatic environments." [F] — search snippet, Hashish et al. 2018, PMID:29493404
Reservoirs: fresh, brackish, and marine water; aquarium water, gravel, and biofilm; fish and their mucus and viscera; shellfish; non-chlorinated swimming pools; aquaculture ponds. Tank biofilm matters more than free water, which is why cleaning is the risk activity.
Transmission to humans is percutaneous inoculation only. There is no human-to-human transmission, no respiratory route, and no foodborne route for this disease; the oral route described in the fish literature is fish-to-fish.
"Inoculation to humans occurs through injured skin resulting in the formation of a solitary nodule known as 'fish tank granuloma.'" [A] — Kravvas et al. 2024, PMID:39759953
ECTO binding is a real gap, and the searches are recorded here so the note can be honest. OLS4 searches of the ECTO ontology returned:
| Query | Result |
|---|---|
Mycobacterium marinum |
no match |
marinum |
no match |
aquarium |
no match |
seafood |
no match |
wound |
no match |
exposure to fish |
only ingestion terms (ECTO:0070164 fish oil supplement, ECTO:0070209 dark fish flesh, ECTO:0070189 whitefish) |
exposure to bacterium |
only unrelated taxa |
exposure to Mycobacterium |
ECTO:3000134 M. tuberculosis, ECTO:3000132 M. avium subsp. paratuberculosis, ECTO:3000133 M. tuberculosis subsp. tuberculosis — no M. marinum |
exposure to water |
ECTO:9000156 exposure to water |
swimming pool |
ECTO:5000002 exposure to public swimming pool |
shellfish |
ECTO:0070188 exposure to shellfish via ingestion (ingestion route — wrong route) |
So: two usable terms (ECTO:9000156 for the generic aquatic exposure, ECTO:5000002 for the swimming-pool form), no term for aquarium-water contact, fish handling by contact, or M. marinum exposure. Bind what exists, leave the aquarium-contact exposure with a free-text preferred_term and no term:, and record these exact queries in notes. A new ECTO term request for aquarium-water contact exposure is the right follow-up.
Home aquarium keeping is the single dominant behavioural exposure (49% of known exposures, PMID:10987702). Recreational fishing, seafood preparation at home, and swimming in untreated water follow. Smoking, alcohol, diet, and exercise have no established role and should not be curated.
A reptile-associated case with no aquatic history at all was reported as the first of its kind:
"Our patient had no history of exposure to aquatic organisms but had previously cared for an inland bearded dragon with an unknown illness. Although infection with M. marinum has been reported in reptiles, cases of nonaquatic zoonotic transmission have not been described in the literature." [A] — Kravvas et al. 2024, PMID:39759953
That patient had rheumatoid arthritis and bronchiectasis, was initially diagnosed with Sweet's syndrome, improved on prednisolone and then deteriorated — a clean worked example of the immunosuppression-plus-misdiagnosis trajectory.
The chain below is assembled from human clinicopathological data for steps 1–3 and 9–12, and from the zebrafish–M. marinum model for steps 4–8. The species provenance of each step is stated because it is the central translational caveat of this entry: the granuloma biology is known in extraordinary molecular detail, but almost all of that detail comes from zebrafish infected with the same organism, not from human aquarium granuloma lesions.
"This immune evasion is accomplished by using cell-surface-associated phthiocerol dimycoceroserate (PDIM) lipids to mask underlying pathogen-associated molecular patterns (PAMPs)... Concordantly, the related phenolic glycolipids (PGLs) promote the recruitment of permissive macrophages through a host chemokine receptor 2 (CCR2)-mediated pathway." [A] — PMID:24336213
"The bacterial secreted protein 6-kD early secreted antigenic target (ESAT-6), which has long been implicated in virulence, induced matrix metalloproteinase-9 (MMP9) in epithelial cells neighboring infected macrophages. MMP9 enhanced recruitment of macrophages, which contributed to nascent granuloma maturation and bacterial growth." [A] — PMID:20007864
"This motility enables multiple arriving macrophages to efficiently find and phagocytose infected macrophages undergoing apoptosis, leading to rapid, iterative expansion of infected macrophages and thereby bacterial numbers. The primary granuloma then seeds secondary granulomas via egress of infected macrophages." [A] — PMID:19135887
"TNF is not required for tuberculous granuloma formation, but maintains granuloma integrity indirectly by restricting mycobacterial growth within macrophages and preventing their necrosis." [A] — PMID:18691913
Branch — TNF loss (the anti-TNF-drug arm): loss of TNF signalling leads to accelerated intracellular growth, then necrotic death of overladen macrophages and granuloma breakdown. This is the mechanistic account of why TNF-inhibitor-treated patients get deep and disseminated disease.
Branch — TNF excess: excess TNF induces mitochondrial ROS through RIP1–RIP3, driven by reverse electron transport at complex I after TNF-activated glutamine uptake raises succinate; mROS then induces macrophage necroptosis via cyclophilin D and acid-sphingomyelinase–ceramide, which releases bacteria into the permissive extracellular milieu. Zebrafish, PMID:23582643 and PMID:35737799.
"TNF excess induces mitochondrial reactive oxygen species (ROS) in infected macrophages through RIP1-RIP3-dependent pathways. While initially increasing macrophage microbicidal activity, ROS rapidly induce programmed necrosis (necroptosis) and release mycobacteria into the growth-permissive extracellular milieu." [A] — PMID:23582643
"Excess TNF in mycobacterium-infected macrophages elevates mROS production by reverse electron transport (RET) through complex I. TNF-activated cellular glutamine uptake leads to an increased concentration of succinate, a Krebs cycle intermediate. Oxidation of this elevated succinate by complex II drives RET, thereby generating the mROS superoxide at complex I." [A] — PMID:35737799
All GO CURIEs below were resolved in OLS4 in this session.
| Process | GO term |
|---|---|
| Granuloma formation | GO:0002432 granuloma formation |
| Macrophage activation | GO:0042116 macrophage activation |
| Phagocytosis | GO:0006909 phagocytosis |
| Macrophage chemotaxis (MMP9/CCR2-driven recruitment) | GO:0048246 macrophage chemotaxis |
| Necroptosis of infected macrophages | GO:0070266 necroptotic process |
| Apoptosis of infected macrophages | GO:0006915 apoptotic process |
| TNF production | GO:0032640 tumor necrosis factor production |
| Positive regulation of TNF production | GO:0032760 |
| Type II interferon (IFN-γ) production | GO:0032609 type II interferon production |
| Cellular response to IFN-γ | GO:0071346 cellular response to type II interferon |
| Mitochondrial ROS generation | GO:0072593 reactive oxygen species metabolic process |
| Granuloma-core hypoxia | GO:0001666 response to hypoxia |
| MMP9-mediated matrix remodelling | GO:0022617 extracellular matrix disassembly |
Note GO:0002432's own definition names the cell types the granuloma contains — "compactly grouped T lymphocytes and modified phagocytes such as epithelioid cells, giant cells, and other macrophages" — which makes it the right anchor for the central pathophysiology node.
