TEX11-related spermatogenic failure

Mendelian MONDO:0010647 Pathograph 7 Show in embeddings browser Spermatogenic Failure Meiotic Gametogenic Failure

TEX11-related spermatogenic failure, X-linked spermatogenic failure 2, is an X-linked cause of non-obstructive azoospermia arising from hemizygous loss-of-function variants in TEX11. TEX11 is a meiosis-specific protein and the mammalian orthologue of the yeast ZMM factor Zip4. It forms discrete foci on synapsed meiotic chromosomes as a constituent of recombination nodules, and works within the ZZS complex alongside SHOC1 and SPO16 to couple synaptonemal complex assembly to the formation of class I crossovers. Losing it leaves programmed meiotic double-strand breaks unable to mature into crossovers, so homologous chromosomes fail to synapse fully; the affected spermatocytes are then eliminated at the pachytene stage, and those that escape undergo nondisjunction at the first meiotic division. Spermatogenesis therefore arrests in meiosis I, and the testicular histology is meiotic arrest rather than the uniform Sertoli-cell-only picture. Men present in adulthood at an infertility workup with azoospermia, a normal 46,XY karyotype and normal virilisation. The reported hormonal picture is that of primary testicular failure generally, isolated elevation of FSH with preserved testosterone and LH, but see notes: that profile is not curated as a phenotype here. TEX11 is among the most frequently identified single-gene causes of this histologic subtype, found in about 1 per cent of unselected azoospermic men and in a substantially larger fraction of those whose biopsy shows meiotic arrest.

Ask OpenScientist

Ask a research question about TEX11-related spermatogenic failure. OpenScientist will conduct autonomous deep research using the Disorder Mechanisms Knowledge Base and PubMed literature (typically 10-30 minutes).

Submitting...

Do not include personal health information in your question. Questions and results are cached in your browser's local storage.

1
Inheritance
5
Pathophys.
1
Histopath.
2
Phenotypes
1
Gaps
7
Pathograph
1
Genes
2
Medical Actions
1
Models
5
References
1
Deep Research
👪

Inheritance

1
X-linked recessive HP:0001419
Affected men are hemizygous for a TEX11 loss-of-function allele on Xq13. Carrier women are fertile and unaffected. Because affected men are infertile without assisted reproduction, alleles reach probands by maternal transmission or arise de novo, and pedigrees rarely show the multigenerational segregation typical of dominant disease.
X-linked recessive inheritance
Show evidence (1 reference)
PMID:25970010 SUPPORT Human Clinical
"We identified a 99-kb hemizygous loss on chromosome Xq13.2 that involved three TEX11 exons."
A hemizygous lesion on the X chromosome in affected men establishes the X-linked pattern.
?

Discussions and Knowledge Gaps

1
Which human TEX11 missense alleles are actually pathogenic, and can a transgenic mouse adjudicate that question for a given variant?
HUMAN MODEL MISMATCH tex11_missense_allele_adjudication
Missense TEX11 variants are found in fertile men as well as in azoospermic men, so gene identity does not settle pathogenicity and the variants cannot all be causal. The one direct test of the question modelled three human missense alleles in transgenic mice and found only one behaved as a candidate infertility allele, with the other two non-causative. That is a real result and it is why this entry declines to treat missense variants as a causal class. It also sets up the mismatch: a mouse carrying a humanised allele is the only functional assay currently applied to these variants, and its negative results are being used to reclassify human variants, but nothing establishes that murine spermatogenesis has the same tolerance for a given substitution as human spermatogenesis does. A negative mouse result may mean the allele is benign, or that the mouse is more permissive. Resolving this needs a human-cell or patient-tissue assay of TEX11 function, not more mouse alleles.

Pathophysiology

5
TEX11 Loss of Function
Hemizygous TEX11 variants, including splice-site and missense changes and a recurrent 99 kb deletion removing three exons from the meiosis-specific SPO22 sporulation domain, abolish functional TEX11 protein. In normal human testis TEX11 is expressed in late spermatocytes and in round and elongated spermatids; in testes of affected men that expression is absent.
Genetic context TEX11 hgnc:11733 HUGO Gene Nomenclature Committee (hgnc) Relation: this genetic context concerns this gene This genetic context concerns TEX11 (hgnc:11733). hgnc:11733 is a gene from the HUGO Gene Nomenclature Committee. zygosity: HEMIZYGOUS functional_impact_category: LOSS_OF_FUNCTION
Show evidence (2 references)
PMID:25970010 SUPPORT Human Clinical
"In contrast, testes of patients who had azoospermia with TEX11 mutations had meiotic arrest and lacked TEX11 expression."
Establishes loss of TEX11 protein in the target tissue of affected men, and links it to the arrest phenotype in the same specimens.
PMID:25970010 SUPPORT Human Clinical
"This loss, which was identical in 2 patients with azoospermia, predicts a deletion of 79 amino acids within the meiosis-specific sporulation domain SPO22."
Locates the recurrent deletion allele within the functional domain, which is the basis for calling it loss of function.
Chromosomal Asynapsis and Reduced Crossover Formation
TEX11 forms foci on synapsed regions of meiotic chromosomes as a constituent of recombination nodules, and it binds SYCP2, an integral component of the synaptonemal complex lateral element. That interaction is the proposed physical link between synapsis and recombination. Losing TEX11 produces asynapsis of homologous chromosomes together with a genome-wide reduction in crossover formation, rather than either defect alone.
spermatocyte CL:0000017 Cell Ontology (CL) Relation: this pathophysiological event involves this cell type This pathophysiological event involves spermatocyte (CL:0000017). CL:0000017 is a cell type from the Cell Ontology.
synapsis GO:0007129 Gene Ontology (GO) Relation: this pathophysiological event involves this biological process This pathophysiological event involves decreased synapsis, annotated with homologous chromosome pairing at meiosis (GO:0007129). GO:0007129 is a biological process from the Gene Ontology. ↓ DECREASED synaptonemal complex assembly GO:0007130 Gene Ontology (GO) Relation: this pathophysiological event involves this biological process This pathophysiological event involves decreased synaptonemal complex assembly (GO:0007130). GO:0007130 is a biological process from the Gene Ontology. ↓ DECREASED
synaptonemal complex GO:0000795 Gene Ontology (GO) Relation: this pathophysiological event involves this cellular component This pathophysiological event involves synaptonemal complex (GO:0000795). GO:0000795 is a cellular component from the Gene Ontology.
Show evidence (2 references)
PMID:18316482 SUPPORT INDIRECT Model Organism
"Loss of TEX11 function causes chromosomal asynapsis and reduced crossover formation, leading to elimination of spermatocytes, respectively, at the pachytene and anaphase I stages."
States the asynapsis and crossover defect and the two stages at which cells are lost. INDIRECT because it is established in the mouse.
PMID:18316482 SUPPORT INDIRECT Model Organism
"TEX11 interacts with SYCP2, which is an integral component of the synaptonemal complex lateral elements."
Supplies the physical interaction that links TEX11 to the synaptonemal complex, and is the mechanistic bridge to the SYCP2-related entry.
Pachytene Checkpoint Elimination of Spermatocytes
Spermatocytes carrying asynapsed autosomes are removed by apoptosis at the pachytene stage. The selectivity matters: cells whose only asynapsed chromosomes are the sex chromosomes progress past this checkpoint, so the arrest is not a uniform block at one point but a filter that different cells fail at different stages.
spermatocyte CL:0000017 Cell Ontology (CL) Relation: this pathophysiological event involves this cell type This pathophysiological event involves spermatocyte (CL:0000017). CL:0000017 is a cell type from the Cell Ontology.
Show evidence (1 reference)
PMID:18316482 SUPPORT INDIRECT Model Organism
"Specifically, TEX11-deficient spermatocytes with asynapsed autosomes undergo apoptosis at the pachytene stage, while those with only asynapsed sex chromosomes progress."
Distinguishes which spermatocytes are eliminated at pachytene from those that escape, which is what makes the histology mixed rather than uniform.
Meiosis I Nondisjunction in Escaping Spermatocytes
Spermatocytes that survive the pachytene checkpoint carry too few crossovers to segregate their homologues, and undergo chromosome nondisjunction at the first meiotic division. These cells die too. This second, later loss is why TEX11 deficiency produces infertility rather than aneuploid offspring.
Show evidence (1 reference)
PMID:18316482 SUPPORT INDIRECT Model Organism
"However, cells that survive the pachytene stage display chromosome nondisjunction at the first meiotic division, resulting in cell death and male infertility."
Records the second point of cell loss and its consequence.
Spermatogenic Arrest at Meiosis I
Germ cell loss at both points empties the seminiferous epithelium of post-meiotic cells. The histological diagnosis is meiotic arrest, and it is the pattern in which TEX11 variants are most concentrated: they were found in a substantially higher fraction of men whose biopsy showed meiotic arrest than of azoospermic men overall.
Show evidence (2 references)
PMID:25970010 SUPPORT Human Clinical
"Notably, five of those TEX11 mutations were detected in 33 patients (15%) with azoospermia who received a diagnosis of azoospermia with meiotic arrest."
Quantifies the concentration of TEX11 variants within the meiotic-arrest histologic subgroup, which is the tissue phenotype this node names.
PMID:25970010 SUPPORT Human Clinical
"Meiotic arrest in these patients resembled the phenotype of Tex11-deficient male mice."
States the correspondence between the human tissue phenotype and the mouse model, which is what licenses the mouse-derived mechanism above.

Histopathology

1
Meiotic arrest on testicular biopsy
The discriminating histology is meiotic arrest with germ cells present, not germ cell aplasia. Spermatogenesis stops in meiosis I and post-meiotic cells are absent, while spermatogonia and early spermatocytes remain. In the founding series the human picture was explicitly matched to the arrest seen in Tex11-deficient mice, and TEX11 protein was absent from the same testes.
Show evidence (3 references)
PMID:25970010 SUPPORT Human Clinical
"In contrast, testes of patients who had azoospermia with TEX11 mutations had meiotic arrest and lacked TEX11 expression."
Records the arrest histology together with absent TEX11 protein in the same specimens.
PMID:25970010 SUPPORT Human Clinical
"Meiotic arrest in these patients resembled the phenotype of Tex11-deficient male mice."
Establishes the correspondence between the human histology and the mouse model.
PMID:29661171 SUPPORT Human Clinical
"Histological analysis of testicular biopsy from both brothers revealed meiotic arrest and no post-meiotic round spermatids and mature spermatozoa were observed in the seminiferous tubules."
Independent confirmation of the arrest histology in a second family, and states explicitly that post-meiotic cells are absent while germ cells themselves are not.

Pathograph

Use the checkboxes to hide or show graph categories. Hover nodes for evidence and cross-linked metadata.
Pathograph: causal mechanism network for TEX11-related spermatogenic failure Interactive directed graph showing how pathophysiology mechanisms, phenotypes, genetic factors and variants, experimental models, environmental triggers, and treatments relate through causal and linked edges.

Phenotypes

2
Non-obstructive azoospermia Reproductive HP:0000027 Human Phenotype Ontology (HP) Relation: this clinical feature is this phenotype This clinical feature is Azoospermia (HP:0000027). HP:0000027 is a phenotype from the Human Phenotype Ontology.
Show evidence (1 reference)
PMID:26136358 SUPPORT Human Clinical
"Genetic screening of a large cohort of idiopathic infertile men reveals that TEX11 mutations, including frameshift and splicing acceptor site mutations, cause infertility in 1% of azoospermic men."
Establishes azoospermia as the clinical phenotype and quantifies the TEX11 contribution to it.
Male infertility Reproductive HP:0003251 Human Phenotype Ontology (HP) Relation: this clinical feature is this phenotype This clinical feature is Male infertility (HP:0003251). HP:0003251 is a phenotype from the Human Phenotype Ontology.
Show evidence (1 reference)
PMID:18316482 SUPPORT INDIRECT Model Organism
"However, cells that survive the pachytene stage display chromosome nondisjunction at the first meiotic division, resulting in cell death and male infertility."
Links the meiotic lesion to infertility as the outcome, in the model in which the mechanism was established.
🧬

Genetic Associations

1
TEX11
Gene: TEX11 hgnc:11733 HUGO Gene Nomenclature Committee (hgnc) Relation: this disease-associated gene is this gene This disease-associated gene is TEX11 (hgnc:11733). hgnc:11733 is a gene from the HUGO Gene Nomenclature Committee. relationship_type: CAUSATIVE variant_origin: GERMLINE
Show evidence (2 references)
PMID:25970010 SUPPORT Human Clinical
"These mutations, which occurred in 7 of 289 men with azoospermia (2.4%), were absent in 384 controls with normal sperm concentrations (P=0.003)."
Case-control comparison establishing TEX11 variants as causal rather than incidental in azoospermia.
PMID:26136358 REFUTE INDIRECT Model Organism
"Functional evaluation of three analogous human TEX11 missense mutations in transgenic mouse models identified one mutation (V748A) as a potential infertility allele and found two mutations non-causative."
Refutes the general claim that a missense variant in TEX11 is pathogenic by virtue of being in this gene. Two of three tested were non-causative, which is why this entry states that variant classification cannot be assumed from gene identity alone.
💊

Medical Actions

2
Testicular sperm extraction, withheld or not repeated
Action: testicular sperm retrievalNCI Thesaurus (NCIT) Relation: this treatment is this clinical intervention This treatment is testicular sperm retrieval, annotated with Sperm Retrieval (NCIT:C94427). NCIT:C94427 is a clinical intervention from the NCI Thesaurus. Ontology label: Sperm Retrieval NCIT:C94427
Platform: Surgery
The clinically actionable consequence of a TEX11 diagnosis is unusual in shape, because the intervention it supports is a negative one. Meiotic arrest predicts a poor yield from testicular sperm extraction, and TEX11 is one of only a small number of genes for which the evidence base linking genotype to negative retrieval outcomes is considered strong enough to act on. A molecular diagnosis can therefore spare a man a surgical procedure unlikely to recover usable sperm, or spare him a repeat of one that has already failed. Nothing restores endogenous fertility; there is no therapy directed at the meiotic lesion itself.
Show evidence (2 references)
PMID:40896145 SUPPORT Human Clinical
"sperm were not recovered in any patient carrying LP/P variants in TEX11 (n = 17), SYCE1 (n = 14), and MSH4 (n = 10), indicating that the likelihood of obtaining sperm in patients with LP/P variants in these genes is close to zero"
Direct finding rather than a caveat: no sperm were recovered in any of 17 men carrying pathogenic or likely pathogenic TEX11 variants, which is what makes withholding the procedure a defensible decision.
PMID:40896145 SUPPORT Human Clinical
"caution is warranted for genes linked to negative TESE outcomes, except for TEX11, SYCE1, and MSH4, each of which have 10 or more reported TESE-negative cases"
Places TEX11 among the small number of genes whose retrieval-negative evidence base the authors consider sufficient to act on.
Genetic counselling for the patient and female relatives
Action: Genetic CounselingNCI Thesaurus (NCIT) Relation: this treatment is this clinical intervention This treatment is Genetic Counseling (NCIT:C15240). NCIT:C15240 is a clinical intervention from the NCI Thesaurus. NCIT:C15240
Platform: Behavioral / lifestyle
Counselling has a consequence beyond the proband. Because the allele is X-linked, a daughter conceived through assisted reproduction using the father's sperm is an obligate carrier, and can transmit it to her own sons. Where sperm are retrieved and used, that transmission is a foreseeable outcome of the treatment rather than an incidental family finding.
🔬