| Cell type | CL term | Role |
|---|---|---|
| macrophage | CL:0000235 | primary host cell; site of replication and of necroptosis |
| monocyte | CL:0000576 | recruited precursor |
| epithelioid macrophage | CL:0002150 | granuloma architecture |
| multinucleated giant cell | CL:0000647 | granuloma architecture (Langhans-type) |
| neutrophil | CL:0000775 | suppurative pole of the histological spectrum; necrosis-associated program |
| T cell | CL:0000084 | adaptive control; sparse in fish granulomas, prominent in human |
| keratinocyte | CL:0000312 | epidermal compartment; epithelial MMP9 source in the model |
| fibroblast | CL:0000057 | granuloma-associated fibroblast population (2026 single-cell work) |
These categories apply to the pathogen's effectors and the host's infected-cell metabolism, not to a host protein defect. Key molecules: EsxA/ESAT-6 and EsxB/CFP-10 (ESX-1 substrates, mitotoxic and MMP9-inducing); PDIM and PGL cell-wall lipids; host MMP9; host RIPK1/RIPK3; cyclophilin D (mitochondrial permeability transition); acid sphingomyelinase and ceramide; HIF-1. The metabolic lesion is specific and druggable: TNF-driven glutamine uptake → succinate accumulation → complex II oxidation → reverse electron transport at complex I → superoxide. There are no systemic metabolic abnormalities in patients.
Chronic granulomatous inflammation with a demonstrated Th1 component in human lesions, plus signals that complicate a pure-Th1 reading:
Immunohistochemistry on lesional tissue showed significant upregulation of IFN-γ (p<0.01), IL-4 (p<0.05), IL-9 (p<0.05) and FOXP3 (p<0.05), with no significant difference for IL-17 or IL-22. [F] — PMID:39262684
The co-elevation of IL-4, IL-9 and FOXP3 alongside IFN-γ is worth curating as a mixed Th1/Th2/Treg lesional profile rather than flattening it to "Th1 response".
Adaptive immunity is required for control, established genetically in the model:
"However, like rag1 mutant mice infected with M. tuberculosis, we find that rag1 mutant zebrafish are hypersusceptible to M. marinum infection, demonstrating that the control of fish tuberculosis is dependent on adaptive immunity." [A] — Swaim et al. 2006, PMID:17057088
Peripheral IFN-γ release is measurable and clinically exploitable — T-SPOT.TB is positive in 71% of cutaneous cases, reflecting ESAT-6/CFP-10 cross-reactivity between M. marinum and M. tuberculosis (PMID:41147233). This is a direct clinical readout of step 5 of the causal chain.
All accessions below were retrieved from NCBI GEO in this session and are real. Note that all but two are zebrafish or mouse; no human lesional transcriptomic dataset for aquarium granuloma was found.
| Accession | Organism | n | Content |
|---|---|---|---|
| GSE289727 | Danio rerio; M. marinum | 17 | Granuloma dual RNA-seq; neutrophil- and necrosis-driven composite transcriptional programs in necrotic granulomas |
| GSE296119 | Danio rerio | 15 | Paired single-cell and spatial profiling; osteopontin (spp1) macrophage response mediating granuloma formation |
| GSE314022 | Danio rerio | 1 | Wild-type granuloma cells from M. marinum-infected zebrafish |
| GSE324157 / GSE299987 | Danio rerio | 2 / 1 | Single-cell; eicosanoid-defined granuloma-associated fibroblast population, apodb mutant vs WT |
| GSE328953 | Homo sapiens | 15 | THP-1-derived macrophages infected with mycobacteria (cell line, not lesion) |
| GSE235124 | Mus musculus | 11 | Single-cell RNA-seq of infected vs bystander monocytes; WT, espK::tn, ΔRD1 M. marinum |
| GSE289727, GSE287594, GSE189627 | Danio rerio | 17/12/24 | pycard (inflammasome) mutant neutrophil and kidney responses |
| GSE270105 / GSE269547 | Danio rerio | 15 / 6 | mRNA vaccine inducing antimycobacterial immunity via DNA damage repair and autophagy |
GSE296119's own summary states the finding compactly: "mycobacterial infection induces spp1 expression in macrophages and that spp1 ablation results in granuloma formation defects and reduced survival in adult animals." [F]
Proteomics, metabolomics, lipidomics, epigenomics of human lesions: none found. Curate as absent.
| Level | Structure | UBERON term | Involvement |
|---|---|---|---|
| Primary | skin of manus | UBERON:0001519 | hand lesions 81.5%; fingers/hands 82.9% |
| Primary | manual digit skin | UBERON:0003533 | commonest single site |
| Primary | skin of forearm | UBERON:0003403 | sporotrichoid extension target |
| Primary | manus | UBERON:0002398 | regional container |
| Primary | dermis | UBERON:0002067 | the granuloma's compartment |
| Primary | hypodermis | UBERON:0002072 | deeper cutaneous extension |
| Secondary | tendon sheath | UBERON:0000304 | tenosynovitis, 22.2% |
| Secondary | synovial membrane of synovial tendon sheath | UBERON:0011233 | tenosynovitis, precise site |
| Secondary | synovial membrane of synovial joint | UBERON:0002018 | arthritis |
| Secondary | bone element | UBERON:0001474 | osteomyelitis |
| Secondary | olecranon | UBERON:0006810 | bursitis site |
| Secondary | lymphatic vessel | UBERON:0001473 | route of sporotrichoid spread |
Body systems: integumentary (primary), musculoskeletal (secondary), lymphatic (spread route). Respiratory, cardiovascular, nervous, endocrine, and digestive systems are uninvolved except in exceptional dissemination.