Diagnosis

3
Karyotype and Y-chromosome microdeletion analysis
Both are exclusions and both come before gene-level testing. Karyotype rules out 47,XXY, the commonest chromosomal cause of non-obstructive azoospermia, and AZF microdeletion analysis rules out the Y-linked causes. A man with TEX11-related disease has a normal 46,XY karyotype and no AZF deletion, so the diagnosis is only reachable once these are clear.
karyotyping NCIT:C16768 NCI Thesaurus (NCIT)
Results: Normal 46,XY karyotype with no AZF microdeletion.
Show evidence (1 reference)
PMID:40896145 SUPPORT Human Clinical
"karyotyping and Y chromosome azoospermia factor (AZF) microdeletion analysis"
Names the two exclusionary tests that precede gene-panel testing in the azoospermia workup.
Testicular biopsy
Biopsy establishes whether the histology is meiotic arrest, which is the pattern in which TEX11 variants concentrate. It is also where the interpretive trap sits, since focal Sertoli-cell-only tubules in a mixed picture can be mistaken for germ cell aplasia.
testicular biopsy NCIT:C15189 NCI Thesaurus (NCIT)
Results: Meiotic arrest, often with mixed testicular atrophy.
Show evidence (1 reference)
PMID:25970010 SUPPORT Human Clinical
"Notably, five of those TEX11 mutations were detected in 33 patients (15%) with azoospermia who received a diagnosis of azoospermia with meiotic arrest."
Shows that the biopsy result is what concentrates the pre-test probability, since TEX11 variants are far commoner in the meiotic-arrest subgroup.
TEX11 sequencing on a non-obstructive azoospermia gene panel
Sequencing confirms the diagnosis, usually as part of a panel rather than as a single-gene test given the locus heterogeneity of meiotic-arrest azoospermia. Copy-number analysis matters here as well as sequencing, since the recurrent multi-exon deletion was originally found by array comparative genomic hybridisation and would be missed by exon sequencing alone.
genetic testing NCIT:C15709 NCI Thesaurus (NCIT)
Results: A hemizygous pathogenic TEX11 variant.
Show evidence (2 references)
PMID:40896145 SUPPORT Human Clinical
"The diagnostic yield in our cohort was 6.1%"
Gives the overall diagnostic yield of gene-panel testing in a large non-obstructive azoospermia cohort, which is the context in which a TEX11 diagnosis is made.
PMID:25970010 SUPPORT Human Clinical
"We identified a 99-kb hemizygous loss on chromosome Xq13.2 that involved three TEX11 exons."
The recurrent deletion allele, found by array comparative genomic hybridisation, which is why copy-number analysis belongs alongside sequencing.
⚖️

Clinical Burden

Moderate
The burden is entirely reproductive and psychosocial. There is no systemic disease, no effect on virilisation, sexual function, general health or life expectancy, and carrier women are unaffected. What the diagnosis costs a patient is the prospect of biological parenthood without assisted reproduction, and often the outcome of a failed surgical retrieval.
🐁

Animal Models

1
Tex11-deficient mouse
The mouse in which the meiotic mechanism was established. It is the source of the asynapsis, crossover-reduction and two-stage cell-loss findings that this entry's pathophysiology chain rests on, and the founding human series explicitly matched patient histology to it.
Species
Mouse
Genotype
Tex11 null
Publication
Show evidence (1 reference)
PMID:25970010 SUPPORT Human Clinical
"Meiotic arrest in these patients resembled the phenotype of Tex11-deficient male mice."
Human-side support for treating this model as informative for the disease, from the founding clinical series rather than from the model's own authors.
{ }

Source YAML

click to show
name: TEX11-related spermatogenic failure
creation_date: "2026-09-04T00:00:00Z"
category: Mendelian
description: >-
  TEX11-related spermatogenic failure, X-linked spermatogenic failure 2, is an
  X-linked cause of non-obstructive azoospermia arising from hemizygous
  loss-of-function variants in TEX11. TEX11 is a meiosis-specific protein and the
  mammalian orthologue of the yeast ZMM factor Zip4. It forms discrete foci on
  synapsed meiotic chromosomes as a constituent of recombination nodules, and
  works within the ZZS complex alongside SHOC1 and SPO16 to couple synaptonemal
  complex assembly to the formation of class I crossovers. Losing it leaves
  programmed meiotic double-strand breaks unable to mature into crossovers, so
  homologous chromosomes fail to synapse fully; the affected spermatocytes are
  then eliminated at the pachytene stage, and those that escape undergo
  nondisjunction at the first meiotic division. Spermatogenesis therefore arrests
  in meiosis I, and the testicular histology is meiotic arrest rather than the
  uniform Sertoli-cell-only picture. Men present in adulthood at an infertility
  workup with azoospermia, a normal 46,XY karyotype and normal virilisation. The
  reported hormonal picture is that of primary testicular failure generally,
  isolated elevation of FSH with preserved testosterone and LH, but see notes:
  that profile is not curated as a phenotype here. TEX11 is among the most
  frequently identified single-gene causes of this histologic subtype, found in
  about 1 per cent of unselected azoospermic men and in a substantially larger
  fraction of those whose biopsy shows meiotic arrest.
notes: >-
  Nomenclature. This entry curates OMIM 309120 (SPGFX2), which is the
  TEX11-associated entity, and is bound to MONDO:0010647. It is not
  MONDO:0056795 (X-linked spermatogenic failure 1, OMIM 305700), which is a
  separate, pedigree-defined Sertoli-cell-only phenotype with no mapped causal
  gene, carrying the synonyms Del Castillo syndrome and germinal cell aplasia.
  The two are frequently conflated because the OMIM series numbers them
  consecutively and both are called X-linked spermatogenic failure. They are
  different diseases with different histology, and only this one has a molecular
  mechanism to curate.

  Histology, and a caution about the MONDO term one file over. The lesion here is
  meiotic arrest with germ cells present, not germ cell aplasia. Biopsies in
  reported TEX11 series often show mixed testicular atrophy, in which some
  tubules do look Sertoli-cell-only, so a report naming Sertoli-cell-only tubules
  does not exclude the diagnosis. It also does not make this entity the same as
  SPGFX1.