The upper-limb predominance is one of the most reproducible numbers in this literature:
"The site of infection was mainly the upper limb (in 60 [95%] of the 63 patients), and infection was spread to deeper structures in 18 (29%) of the patients." [A] — Aubry et al. 2002, PMID:12153378
Independent series: 90% upper extremity (PMID:8002687), 97.1% upper extremities with 82.9% fingers/hands (PMID:39262684), 81.5% hand (PMID:40535516). Lower-limb and knee cases occur — the Thai series includes a leg wound in an agricultural worker and a sporotrichoid plaque on a knee.
Tissues: dermal connective tissue (UBERON:0003585 dermis connective tissue), subcutaneous adipose tissue (UBERON:0002190), synovium, tendon, bone. Cell populations as tabulated in §6.
Subcellular compartments matter unusually much here, because the necrosis mechanism is mitochondrial. Relevant GO cellular components to bind at curation time if a subcellular node is created: the mitochondrion and the phagosome. These two were not resolved in this session — look them up before writing the CURIEs rather than carrying them over from this report.
Predominantly unilateral, matching a single inoculation event, and right-sided more often than left in the one series that reported laterality: right 18/35 (51.4%), left 12/35 (34.3%), bilateral 5/35 (14.3%) — with multiple lesions in 71.4% (PMID:39262684). Bilateral disease should prompt a search for immunosuppression or repeated exposure. The lesion distribution is acral and distal, which is a thermal constraint rather than an anatomical affinity.
The Dutch cohort's four-stage scheme, with stage IV (deep structures) at 15% of cases, is the most usable staging for a stages: block (PMID:35308482). A four-type clinical classification (type I–IV) is also described [A] (PMID:29493404). Deep-structure involvement rates across cohorts: 29% (France, PMID:12153378), 22.2% (Thailand, tenosynovitis only, PMID:40535516), 15% (Netherlands stage IV, PMID:35308482); a review states 20–40% [F] (PMID:28387180).
Diagnostic delay is a defining temporal feature and should be curated as such, not as an aside. Reported time from lesion onset to diagnosis:
| Series | Delay |
|---|---|
| China, n=35 | median 3 months (IQR 2.0–4.0) |
| Thailand, n=27 | median 6 months, range 1–120 |
"The median onset duration, defined as the time between the initial appearance of lesions and the culture report, was 6 (1, 120) months." [F] — PMID:40535516
The 120-month outlier is not an error; multi-year untreated infections are documented. The mechanism of delay is structural:
"The diagnosis of cutaneous Mycobacterium marinum infection is often delayed for months after presentation, perhaps because important clinical clues in the patient's history are frequently overlooked." [A] — PMID:10987702
"Its non-specific cutaneous manifestations frequently lead to diagnostic delay and misdiagnosis." [A] — Yang et al. 2026, PMID:42639276
Treated disease resolves over months. Treatment durations (a proxy for disease duration, since therapy runs until resolution): mean 25 weeks (~5.8 months) in the Netherlands, mean 5.6 ± 3.1 months in Thailand, median 4.0 months (IQR 3.0–6.0) in China, median 3.5 months in France. Untreated disease is chronic and can persist for years; spontaneous remission is described but unreliable.
Remission is essentially treatment-induced. Relapse after adequate therapy is uncommon — the Thai series reported no recurrence in any tenosynovitis patient across 1 year of follow-up after debridement plus antibiotics (PMID:40535516); the Dutch cohort had 3/40 failures or relapses (PMID:35308482).
Two critical windows are worth recording:
A third pattern deserves a note: a persistent sterile necrotizing granulomatous dermatitis has been reported after successful treatment of a long-standing infection, i.e. an apparent paradoxical/immunopathological reaction rather than treatment failure. Confirm the primary source before curating.
Incidence. One population-denominated figure is solid:
"The annual incidence rate was 0.15/100 000/year during the study period." [A] — Hendrikx et al. 2022, PMID:35308482 (Netherlands, 2011–2018, laboratory-based)
A figure of 0.04 per 100,000 per year attributed to a French study appeared in search summaries in this session but was not verified against a primary source; do not curate it without confirmation.
For a Prevalence record, use measure_type: ANNUAL_INCIDENCE, rate_per_100000: 0.15, and set rate_denominator explicitly — the Dutch figure is per population per year, so POPULATION_PER_YEAR. Do not attach a qualitative tier such as RARE to an incidence record. prevalence_class: BAND_1_9_PER_1000000 is the Orphanet-aligned magnitude band for 0.15/100,000 (= 1.5 per million).
Prevalence. No point-prevalence estimate exists. Case counts are the only available measure for most regions, so CASES_IN_LITERATURE is the honest measure_type for series-derived records.
Underestimation. Every incidence figure here is a culture-confirmed count, and culture is insensitive (culture-positive in only 74.3% of a clinically diagnosed series, PMID:39262684; AFB-positive in 2/22 and 6/35 biopsies). True incidence is higher by an unknown factor.
Not applicable. No inheritance pattern, penetrance, expressivity, anticipation, germline mosaicism, founder effect, consanguinity role, or carrier frequency. Leave the inheritance: section absent rather than populating it with a placeholder.
Sex ratio — genuinely discordant between series, and the discordance is a finding.
| Series | Male : Female |
|---|---|
| Thailand, n=27 | 20 : 7 (male-predominant) |
| China (Han), n=35 | 6 : 29 (82.9% female) |
The Chinese series' female predominance tracks its exposure profile — fish-bone puncture wounds during food preparation (54.3%) — whereas male predominance elsewhere tracks aquarium keeping and fishing. Curate both with population set, and do not average them into a single ratio.
Age distribution. Adults, mode in the fifth and sixth decades. Median 55 (IQR 49–59) in China; mean 45.5 ± 15.4 in Thailand.
Geographic distribution. Worldwide, wherever people keep aquaria, handle fish, or swim in untreated water. There is no endemic focus in the vector-borne sense. Published series come from France, the Netherlands, the USA, Taiwan, China, Thailand, India (Kerala), the UK, and Egypt. Regional case mix is driven by local exposure practice, not by organism distribution. Geographic variation in variants of the organism is not established.
Ethnic predisposition. None. The Han Chinese series (PMID:39262684) reflects the recruiting centre, not a susceptibility.
Routine mycobacterial workup misses this organism, for a specific and correctable reason:
"Therefore, culture of the biopsy tissue at 30 degrees C is crucial in establishing the diagnosis." [A] — Travis et al. 1985, PMID:3840985
"In clinical microbiology, microscopy and culture are often negative because growth requires low temperature (30°C) and several weeks to succeed in primary cultivation." [A] — Aubry et al. 2017, PMID:28387180
The laboratory must be told to incubate at 30 °C. This is the single highest-yield action in the diagnostic pathway and belongs in the entry's definitions or notes as such.
| Test | Yield | Source |
|---|---|---|
| Tissue culture at 30 °C | 26/35 (74.3%) | PMID:39262684 |
| qPCR on tissue | 17/35 (48.6%) | PMID:39262684 |
| AFB (Ziehl-Neelsen) on biopsy | 6/35 (17.1%) | PMID:39262684 |
| AFB on biopsy | 2/22 (9%) | PMID:8002687 |
| Organisms visible on histology | 1/9 cases | PMID:3840985 |
| T-SPOT.TB (IFN-γ release) | 71% (95% CI 63.2–77.8) | PMID:41147233 |
| Targeted NGS | evaluated 2022–2024; cross-sectional | PMID:40833738 |
Culture turnaround is 7–14 days for colonies from a growing subculture but 2–8 weeks for primary isolation [F], which is why molecular methods matter clinically. Species identification uses hsp65 PCR, rpoB sequencing, line-probe assay (e.g. INNO-LiPA MYCOBACTERIA), and increasingly NGS. Be aware of the identification pitfall: M. marinum "is difficult to differentiate from Mycobacterium ulcerans and other mycolactone-producing NTM on a molecular basis" [A] (PMID:28387180).
The pattern is a spectrum, not a single picture — which is exactly why biopsy alone under-diagnoses:
"A range of inflammatory changes were seen in both synovial and skin lesions, varying from mostly acute inflammation with suppuration to a more chronic process with numerous, well-formed granulomas." [A] — PMID:3840985
"These cases emphasize the importance of considering mycobacterial infection and performing cultures even when granulomatous changes in the synovium or skin are subtle." [A] — PMID:3840985
Granulomatous inflammation was present in 100% of the Chinese series (PMID:39262684) and 63% of biopsies in the Kaiser series (PMID:8002687) — the difference reflecting lesion age and sampling.
A 2025 study of 145 patients supports IFN-γ release assays both diagnostically and as a treatment-response monitor:
"The baseline T-SPOT.TB positivity rate was 71% (95% CI: 63.2-77.8%). Among 17 patients retested at 3 months, positivity was 64.7% (p = 0.125), with median spot-forming cells (SFCs) significantly decreasing from 20.0 (IQR 8.5-41.0) to 8.0 (IQR 2.5-28.0) (p = 0.0007)." [A] — PMID:41147233
"The T-SPOT.TB assay shows significant diagnostic value for cutaneous M. marinum infections and facilitates early diagnosis. Declining SFC counts post-treatment provide useful reference for evaluating therapeutic response." [A] — PMID:41147233
Interpretive caveat for curation: a positive T-SPOT.TB reflects ESAT-6/CFP-10 responses shared with M. tuberculosis, so it cannot distinguish the two. That study explicitly excluded tuberculosis cases.
MRI and ultrasound for suspected tenosynovitis, and plain radiography or MRI for osteomyelitis. No imaging finding is specific. Electrophysiology, pulmonary function, and cardiac testing are not applicable.
Not applicable to the host. No WGS, WES, gene panel, single-gene test, chromosomal microarray, karyotype, FISH, mtDNA, or repeat-expansion testing has any role. Pathogen sequencing (hsp65, rpoB, targeted NGS, metagenomic NGS) is the relevant molecular testing and should be curated under diagnostics, not under genetic testing.
Targeted NGS is the one omics modality with a 2025 diagnostic evaluation (PMID:40833738); it is a JAMA Dermatology research letter, so extract its sensitivity and specificity from the full text before curating numbers. Proteomic, metabolomic, epigenomic, and liquid-biopsy diagnostics: none.
There are no formal consensus diagnostic criteria. Diagnosis rests on the triad of a compatible acral lesion, an aquatic exposure history within nine months, and microbiological or molecular confirmation. The pragmatic rule:
"Careful patient's history collection, high clinical suspicion and appropriate sample (e.g. cutaneous biopsy) for microbiological culture are crucial for a timely diagnosis." [A] — PMID:35864075
Differential diagnosis, with the distinguishing feature in each case:
| Alternative | Distinguishing feature |
|---|---|
| Sporotrichosis (Sporothrix) | fungal culture; soil/plant exposure; the classic sporotrichoid mimic |
| Nocardiosis | branching filamentous GPR; modified AFB |
| Cutaneous leishmaniasis | travel history; Giemsa amastigotes |
| Cutaneous tuberculosis | M. tuberculosis on culture/PCR; note IGRA cannot separate them |
| Other NTM (M. abscessus, M. chelonae, M. fortuitum, M. ulcerans) | species identification; M. abscessus is far more drug-resistant |
| Sweet's syndrome / neutrophilic dermatosis | the documented misdiagnosis in PMID:39759953 — biopsy showed neutrophilic dermatosis before AFB were found |
| Pyoderma gangrenosum | steroid response is misleading; consider before immunosuppressing |
| Foreign-body granuloma, sea-urchin or fish-sting granuloma | history and imaging |
| Squamous cell carcinoma, keratoacanthoma | verrucous lesions can mimic; biopsy |
Two of these are actively dangerous: treating a presumed neutrophilic dermatosis or pyoderma gangrenosum with corticosteroids accelerates M. marinum disease, which is precisely the reported trajectory in the bearded-dragon case.
Not applicable. There is no asymptomatic carrier state, no newborn or carrier screening, and no basis for population screening. Occupational health education is prevention, not screening.
Mortality from aquarium granuloma is essentially zero in immunocompetent hosts, and no series in this review reported a disease-attributable death. No 5-year or 10-year survival figures exist because survival is not the relevant endpoint. Death is confined to exceptional disseminated disease in profoundly immunocompromised patients; the bearded-dragon case reached neutropenic sepsis (PMID:39759953). Curate mortality as not established rather than as a number.
| Cohort | Cure | Notes |
|---|---|---|
| Netherlands, n=40 | 36/40 (90%) | mean 25 weeks; susceptibility-guided |
| France, n=63 | 55/63 (87%) | median 3.5 months; 48% surgery |
| China (Han), n=35 | 29/35 (82.9%) | 6 lost to follow-up |
| USA (Kaiser), n=31 | 22/27 (81%) evaluable | cure or improvement |
| Taiwan, n=27 | 18/27 (67%) | 8 failures, 1 lost |
"Antibiotic treatment cured 36/40 patients (90%) after a mean treatment duration of 25 weeks. Failure/relapse occurred in 3 patients, and 1 patient was lost to follow-up." [A] — PMID:35308482
"Prolonged and susceptibility-guided treatment results in a 90% cure rate in M. marinum disease." [A] — PMID:35308482
Depth of involvement is the dominant prognostic factor, and it is the one that survives multivariable framing:
"Failure was related to deep structure involvement (3 of 45 vs 5 of 18 patients; P =.04) but not to any antibiotic regimen." [A] — PMID:12153378
The 2017 review reaches the same conclusion: therapy achieves "successful outcome in most of the skin diseases but less frequently in deep tissue infections" [A] (PMID:28387180).