  Hormone profile, and why it is not curated. Elevated FSH with preserved
  testosterone and LH is the expected picture in primary testicular failure and
  is described for this disease in secondary literature. It is not modelled as a
  phenotype here because none of the sources cached for this entry states it for
  TEX11-related disease, and a targeted search for one returned nothing
  quotable. Binding HP:0008232 would need a reference fetched for that purpose;
  the claim is left in prose, attributed to the general pattern, rather than
  being given a binding it cannot support.
disease_term:
  preferred_term: spermatogenic failure, X-linked, 2
  term:
    id: MONDO:0010647
    label: spermatogenic failure, X-linked, 2
synonyms:
- SPGFX2
- spermatogenic failure, X-linked, 2
- TEX11-related azoospermia
- azoospermia due to TEX11 mutation
- meiotic arrest, TEX11-related
parents:
- Spermatogenic Failure
- Meiotic Gametogenic Failure
references:
- reference: PMID:25970010
  title: "X-linked TEX11 mutations, meiotic arrest, and azoospermia in infertile men."
  findings: []
- reference: PMID:18316482
  title: Meiotic failure in male mice lacking an X-linked factor.
  findings: []
- reference: PMID:26136358
  title: TEX11 is mutated in infertile men with azoospermia and regulates genome-wide recombination rates in mouse.
  findings: []
- reference: PMID:40896145
  title: "Genetic determinants of testicular sperm extraction outcomes: insights from a large multicentre study of men with non-obstructive azoospermia."
  findings: []
- reference: PMID:29661171
  title: "A novel TEX11 mutation induces azoospermia: a case report of infertile brothers and literature review."
  findings: []
inheritance:
- name: X-linked recessive
  description: >-
    Affected men are hemizygous for a TEX11 loss-of-function allele on Xq13.
    Carrier women are fertile and unaffected. Because affected men are infertile
    without assisted reproduction, alleles reach probands by maternal
    transmission or arise de novo, and pedigrees rarely show the multigenerational
    segregation typical of dominant disease.
  inheritance_term:
    preferred_term: X-linked recessive inheritance
    term:
      id: HP:0001419
      label: X-linked recessive inheritance
  evidence:
  - reference: PMID:25970010
    reference_title: "X-linked TEX11 mutations, meiotic arrest, and azoospermia in infertile men."
    supports: SUPPORT
    evidence_source: HUMAN_CLINICAL
    snippet: "We identified a 99-kb hemizygous loss on chromosome Xq13.2 that involved three TEX11 exons."
    explanation: >-
      A hemizygous lesion on the X chromosome in affected men establishes the
      X-linked pattern.
pathophysiology:
- name: TEX11 Loss of Function
  biological_scale: MOLECULAR
  description: >-
    Hemizygous TEX11 variants, including splice-site and missense changes and a
    recurrent 99 kb deletion removing three exons from the meiosis-specific SPO22
    sporulation domain, abolish functional TEX11 protein. In normal human testis
    TEX11 is expressed in late spermatocytes and in round and elongated
    spermatids; in testes of affected men that expression is absent.
  genetic_context:
    gene:
      preferred_term: TEX11
      term:
        id: hgnc:11733
        label: TEX11
    zygosity: HEMIZYGOUS
    functional_impact_category: LOSS_OF_FUNCTION
  evidence:
  - reference: PMID:25970010
    reference_title: "X-linked TEX11 mutations, meiotic arrest, and azoospermia in infertile men."
    supports: SUPPORT
    evidence_source: HUMAN_CLINICAL
    snippet: "In contrast, testes of patients who had azoospermia with TEX11 mutations had meiotic arrest and lacked TEX11 expression."
    explanation: >-
      Establishes loss of TEX11 protein in the target tissue of affected men, and
      links it to the arrest phenotype in the same specimens.
  - reference: PMID:25970010
    reference_title: "X-linked TEX11 mutations, meiotic arrest, and azoospermia in infertile men."
    supports: SUPPORT
    evidence_source: HUMAN_CLINICAL
    snippet: "This loss, which was identical in 2 patients with azoospermia, predicts a deletion of 79 amino acids within the meiosis-specific sporulation domain SPO22."
    explanation: >-
      Locates the recurrent deletion allele within the functional domain, which
      is the basis for calling it loss of function.
  downstream:
  - target: Chromosomal Asynapsis and Reduced Crossover Formation
    description: >-
      Without TEX11 at recombination nodules, synapsis and crossover formation
      both fail.
- name: Chromosomal Asynapsis and Reduced Crossover Formation
  biological_scale: CELLULAR
  conforms_to: "meiotic_prophase_failure#Synaptonemal Complex Assembly"
  description: >-
    TEX11 forms foci on synapsed regions of meiotic chromosomes as a constituent
    of recombination nodules, and it binds SYCP2, an integral component of the
    synaptonemal complex lateral element. That interaction is the proposed
    physical link between synapsis and recombination. Losing TEX11 produces
    asynapsis of homologous chromosomes together with a genome-wide reduction in
    crossover formation, rather than either defect alone.
  cell_types:
  - preferred_term: spermatocyte
    term:
      id: CL:0000017
      label: spermatocyte
  cellular_components:
  - preferred_term: synaptonemal complex
    term:
      id: GO:0000795
      label: synaptonemal complex
  biological_processes:
  - preferred_term: synapsis
    term:
      id: GO:0007129
      label: homologous chromosome pairing at meiosis
    modifier: DECREASED
  - preferred_term: synaptonemal complex assembly
    term:
      id: GO:0007130
      label: synaptonemal complex assembly
    modifier: DECREASED
  evidence:
  - reference: PMID:18316482
    reference_title: Meiotic failure in male mice lacking an X-linked factor.
    supports: SUPPORT
    evidence_source: MODEL_ORGANISM
    directness: INDIRECT
    snippet: "Loss of TEX11 function causes chromosomal asynapsis and reduced crossover formation, leading to elimination of spermatocytes, respectively, at the pachytene and anaphase I stages."
    explanation: >-
      States the asynapsis and crossover defect and the two stages at which cells
      are lost. INDIRECT because it is established in the mouse.
  - reference: PMID:18316482
    reference_title: Meiotic failure in male mice lacking an X-linked factor.
    supports: SUPPORT
    evidence_source: MODEL_ORGANISM
    directness: INDIRECT
    snippet: "TEX11 interacts with SYCP2, which is an integral component of the synaptonemal complex lateral elements."
    explanation: >-
      Supplies the physical interaction that links TEX11 to the synaptonemal
      complex, and is the mechanistic bridge to the SYCP2-related entry.
  downstream:
  - target: Pachytene Checkpoint Elimination of Spermatocytes
    description: >-
      Asynapsed autosomes and unrepaired breaks activate the prophase checkpoint.
  - target: Meiosis I Nondisjunction in Escaping Spermatocytes
    description: >-
      Cells that pass the checkpoint still lack the chiasmata needed to segregate
      homologues.
- name: Pachytene Checkpoint Elimination of Spermatocytes
  biological_scale: CELLULAR
  conforms_to: "meiotic_prophase_failure#Pachytene Checkpoint Arrest and Germ Cell Apoptosis"
  description: >-
    Spermatocytes carrying asynapsed autosomes are removed by apoptosis at the
    pachytene stage. The selectivity matters: cells whose only asynapsed
    chromosomes are the sex chromosomes progress past this checkpoint, so the
    arrest is not a uniform block at one point but a filter that different cells
    fail at different stages.
  cell_types:
  - preferred_term: spermatocyte
    term:
      id: CL:0000017
      label: spermatocyte
  evidence:
  - reference: PMID:18316482
    reference_title: Meiotic failure in male mice lacking an X-linked factor.
    supports: SUPPORT
    evidence_source: MODEL_ORGANISM
    directness: INDIRECT
    snippet: "Specifically, TEX11-deficient spermatocytes with asynapsed autosomes undergo apoptosis at the pachytene stage, while those with only asynapsed sex chromosomes progress."
    explanation: >-
      Distinguishes which spermatocytes are eliminated at pachytene from those
      that escape, which is what makes the histology mixed rather than uniform.
  downstream:
  - target: Spermatogenic Arrest at Meiosis I
    description: >-
      Loss of the spermatocyte population prevents progression to spermatids.
- name: Meiosis I Nondisjunction in Escaping Spermatocytes
  biological_scale: CELLULAR
  description: >-
    Spermatocytes that survive the pachytene checkpoint carry too few crossovers
    to segregate their homologues, and undergo chromosome nondisjunction at the
    first meiotic division. These cells die too. This second, later loss is why
    TEX11 deficiency produces infertility rather than aneuploid offspring.
  evidence:
  - reference: PMID:18316482
    reference_title: Meiotic failure in male mice lacking an X-linked factor.
    supports: SUPPORT
    evidence_source: MODEL_ORGANISM
    directness: INDIRECT
    snippet: "However, cells that survive the pachytene stage display chromosome nondisjunction at the first meiotic division, resulting in cell death and male infertility."
    explanation: >-
      Records the second point of cell loss and its consequence.
  downstream:
  - target: Spermatogenic Arrest at Meiosis I
    description: >-
      The escaping population is lost at the first division rather than maturing.
- name: Spermatogenic Arrest at Meiosis I
  biological_scale: TISSUE
  conforms_to: "meiotic_prophase_failure#Spermatogenic Arrest and Non-Obstructive Azoospermia"
  description: >-
    Germ cell loss at both points empties the seminiferous epithelium of
    post-meiotic cells. The histological diagnosis is meiotic arrest, and it is
    the pattern in which TEX11 variants are most concentrated: they were found in
    a substantially higher fraction of men whose biopsy showed meiotic arrest than
    of azoospermic men overall.
  evidence:
  - reference: PMID:25970010
    reference_title: "X-linked TEX11 mutations, meiotic arrest, and azoospermia in infertile men."
    supports: SUPPORT
    evidence_source: HUMAN_CLINICAL
    snippet: "Notably, five of those TEX11 mutations were detected in 33 patients (15%) with azoospermia who received a diagnosis of azoospermia with meiotic arrest."
    explanation: >-
      Quantifies the concentration of TEX11 variants within the meiotic-arrest
      histologic subgroup, which is the tissue phenotype this node names.
  - reference: PMID:25970010
    reference_title: "X-linked TEX11 mutations, meiotic arrest, and azoospermia in infertile men."
    supports: SUPPORT
    evidence_source: HUMAN_CLINICAL
    snippet: "Meiotic arrest in these patients resembled the phenotype of Tex11-deficient male mice."
    explanation: >-
      States the correspondence between the human tissue phenotype and the mouse
      model, which is what licenses the mouse-derived mechanism above.
  downstream:
  - target: Non-obstructive azoospermia
    description: >-
      No mature spermatozoa reach the ejaculate.
phenotypes:
- category: Reproductive
  name: Non-obstructive azoospermia
  description: >-
    Absence of spermatozoa in the ejaculate, with a testicular rather than
    obstructive cause. This is the presenting finding and is essentially
    universal in confirmed cases.
  phenotype_term:
    preferred_term: Azoospermia
    term:
      id: HP:0000027
      label: Azoospermia
  evidence:
  - reference: PMID:26136358
    reference_title: TEX11 is mutated in infertile men with azoospermia and regulates genome-wide recombination rates in mouse.
    supports: SUPPORT
    evidence_source: HUMAN_CLINICAL
    snippet: "Genetic screening of a large cohort of idiopathic infertile men reveals that TEX11 mutations, including frameshift and splicing acceptor site mutations, cause infertility in 1% of azoospermic men."
    explanation: >-
      Establishes azoospermia as the clinical phenotype and quantifies the
      TEX11 contribution to it.
- category: Reproductive
  name: Male infertility
  description: >-
    Infertility is the reason for presentation and the whole of the clinical
    burden. There is no systemic disease, no effect on virilisation, sexual
    function or life expectancy, and no phenotype in carrier women.
  phenotype_term:
    preferred_term: Male infertility
    term:
      id: HP:0003251
      label: Male infertility
  evidence:
  - reference: PMID:18316482
    reference_title: Meiotic failure in male mice lacking an X-linked factor.
    supports: SUPPORT
    evidence_source: MODEL_ORGANISM
    directness: INDIRECT
    snippet: "However, cells that survive the pachytene stage display chromosome nondisjunction at the first meiotic division, resulting in cell death and male infertility."
    explanation: >-
      Links the meiotic lesion to infertility as the outcome, in the model in
      which the mechanism was established.
genetic:
- name: TEX11
  notes: >-
    TEX11 sits at Xq13 and encodes a testis-restricted meiosis-specific protein,
    the mammalian orthologue of the yeast ZMM factor Zip4. The reported allele
    classes are splice-site and frameshift variants, missense variants, and a
    recurrent multi-exon deletion that removes 79 amino acids from the
    meiosis-specific SPO22 sporulation domain and was originally found by array
    comparative genomic hybridisation rather than by sequencing.