Other factors with supporting data:
Complications: tenosynovitis (the commonest deep complication, 22.2%), septic arthritis, osteomyelitis, bursitis, tendon rupture, scarring and disfigurement of the hand, and — rarely — dissemination. Functional hand morbidity plus a 4–6 month treatment course is the realistic burden.
No ICF-coded disability data, no GBD estimate, and no validated QoL instrument has been applied to this disease. Record the gap.
Excellent with appropriate therapy. Recurrence after adequate treatment plus debridement was zero across one year in the Thai tenosynovitis subgroup (PMID:40535516). Prognostic biomarkers: declining T-SPOT.TB spot-forming counts are the only candidate treatment-response biomarker with supporting data (PMID:41147233), and the authors frame it as a "useful reference", not a validated endpoint.
"The treatment is not standardized, and no randomized control trials have been done." [A] — Aubry et al. 2017, PMID:28387180
Every regimen below rests on retrospective cohorts and expert consensus. The 2020 ATS/ERS/ESCMID/IDSA guideline (PMID:32797222, PMID:32636299) covers NTM pulmonary disease only and does not address M. marinum skin infection; the 2007 ATS/IDSA statement (PMID:17277290) is the guideline document that does. Do not cite the 2020 guideline as the source of a skin-infection recommendation.
Principle: two active agents, guided by susceptibility testing where available, continued for months, with surgery for deep disease. Monotherapy is used for limited disease but is increasingly discouraged.
"Therapy is a combination of surgery and antimicrobial agents such as cyclines and rifampin, with successful outcome in most of the skin diseases but less frequently in deep tissue infections." [A] — PMID:28387180
"The treatment is not standardized yet and relies on administration of two active antimycobacterial agents, always guided by antimicrobial susceptibility test on culture, with macrolides and rifampin as pivotal drugs, as well as prompt surgery when feasible." [A] — PMID:35864075
"Two-drug regimens of ethambutol and a macrolide are effective for moderately severe infections. Tetracycline monotherapy in limited disease should be used vigilantly, preferably with proven in vitro susceptibility." [A] — PMID:35308482
Regimens actually used, with frequencies (China, n=35; PMID:39262684):
| Regimen tier | Share | Composition |
|---|---|---|
| Monotherapy | 9/35 (25.7%) | minocycline 6, clarithromycin 2, doxycycline 1 |
| Dual | 17/35 (48.6%) | clarithromycin+rifampin 13, clarithromycin+minocycline 4 |
| Triple | 9/35 (25.7%) | clarithromycin+rifampin+doxycycline 8, clarithromycin+rifampin+ethambutol 1 |
Agent frequency in that series: clarithromycin 80.0%, rifampin 62.9%, minocycline 28.6%, doxycycline 25.7%. Median duration 4.0 months (IQR 3.0–6.0). In the Netherlands, final regimens were most often ethambutol–macrolide (35%), with monotherapy in 35% and two drugs in 63% (PMID:35308482).
One older comparison favoured the ethambutol–rifampin pair over minocycline, without reaching significance:
"Treatment with ethambutol plus rifampin appeared more successful (effective in five [100%] of five cases) than minocycline treatment (effective in 10 [71%] of 14 cases), although not significantly so (P = .28)." [A] — PMID:8002687
Modern, large panel (200 isolates, China):
"M. marinum demonstrated high susceptibility (82.5%-100%) to clarithromycin, rifampin, rifabutin, moxifloxacin, linezolid, trimethoprim-sulfamethoxazole, with moderate susceptibility to tetracyclines and ciprofloxacin. Ethambutol showed favourable activity against M. marinum with MIC90 of 2 µg/mL." [A] — Peng et al. 2025, PMID:41135669
MIC90 values from the French national panel:
"The 90% minimum inhibitory concentrations of rifampin and rifabutin were far lower (0.5 and 0.06 micro g/mL, respectively) than the 90% minimum inhibitory concentrations of clarithromycin (2 micro g/mL) and the cyclines (minocycline, 4 micro g/mL; and doxycycline, 8 micro g/mL)." [A] — PMID:12153378
The tetracycline discordance is large and should be curated as a real disagreement, not resolved by picking one number. Three independent panels disagree sharply:
| Panel | Doxycycline susceptibility |
|---|---|
| Taiwan, 30 isolates | 1/30 (3.3%) |
| Netherlands, 40 isolates | 36% of isolates resistant to tetracyclines |
| China, 200 isolates | "moderate" susceptibility to tetracyclines |
| Thailand cohort | doxycycline named among the most effective drugs |
"All the 30 isolates were susceptible to clarithromycin, amikacin, and linezolid; 29 (96.7%) were susceptible to ethambutol; 28 (93.3%) were susceptible to sulfamethoxazole; and 26 (86.7%) were susceptible to rifampicin. However, only 1 (3.3%) isolate was susceptible to doxycycline." [A] — PMID:22911774
Part of this is breakpoint-driven: the Thai study used a CLSI doxycycline breakpoint of ≤1 µg/mL against a French MIC90 of 8 µg/mL, so "resistant" and "effective" can both be defensible statements about the same organism. Curate each panel as its own evidence item with its population and, where known, its breakpoint, rather than asserting a single susceptibility.
Note also that "routine susceptibility testing is not recommended and should be reserved for cases of treatment failure" [F] is longstanding advice that the Dutch cohort's tetracycline finding directly challenges. This is a live disagreement worth a discussions: entry.
| Treatment | NCIT treatment_term |
CHEBI/NCIT therapeutic_agent |
|---|---|---|
| Combination antimycobacterial therapy | NCIT:C15986 Pharmacotherapy | see below |
| Clarithromycin | NCIT:C15986 | CHEBI:3732 clarithromycin (or NCIT:C1054 Clarithromycin) |
| Rifampicin | NCIT:C15986 | CHEBI:28077 rifampicin (or NCIT:C811 Rifampin) |
| Rifabutin | NCIT:C15986 | CHEBI:45367 rifabutin |
| Ethambutol | NCIT:C15986 | CHEBI:4877 ethambutol (or NCIT:C61755 Ethambutol) |
| Doxycycline | NCIT:C15986 | CHEBI:50845 doxycycline (or NCIT:C457 Doxycycline) |
| Minocycline | NCIT:C15986 | CHEBI:50694 minocycline (or NCIT:C61849 Minocycline) |
| Trimethoprim-sulfamethoxazole | NCIT:C15986 | CHEBI:3770 co-trimoxazole |
| Moxifloxacin | NCIT:C15986 | CHEBI:63611 moxifloxacin |
| Linezolid | NCIT:C15986 | CHEBI:63607 linezolid |
| Amikacin | NCIT:C15986 | CHEBI:2637 amikacin |
| Azithromycin | NCIT:C15986 | CHEBI:2955 azithromycin |
| Surgical debridement | NCIT:C51682 Debridement | — |
| Surgical excision / tenosynovectomy | NCIT:C15329 Surgical Procedure | — |
| Cryosurgery (historical adjunct) | NCIT:C15215 Cryosurgery | — |
| Supportive care | NCIT:C15747 Supportive Care | — |
| Patient/occupational education | NCIT:C16664 Health Education | — |
Drug-class alternatives if a class-level therapeutic_agent is wanted: NCIT:C261 Macrolide Antibiotic, NCIT:C1595 Tetracycline Antibiotic, NCIT:C280 Antitubercular Agent. Caution: therapeutic_agent binds the ChemicalEntityTerm enum rooted at NCIT:C1909 (Pharmacologic Substance), and NCIT files some classes elsewhere. Run just validate-terms after binding any NCIT class term here rather than trusting this table. NCIT:C51682 Debridement likewise needs an enum check against the NCIT:C25218 root before use as a treatment_term.
Therapeutic modality for every pharmacological entry here is SMALL_MOLECULE; debridement and excision are SURGERY. No oligonucleotide, biologic, or delivery-system detail applies.
Adjunctive and often decisive, especially for tenosynovitis. Surgery rates: 48% (France), 28% (Netherlands), 10/18 of cured patients (Taiwan).
"Surgical debridement combined with oral antibiotics successfully treated all tenosynovitis patients, with no recurrence during the 1-year follow-up." [A] — PMID:40535516
Discontinuing or reducing TNF-α inhibitors and other immunosuppressants during antimicrobial therapy is recommended, with the caveat that the evidence base is small (PMID:28387180 [F]). The 2026 review "summarize[s] adjustments to immunosuppressive agents for immunocompromised patients with M. marinum infection" [A] (PMID:42639276) and is the place to look for current practical guidance. A counterpoint exists in the literature — a report proposing a possible therapeutic role for anti-TNF monoclonal antibodies in M. marinum infection — which fits the model's finding that both TNF excess and TNF deficiency are harmful (PMID:23582643). Curate that as a genuine open question rather than an error.
"Similarly, the cyclophilin D-inhibiting drug alisporivir and the acid sphingomyelinase-inactivating drug, desipramine, synergize to reverse susceptibility, suggesting the therapeutic potential of these orally active drugs against tuberculosis and possibly other TNF-mediated diseases." [A] — PMID:23582643
"The complex I inhibitor metformin, a widely used antidiabetic drug, prevents TNF-induced mROS and necrosis of Mycobacterium tuberculosis-infected zebrafish and human macrophages; metformin may therefore be useful in tuberculosis therapy." [A] — PMID:35737799
Both are framed for tuberculosis, not aquarium granuloma. Record them as model-derived host-directed candidates with an explicit HUMAN_MODEL_MISMATCH framing; do not curate them as treatments for this disease.
"Adverse reactions, most of which were gastrointestinal, occurred in five patients (18%)." [A] — PMID:8002687
Regimen changes are common — the initial regimen was modified in 22/63 (35%) of the French cohort (PMID:12153378).
This is the level that matters, because primary prevention is nearly fully effective and rests on interrupting one necessary step: skin breach plus aquatic contact.
"Prevention can be useful with hand protection recommendations for professionals and all persons manipulating fishes or fish tank water and use of alcohol disinfection after contact." [A] — Aubry et al. 2017, PMID:28387180
Concrete measures:
Suggested NCIT bindings: NCIT:C16664 Health Education, NCIT:C18975 Public Health Education.
Early recognition is the whole of secondary prevention, and the actionable form of it is a history question rather than a test: ask about aquatic exposure in the preceding nine months in any patient with an atypical, non-resolving acral nodule or plaque (PMID:10987702). The second element is a laboratory instruction — request 30 °C mycobacterial culture on the biopsy. Together these two habits address the 3–6 month median diagnostic delay.
A specific, avoidable harm to flag: do not inject a corticosteroid into an undiagnosed acral nodule or an unexplained trigger finger in someone with aquatic exposure. Intralesional triamcinolone preceded lesion onset in 11.1% of the Thai cohort, and prior steroid injection at the site was associated with tenosynovitis (p=0.007) (PMID:40535516).
Adequate duration of two-drug therapy, timely surgical debridement for deep disease, susceptibility-guided regimen selection, and withdrawal of immunosuppression during treatment. Together these carry cure rates to 87–90% and prevent the tenosynovitis-to-osteomyelitis progression.
Pool chlorination and maintenance standards; hygiene guidance at point of sale for ornamental fish; aquaculture biosecurity and culling of infected stock (which protects fish health and reduces the human exposure reservoir); no notifiable-disease reporting requirement in most jurisdictions.
This is unusually rich for a human dermatological infection, because the human disease is a spillover from a major fish disease, and the fish disease is the source of the mechanism in §6.
M. marinum (NCBITaxon:1781) has been isolated from "mammals, fish, amphibians, reptiles, birds, invertebrates, and protists" [F] (PMID:29493404). Host range is exceptionally broad, which the genome explains — M. marinum "has maintained a large genome so as to retain the capacity for environmental survival while becoming a broad host range pathogen" [A] (PMID:18403782).