    Variant interpretation needs care here, and the field has published the
    reason. Missense TEX11 variants also occur in fertile men, so a missense
    change is not causal by virtue of being in this gene. The point has been
    tested directly rather than argued: of three human missense variants modelled
    in transgenic mice, only one behaved as a candidate infertility allele and
    two were non-causative. Truncating alleles are the class with consistent
    genotype-phenotype correspondence.
  gene_term:
    preferred_term: TEX11
    term:
      id: hgnc:11733
      label: TEX11
  relationship_type: CAUSATIVE
  variant_origin: GERMLINE
  case_fractions:
  - population: Men with azoospermia, unselected
    case_fraction_percent: 2.4
    cohort_size: 289
    notes: >-
      Seven of 289 azoospermic men in the founding screen, against none of 384
      controls with normal sperm concentration.
    evidence:
    - reference: PMID:25970010
      reference_title: "X-linked TEX11 mutations, meiotic arrest, and azoospermia in infertile men."
      supports: SUPPORT
      evidence_source: HUMAN_CLINICAL
      snippet: "These mutations, which occurred in 7 of 289 men with azoospermia (2.4%), were absent in 384 controls with normal sperm concentrations (P=0.003)."
      explanation: >-
        Gives the case fraction and its control comparison in the founding
        cohort.
  - population: Men with azoospermia and meiotic arrest on biopsy
    case_fraction_percent: 15.0
    cohort_size: 33
    notes: >-
      The histologic subgroup in which TEX11 variants concentrate, from the same
      screen.
    evidence:
    - reference: PMID:25970010
      reference_title: "X-linked TEX11 mutations, meiotic arrest, and azoospermia in infertile men."
      supports: SUPPORT
      evidence_source: HUMAN_CLINICAL
      snippet: "Notably, five of those TEX11 mutations were detected in 33 patients (15%) with azoospermia who received a diagnosis of azoospermia with meiotic arrest."
      explanation: >-
        Gives the case fraction within the meiotic-arrest histologic subgroup.
  - population: Men with idiopathic azoospermia, independent cohort
    case_fraction_percent: 1.0
    notes: >-
      An independent screen of a large idiopathic-infertility cohort.
    evidence:
    - reference: PMID:26136358
      reference_title: TEX11 is mutated in infertile men with azoospermia and regulates genome-wide recombination rates in mouse.
      supports: SUPPORT
      evidence_source: HUMAN_CLINICAL
      snippet: "Genetic screening of a large cohort of idiopathic infertile men reveals that TEX11 mutations, including frameshift and splicing acceptor site mutations, cause infertility in 1% of azoospermic men."
      explanation: >-
        Independent estimate of the TEX11 share of azoospermia.
  evidence:
  - reference: PMID:25970010
    reference_title: "X-linked TEX11 mutations, meiotic arrest, and azoospermia in infertile men."
    supports: SUPPORT
    evidence_source: HUMAN_CLINICAL
    snippet: "These mutations, which occurred in 7 of 289 men with azoospermia (2.4%), were absent in 384 controls with normal sperm concentrations (P=0.003)."
    explanation: >-
      Case-control comparison establishing TEX11 variants as causal rather than
      incidental in azoospermia.
  - reference: PMID:26136358
    reference_title: TEX11 is mutated in infertile men with azoospermia and regulates genome-wide recombination rates in mouse.
    supports: REFUTE
    evidence_source: MODEL_ORGANISM
    directness: INDIRECT
    snippet: "Functional evaluation of three analogous human TEX11 missense mutations in transgenic mouse models identified one mutation (V748A) as a potential infertility allele and found two mutations non-causative."
    explanation: >-
      Refutes the general claim that a missense variant in TEX11 is pathogenic by
      virtue of being in this gene. Two of three tested were non-causative, which
      is why this entry states that variant classification cannot be assumed from
      gene identity alone.
histopathology:
- name: Meiotic arrest on testicular biopsy
  description: >-
    The discriminating histology is meiotic arrest with germ cells present, not
    germ cell aplasia. Spermatogenesis stops in meiosis I and post-meiotic cells
    are absent, while spermatogonia and early spermatocytes remain. In the
    founding series the human picture was explicitly matched to the arrest seen
    in Tex11-deficient mice, and TEX11 protein was absent from the same testes.
  evidence:
  - reference: PMID:25970010
    reference_title: "X-linked TEX11 mutations, meiotic arrest, and azoospermia in infertile men."
    supports: SUPPORT
    evidence_source: HUMAN_CLINICAL
    snippet: "In contrast, testes of patients who had azoospermia with TEX11 mutations had meiotic arrest and lacked TEX11 expression."
    explanation: >-
      Records the arrest histology together with absent TEX11 protein in the same
      specimens.
  - reference: PMID:25970010
    reference_title: "X-linked TEX11 mutations, meiotic arrest, and azoospermia in infertile men."
    supports: SUPPORT
    evidence_source: HUMAN_CLINICAL
    snippet: "Meiotic arrest in these patients resembled the phenotype of Tex11-deficient male mice."
    explanation: >-
      Establishes the correspondence between the human histology and the mouse
      model.
  - reference: PMID:29661171
    reference_title: "A novel TEX11 mutation induces azoospermia: a case report of infertile brothers and literature review."
    supports: SUPPORT
    evidence_source: HUMAN_CLINICAL
    snippet: "Histological analysis of testicular biopsy from both brothers revealed meiotic arrest and no post-meiotic round spermatids and mature spermatozoa were observed in the seminiferous tubules."
    explanation: >-
      Independent confirmation of the arrest histology in a second family, and
      states explicitly that post-meiotic cells are absent while germ cells
      themselves are not.
  notes: >-
    Focal Sertoli-cell-only tubules can coexist with arrested ones in the same
    biopsy, the pattern described as mixed testicular atrophy. A report naming
    Sertoli-cell-only tubules therefore does not exclude this diagnosis, and does
    not make the entity the same as the gene-less SPGFX1 concept discussed in
    notes. That mixed pattern follows from the mechanism rather than being an
    incidental observation: spermatocytes whose only asynapsed chromosomes are
    the sex chromosomes escape the pachytene checkpoint and are lost later, so
    different tubules arrest at different points.
diagnosis:
- name: Karyotype and Y-chromosome microdeletion analysis
  description: >-
    Both are exclusions and both come before gene-level testing. Karyotype rules
    out 47,XXY, the commonest chromosomal cause of non-obstructive azoospermia,
    and AZF microdeletion analysis rules out the Y-linked causes. A man with
    TEX11-related disease has a normal 46,XY karyotype and no AZF deletion, so
    the diagnosis is only reachable once these are clear.
  diagnosis_term:
    preferred_term: karyotyping
    term:
      id: NCIT:C16768
      label: Karyotyping
  results: Normal 46,XY karyotype with no AZF microdeletion.
  evidence:
  - reference: PMID:40896145
    reference_title: "Genetic determinants of testicular sperm extraction outcomes: insights from a large multicentre study of men with non-obstructive azoospermia."
    supports: SUPPORT
    evidence_source: HUMAN_CLINICAL
    snippet: "karyotyping and Y chromosome azoospermia factor (AZF) microdeletion analysis"
    explanation: >-
      Names the two exclusionary tests that precede gene-panel testing in the
      azoospermia workup.
- name: Testicular biopsy
  description: >-
    Biopsy establishes whether the histology is meiotic arrest, which is the
    pattern in which TEX11 variants concentrate. It is also where the
    interpretive trap sits, since focal Sertoli-cell-only tubules in a mixed
    picture can be mistaken for germ cell aplasia.
  diagnosis_term:
    preferred_term: testicular biopsy
    term:
      id: NCIT:C15189
      label: Biopsy Procedure
  results: Meiotic arrest, often with mixed testicular atrophy.
  evidence:
  - reference: PMID:25970010
    reference_title: "X-linked TEX11 mutations, meiotic arrest, and azoospermia in infertile men."
    supports: SUPPORT
    evidence_source: HUMAN_CLINICAL
    snippet: "Notably, five of those TEX11 mutations were detected in 33 patients (15%) with azoospermia who received a diagnosis of azoospermia with meiotic arrest."
    explanation: >-
      Shows that the biopsy result is what concentrates the pre-test probability,
      since TEX11 variants are far commoner in the meiotic-arrest subgroup.
- name: TEX11 sequencing on a non-obstructive azoospermia gene panel
  description: >-
    Sequencing confirms the diagnosis, usually as part of a panel rather than as
    a single-gene test given the locus heterogeneity of meiotic-arrest
    azoospermia. Copy-number analysis matters here as well as sequencing, since
    the recurrent multi-exon deletion was originally found by array comparative
    genomic hybridisation and would be missed by exon sequencing alone.
  diagnosis_term:
    preferred_term: genetic testing
    term:
      id: NCIT:C15709
      label: Genetic Testing
  results: A hemizygous pathogenic TEX11 variant.
  evidence:
  - reference: PMID:40896145
    reference_title: "Genetic determinants of testicular sperm extraction outcomes: insights from a large multicentre study of men with non-obstructive azoospermia."
    supports: SUPPORT
    evidence_source: HUMAN_CLINICAL
    snippet: "The diagnostic yield in our cohort was 6.1%"
    explanation: >-
      Gives the overall diagnostic yield of gene-panel testing in a large
      non-obstructive azoospermia cohort, which is the context in which a TEX11
      diagnosis is made.
  - reference: PMID:25970010
    reference_title: "X-linked TEX11 mutations, meiotic arrest, and azoospermia in infertile men."
    supports: SUPPORT
    evidence_source: HUMAN_CLINICAL
    snippet: "We identified a 99-kb hemizygous loss on chromosome Xq13.2 that involved three TEX11 exons."
    explanation: >-
      The recurrent deletion allele, found by array comparative genomic
      hybridisation, which is why copy-number analysis belongs alongside
      sequencing.
animal_models:
- name: Tex11-deficient mouse
  species: Mouse
  genotype: Tex11 null
  publication: PMID:18316482
  description: >-
    The mouse in which the meiotic mechanism was established. It is the source of
    the asynapsis, crossover-reduction and two-stage cell-loss findings that this
    entry's pathophysiology chain rests on, and the founding human series
    explicitly matched patient histology to it.
  modeled_mechanisms:
  - target: Chromosomal Asynapsis and Reduced Crossover Formation
    relationship: RECAPITULATES
    fidelity: HIGH
    model_scale: CELLULAR
    description: >-
      Establishes that TEX11 loss produces asynapsis together with reduced
      crossover formation, and the TEX11-SYCP2 interaction that links synapsis to
      recombination.
    limitations: >-
      The mechanism is established in mouse and inferred for human spermatocytes
      from cross-species conservation; no human cell assay of TEX11 function
      exists.
    evidence:
    - reference: PMID:18316482
      reference_title: Meiotic failure in male mice lacking an X-linked factor.
      supports: SUPPORT
      evidence_source: MODEL_ORGANISM
      snippet: "Loss of TEX11 function causes chromosomal asynapsis and reduced crossover formation, leading to elimination of spermatocytes, respectively, at the pachytene and anaphase I stages."
      explanation: >-
        Supports treating this model as informative for the asynapsis and
        crossover node.
  - target: Pachytene Checkpoint Elimination of Spermatocytes
    relationship: RECAPITULATES
    fidelity: HIGH
    model_scale: CELLULAR
    description: >-
      Establishes which spermatocytes are eliminated at pachytene and which
      escape, which is what makes the human histology mixed rather than uniform.
    limitations: >-
      The stage-specific selectivity is a mouse observation; human biopsies show
      the mixed pattern it predicts but have not been used to test the
      chromosome-specific mechanism directly.
    evidence:
    - reference: PMID:18316482
      reference_title: Meiotic failure in male mice lacking an X-linked factor.
      supports: SUPPORT
      evidence_source: MODEL_ORGANISM
      snippet: "Specifically, TEX11-deficient spermatocytes with asynapsed autosomes undergo apoptosis at the pachytene stage, while those with only asynapsed sex chromosomes progress."
      explanation: >-
        Supports treating this model as informative for the checkpoint node.
  evidence:
  - reference: PMID:25970010
    reference_title: "X-linked TEX11 mutations, meiotic arrest, and azoospermia in infertile men."
    supports: SUPPORT
    evidence_source: HUMAN_CLINICAL
    snippet: "Meiotic arrest in these patients resembled the phenotype of Tex11-deficient male mice."
    explanation: >-
      Human-side support for treating this model as informative for the disease,
      from the founding clinical series rather than from the model's own authors.
treatments:
- name: Testicular sperm extraction, withheld or not repeated
  description: >-
    The clinically actionable consequence of a TEX11 diagnosis is unusual in
    shape, because the intervention it supports is a negative one. Meiotic arrest
    predicts a poor yield from testicular sperm extraction, and TEX11 is one of
    only a small number of genes for which the evidence base linking genotype to
    negative retrieval outcomes is considered strong enough to act on. A molecular
    diagnosis can therefore spare a man a surgical procedure unlikely to recover
    usable sperm, or spare him a repeat of one that has already failed. Nothing
    restores endogenous fertility; there is no therapy directed at the meiotic
    lesion itself.
  therapeutic_modality: SURGERY
  notes: >-
    The therapeutic_modality here tags the intervention being withheld, not one
    being administered. What the diagnosis supports is a decision not to operate,
    or not to operate again.
  treatment_term:
    preferred_term: testicular sperm retrieval
    term:
      id: NCIT:C94427
      label: Sperm Retrieval
  evidence:
  - reference: PMID:40896145
    reference_title: "Genetic determinants of testicular sperm extraction outcomes: insights from a large multicentre study of men with non-obstructive azoospermia."
    supports: SUPPORT
    evidence_source: HUMAN_CLINICAL
    snippet: "sperm were not recovered in any patient carrying LP/P variants in TEX11 (n = 17), SYCE1 (n = 14), and MSH4 (n = 10), indicating that the likelihood of obtaining sperm in patients with LP/P variants in these genes is close to zero"
    explanation: >-
      Direct finding rather than a caveat: no sperm were recovered in any of 17
      men carrying pathogenic or likely pathogenic TEX11 variants, which is what
      makes withholding the procedure a defensible decision.
  - reference: PMID:40896145
    reference_title: "Genetic determinants of testicular sperm extraction outcomes: insights from a large multicentre study of men with non-obstructive azoospermia."
    supports: SUPPORT
    evidence_source: HUMAN_CLINICAL
    snippet: "caution is warranted for genes linked to negative TESE outcomes, except for TEX11, SYCE1, and MSH4, each of which have 10 or more reported TESE-negative cases"
    explanation: >-
      Places TEX11 among the small number of genes whose retrieval-negative
      evidence base the authors consider sufficient to act on.
- name: Genetic counselling for the patient and female relatives
  description: >-
    Counselling has a consequence beyond the proband. Because the allele is
    X-linked, a daughter conceived through assisted reproduction using the
    father's sperm is an obligate carrier, and can transmit it to her own sons.
    Where sperm are retrieved and used, that transmission is a foreseeable
    outcome of the treatment rather than an incidental family finding.
  therapeutic_modality: BEHAVIORAL
  treatment_term:
    preferred_term: Genetic Counseling
    term:
      id: NCIT:C15240
      label: Genetic Counseling
clinical_burden:
  burden_level: MODERATE
  rationale: >-
    The burden is entirely reproductive and psychosocial. There is no systemic
    disease, no effect on virilisation, sexual function, general health or life
    expectancy, and carrier women are unaffected. What the diagnosis costs a
    patient is the prospect of biological parenthood without assisted
    reproduction, and often the outcome of a failed surgical retrieval.
discussions:
- discussion_id: tex11_missense_allele_adjudication
  kind: HUMAN_MODEL_MISMATCH
  prompt: >-
    Which human TEX11 missense alleles are actually pathogenic, and can a
    transgenic mouse adjudicate that question for a given variant?
  rationale: >-
    Missense TEX11 variants are found in fertile men as well as in azoospermic
    men, so gene identity does not settle pathogenicity and the variants cannot
    all be causal. The one direct test of the question modelled three human
    missense alleles in transgenic mice and found only one behaved as a candidate
    infertility allele, with the other two non-causative. That is a real result
    and it is why this entry declines to treat missense variants as a causal
    class. It also sets up the mismatch: a mouse carrying a humanised allele is
    the only functional assay currently applied to these variants, and its
    negative results are being used to reclassify human variants, but nothing
    establishes that murine spermatogenesis has the same tolerance for a given
    substitution as human spermatogenesis does. A negative mouse result may mean
    the allele is benign, or that the mouse is more permissive. Resolving this
    needs a human-cell or patient-tissue assay of TEX11 function, not more mouse
    alleles.
  attaches_to:
  - genetic#TEX11
  - pathophysiology#TEX11 Loss of Function
📚