Verified taxonomy identifiers for the entities relevant to this entry:
| Organism | NCBITaxon |
|---|---|
| Mycobacterium marinum | NCBITaxon:1781 |
| Danio rerio (zebrafish) | NCBITaxon:7955 |
| Mus musculus | NCBITaxon:10090 |
| Mycobacterium tuberculosis | NCBITaxon:1773 |
| Mycobacterium ulcerans | NCBITaxon:1809 |
"Mycobacterium marinum is an opportunistic pathogen inducing infection in fresh and marine water fish. This pathogen causes necrotizing granuloma like tuberculosis, morbidity and mortality in fish." [A] — Hashish et al. 2018, PMID:29493404
"Mycobacterium species have long been recognized as a significant source of morbidity and mortality in finfish aquaculture, as well as in wild finfishes." [F] — search snippet, fish mycobacteriosis review
All fish species should be considered susceptible; documented outbreaks include striped bass in the USA, sturgeon in China, and captive-bred Australian lungfish [F]. Clinical signs in fish: emaciation, skin ulceration, scale loss, spinal deformity, exophthalmos, and disseminated visceral granulomas. In fish, the route is oral and branchial rather than percutaneous: "The primary route of infection is the oral one via consumption of infected dead fish, contact with affected fish skin or through gills" [F].
Reptile infection is established, and is the source of the first reported non-aquatic human transmission (bearded dragon, PMID:39759953).
Substantial: economic losses in ornamental-fish and food-fish aquaculture, and no practical treatment for infected stock, so management is culling and biosecurity. Nine different NTM species were isolated from sixteen aquatic animals including fish, frogs, and a crocodile in one South African farmed-animal survey [F].
The comparative pathology is the reason this organism became a model system. Zebrafish infected with M. marinum develop caseating granulomas that are structurally homologous to human tuberculous granulomas:
"Zebrafish tuberculous granulomas undergo caseous necrosis, similar to human tuberculous granulomas." [A] — Swaim et al. 2006, PMID:17057088
The conserved virulence machinery spans the species: "The cell wall-associated lipid phthiocerol dimycocerosates, phenolic glycolipids and ESAT-6 secretion system 1 (ESX-1) are the conserved virulence determinant of the organism" [A] (PMID:29493404). The RD1/ESX-1 locus is syntenic between M. marinum and M. tuberculosis, with EsxB and EsxA sharing 97% and 91% amino-acid identity respectively [F] — a figure to verify against the primary ESX-1 review before curating.
One important divergence: zebrafish granulomas "contain few lymphocytes" in contrast to mammalian tuberculous granulomas [A] (PMID:17057088), even though adaptive immunity is required for control. This is the key fidelity caveat for any model link.
Zoonotic, unidirectionally: fish, amphibians, and reptiles to humans, by percutaneous inoculation. There is no human-to-human and no human-to-animal transmission of concern. Not a foodborne zoonosis — eating fish does not transmit it; handling and injury do. Immunocompromised people are the group for whom the zoonotic risk is materially higher.
"Mycobacteria infecting fishes include zoonotic pathogens that can cause protracted illness, especially in immunocompromised individuals." [F] — search snippet, fish mycobacteriosis review
Not applicable in the usual sense — there is no human disease gene to find an ortholog of. The relevant cross-species gene mapping is of host defence genes used in the model: zebrafish tnfa, tnfr1, tnfr2, rag1, pycard, spp1, apodb, and hif1a. If a genetic: or animal_models section names these, use ZFIN identifiers, and note that dismech's gene descriptors are HGNC-bound, so a zebrafish gene cannot be bound the same way a human gene is.
This is a natural-host model, not an engineered one, which is why its fidelity is unusual:
"The zebrafish, a genetically tractable model vertebrate, is naturally susceptible to tuberculosis caused by Mycobacterium marinum, a close genetic relative of the causative agent of human tuberculosis, Mycobacterium tuberculosis." [A] — PMID:17057088
Two distinct preparations, and they answer different questions.
Larval/embryo model — optically transparent, innate immunity only, permits intravital microscopy of single macrophages. This is where granuloma initiation, macrophage recruitment, and necroptosis were worked out (PMID:19135887, PMID:20007864, PMID:18691913, PMID:23582643, PMID:24336213, PMID:35737799).
Adult model — innate plus adaptive immunity, caseating granulomas, dose-dependent acute versus chronic disease:
"Intraperitoneal injection of five organisms produces persistent granulomatous tuberculosis, while the injection of approximately 9,000 organisms leads to acute, fulminant disease. Bacterial burden, extent of disease, pathology, and host mortality progress in a time- and dose-dependent fashion." [A] — PMID:17057088
Genetic models available: rag1 mutant (adaptive-immunity-deficient, hypersusceptible), tnfa / tnfr1 / tnfr2 mutants and morphants, pycard (inflammasome) mutants, spp1 (osteopontin) ablation, apodb mutants, hif1a manipulation, plus transgenic macrophage and neutrophil reporter lines. On the pathogen side: ΔRD1 and ESX-1 substrate mutants (e.g. espK::tn).
Phenotype recapitulation — what it captures: granuloma formation and maturation; caseous necrosis; macrophage-centred pathogenesis; ESX-1 dependence; dose-dependent acute versus chronic course; adaptive-immunity dependence; TNF's dual protective and pathogenic roles.
Limitations — what it does not capture. These matter for any modeled_mechanisms link and belong in divergences:
POPULATION_MISMATCH/INCOMPLETE_PHENOTYPE-shaped gap.MODERATE at best, with relationship: PARTIALLY_RECAPITULATES, and model_scale set to CELLULAR or MOLECULAR for the larval intravital work — which makes most links to a tissue-level node an upward extrapolation requiring limitations.The mouse tail-lesion model exploits the same thermal biology that shapes human disease: the tail is cool enough to support M. marinum growth, which makes it a better anatomical analogue of the human acral lesion than any zebrafish preparation. Recent single-cell work used mice infected with wild-type, espK::tn, and ΔRD1 M. marinum, sorting infected and bystander monocytes 14 days post infection (GEO GSE235124). Mice are not natural hosts and control the infection well, which limits chronic-disease modelling.
Human THP-1-derived macrophages infected with mycobacteria (GEO GSE328953, 15 samples) — the only human-cell dataset found. Primary human monocyte-derived macrophages are used in the TNF/mROS work (PMID:35737799 tested human macrophages alongside zebrafish). No organoid, iPSC-derived, or organ-on-chip model of M. marinum skin infection was identified; a human skin-equivalent model would be the obvious gap to name in a discussions: entry.
Granuloma initiation and maturation; macrophage–pathogen interaction and immune evasion by cell-wall lipids; necroptosis and its pharmacological blockade; host-directed therapy screening (alisporivir, desipramine, metformin); ESX-1 secretion biology; inflammasome and neutrophil contributions to necrosis; antimycobacterial drug screening; TB vaccine candidate testing.
ZFIN (zebrafish genes, alleles, and lines), Alliance of Genome Resources, MGI and IMSR (mouse), IMPC/KOMP (mouse knockouts), Cellosaurus and ATCC (cell lines), GEO (the eleven datasets listed in §6).
Ontology bindings — status. Every CURIE in this report was resolved in this session against OLS4 (HP, GO, CL, UBERON, CHEBI, NCIT, ECTO, MONDO) or NCBI (Taxonomy, ICD-10-CM via NLM Clinical Tables). The working tree already carries MONDO:0043314 and NCBITaxon:1781 in cache/mondo/terms.csv and cache/ncbitaxon/terms.csv. Two bindings still need verification before use: the GO cellular-component terms for mitochondrion and phagosome (§7) were not looked up, and every NCIT term intended for a treatment_term or therapeutic_agent slot needs just validate-terms to confirm dynamic-enum membership (NCIT:C51682 Debridement against the NCIT:C25218 root; any NCIT drug class against NCIT:C1909).
Recorded negative searches (so the notes can state them rather than assert absence): ECTO has no term for M. marinum exposure, aquarium exposure, seafood exposure, or wound exposure — queries run were Mycobacterium marinum, marinum, aquarium, seafood, wound, exposure to fish, exposure to bacterium, exposure to Mycobacterium; usable terms found were ECTO:9000156 and ECTO:5000002. HPO has no term for a sporotrichoid pattern or for lymphangitis — queries run were Sporotrichoid and Lymphangitis.
Three deliberate disagreements to curate as such, rather than resolving by preference: the doxycycline susceptibility conflict across four panels (§12), the sex-ratio reversal between the Chinese and Thai series (§9), and whether routine susceptibility testing is warranted (§12). Each is a real divergence in the literature with a plausible methodological explanation, and flattening any of them would misrepresent the evidence.
The dominant model-fidelity caveat, which should appear as a HUMAN_MODEL_MISMATCH discussion rather than buried in a limitations string: the mechanism in §6 steps 4–8 is known in molecular detail from zebrafish infected with this exact organism, but as disseminated visceral tuberculosis, not as a localized cool-skin granuloma. The pathogen is identical; the disease is not.
Sources
Checked with linkml-reference-validator 0.3.0rc3.
| Outcome | Count |
|---|---|
| References checked | 55 |
| Resolved | 55 |
| Unresolved (possible confabulation) | 0 |
| Unverifiable | 0 |
| References weighed for topical relevance | 55 |
| On topic | 40 |
| Off topic | 0 |
All extracted references resolved successfully.
Checked with linkml-term-validator 0.4.5, through the ols: adapter.
| Outcome | Count |
|---|---|
| Terms checked | 94 |
| Resolved | 94 |
| Unresolved (possible confabulation) | 0 |
| Obsolete | 0 |
| Unverifiable | 0 |
| Terms whose name was checked | 34 |
| Terms named correctly | 24 |
| Terms named as a different term | 4 |
| Terms whose name is worth a second look | 6 |
These identifiers resolve, so nothing about them looks wrong, and the ontology calls them something unrelated to what the report calls them. That usually means the identifier is not the one the sentence needs:
MONDO:0043314 (6 mentions) - the report calls it "MONDO"; MONDO calls it aquarium granulomaNCBITaxon:1781 (6 mentions) - the report calls it "NCBI Taxonomy (agent)", "M. marinum", "Mycobacterium marinum"; NCBITaxon calls it Mycobacterium marinumUBERON:0001473 (2 mentions) - the report calls it "Egress of infected macrophages into dermal lymphatics", "lymphatic vessel"; UBERON calls it lymphatic vesselNCIT:C15986 (12 mentions) - the report calls it "Clarithromycin", "Rifampicin", "Rifabutin", "Ethambutol", "Doxycycline", "Minocycline", "Trimethoprim-sulfamethoxazole", "Moxifloxacin", "Linezolid", "Amikacin", "Azithromycin"; NCIT calls it PharmacotherapyThe report's name for these is recognisably related to the term's own name without being one of them. A loose paraphrase reads the same way as a citation of the wrong sibling term - and so does a related synonym, which the ontology records precisely because it names something adjacent rather than the same thing - so these are listed rather than judged:
HP:0032283 (1 mention) - the report calls it "Disseminated NTM infection"; HP calls it Disseminated non-tuberculous mycobacterial infection, and lists "Disseminated NTM infection" among its other namesNCBITaxon:1773 (2 mentions) - the report calls it "M. tuberculosis", "Mycobacterium tuberculosis"; NCBITaxon calls it Mycobacterium tuberculosis, and lists "Bacterium tuberculosis" among its other namesNCBITaxon:1809 (2 mentions) - the report calls it "M. ulcerans", "Mycobacterium ulcerans"; NCBITaxon calls it Mycobacterium ulceransUBERON:0000304 (2 mentions) - the report calls it "Contiguous extension to tendon sheath", "tendon sheath"; UBERON calls it tendon sheath, and lists "synovial tendon sheath" among its other namesGO:0032760 (1 mention) - the report calls it "Positive regulation of TNF production"; GO calls it positive regulation of tumor necrosis factor production, and lists "positive regulation of TNF production" among its other namesNCBITaxon:7955 (2 mentions) - the report calls it "Danio rerio (zebrafish)"; NCBITaxon calls it Danio rerio*, and lists "Danio rerio frankei" among its other namesThe report gives these identifiers more than one name of its own:
NCBITaxon:1781 - called "NCBI Taxonomy (agent)", "M. marinum", "Mycobacterium marinum"NCBITaxon:1773 - called "M. tuberculosis", "Mycobacterium tuberculosis"NCBITaxon:1809 - called "M. ulcerans", "Mycobacterium ulcerans"UBERON:0001473 - called "Egress of infected macrophages into dermal lymphatics", "lymphatic vessel"UBERON:0000304 - called "Contiguous extension to tendon sheath", "tendon sheath"NCIT:C15986 - called "Clarithromycin", "Rifampicin", "Rifabutin", "Ethambutol", "Doxycycline", "Minocycline", "Trimethoprim-sulfamethoxazole", "Moxifloxacin", "Linezolid", "Amikacin", "Azithromycin"