References & Deep Research

References

5
X-linked TEX11 mutations, meiotic arrest, and azoospermia in infertile men.
No top-level findings curated for this source.
Meiotic failure in male mice lacking an X-linked factor.
No top-level findings curated for this source.
TEX11 is mutated in infertile men with azoospermia and regulates genome-wide recombination rates in mouse.
No top-level findings curated for this source.
Genetic determinants of testicular sperm extraction outcomes: insights from a large multicentre study of men with non-obstructive azoospermia.
No top-level findings curated for this source.
A novel TEX11 mutation induces azoospermia: a case report of infertile brothers and literature review.
No top-level findings curated for this source.

Deep Research

1
Claude Code
X-linked Spermatogenic Failure 1 (SPGFX1) — Comprehensive Research Report
claude-haiku-4-5-20251001, claude-sonnet-5 28 citations 2026-09-04T02:47:31.492150

X-linked Spermatogenic Failure 1 (SPGFX1) — Comprehensive Research Report

Important Nomenclature Note (read first)

Searches for "X-linked Spermatogenic Failure 1" surface two distinct OMIM entries that are frequently conflated in secondary sources, and this report distinguishes them explicitly:

Entry OMIM # Gene Status
SPGFX1 — Spermatogenic Failure, X-Linked, 1 305700 Not identified Phenotype-only MIM entry, gene never mapped/cloned
SPGFX2 — Spermatogenic Failure, X-Linked, 2 309120 TEX11 (Xq13.1) Molecularly defined, extensively characterized

SPGFX1 (305700) is a legacy OMIM phenotypic entry describing familial (pedigree-based) evidence for an X-linked pattern of Sertoli cell-only (SCO) syndrome / germ cell aplasia causing male infertility. Critically, no causal gene has ever been mapped or cloned for this specific entry — it remains a "phenotype description, X-linked" MIM number based on clinical pedigrees showing affected males and obligate/presumed carrier relationships, not a gene-based diagnosis omim.org/entry/305700. This is a common and important gap in the X-linked spermatogenic failure series: OMIM has assigned numbers SPGFX1 through SPGFX9 (305700, 309120, 301059, 301077, 301099, 301101, 301106, 301119, 301137), but only a subset (notably SPGFX2/TEX11) have a confirmed molecular basis; several others in the series remain phenotype-only or map to genes such as TEX15, MAGEB4/USP26-linked regions, ZNF711, and other Xq loci depending on the specific number, reflecting the deep genetic heterogeneity of X-linked non-obstructive azoospermia (NOA).

Because SPGFX1 itself has no established molecular/mechanistic literature to report — precisely the situation dismech's curation stub queue and design-decisions register would flag as "OUT_OF_SCOPE or awaiting a causal gene" — the bulk of this report addresses the molecularly and mechanistically characterized X-linked spermatogenic-failure disorder that is almost certainly the intended curation target, SPGFX2/TEX11 (OMIM 309120), while explicitly flagging where content is specific to the gene-mapped entry versus the unmapped SPGFX1 phenotype. This distinction should be verified against the current OMIM/MONDO record before knowledge-base curation, since OMIM numbering and "SPGFX-N" labels have shifted historically as genes were identified.


1. Disease Information

Overview. X-linked spermatogenic failure comprises a genetically heterogeneous group of Mendelian, X-linked causes of isolated male infertility due to azoospermia (absence of sperm in ejaculate) or severe oligozoospermia, without other syndromic features, ambiguous genitalia, or disorders of sex development. Affected men are phenotypically normal males (46,XY) with normal secondary sexual characteristics and normal androgenization; the defect is restricted to spermatogenesis.

  • SPGFX1 (305700): Clinically defined as Sertoli cell-only syndrome (germ cell aplasia) — seminiferous tubules lined solely by Sertoli cells, with no germ cells (SCO type I) or germ cells present in only a minority of tubules with subsequent degeneration (SCO type II). Men present with infertility, normal androgenization, moderately small testes (10–20 mL), normal testosterone/LH, and selectively elevated FSH. Diagnosis requires testicular biopsy. Etiology is hypothesized to involve failure of gonocyte migration/colonization of the gonad in some cases, versus germ-cell loss during/after puberty in others (MalaCards summary of OMIM 305700).
  • SPGFX2/TEX11 (309120): Clinically defined by azoospermia or severe oligozoospermia due to meiotic arrest, with testicular histology showing mixed testicular atrophy (tubules ranging from meiotic arrest to Sertoli-cell-only) rather than uniform SCO.

Key identifiers: - OMIM: 305700 (SPGFX1, phenotype only); 309120 (SPGFX2, TEX11); gene locus 300311 (TEX11) - Gene: TEX11 (HGNC:11733), Xq13.1 - MONDO: MONDO:0010595 has been associated with X-linked SCO/germ cell aplasia in cross-referenced sources; the TEX11-specific disorder maps to its own MONDO term (verify current MONDO cross-reference at curation time — do not hand-assign without OAK/MONDO lookup, per this repository's ontology-term policy) - ICD-10-CM: N46.0* Azoospermia (with subcodes N46.01 Organic azoospermia, N46.02x by extratesticular cause); no dedicated ICD-10 code exists for the specific genetic subtype - MeSH: Azoospermia (D053917); Meiosis; Spermatogenesis - Synonyms: SPGFX1 — "germinal cell aplasia, X-linked," "Sertoli-cell-only syndrome, X-linked," "Del Castillo syndrome" (used loosely/non-specifically in older literature for SCO in general, not X-linked-specific); SPGFX2/TEX11 — "meiotic arrest, TEX11-related," "azoospermia due to TEX11 mutation"

Evidence basis: Predominantly aggregated disease-level literature (case series, cohort screens of NOA patients, family/pedigree reports) rather than large-scale EHR data, reflecting the rare, specialist-diagnosed nature of the condition (diagnosis requires testicular biopsy and/or genetic testing in an infertility clinic setting).


2. Etiology

Disease causal factors. Purely genetic/Mendelian — an X-linked recessive defect in spermatogenesis-specific gene function. No environmental, infectious, or acquired cause defines this entry (as distinct from acquired/idiopathic NOA).

Genetic risk factors: - TEX11 hemizygous loss-of-function variants (nonsense, frameshift, splice-site, and select missense/in-frame deletions) are the principal identified cause for SPGFX2. A landmark 2015 NEJM study (Yatsenko et al., PMID not directly retrieved but corresponding EMBO Mol Med companion paper PMID:26136358) screened 240 men with azoospermia due to meiotic arrest and found TEX11 mutations in ~1% of unselected azoospermic men and up to 2.4% of men with meiotic-arrest histology — the largest-known single-gene cause of meiotic-arrest azoospermia at the time. - Subsequent cohort sequencing (Yang et al., cited via PMC10140331) found a "significantly high prevalence of singleton variants in azoospermic men (7.3%)" in a screen of 246 azoospermic men, though the same study cautioned that many singleton missense variants found in fertile controls are not causally linked — underscoring that variant classification (pathogenic vs. VUS) is critical and TEX11 sequence variation must be interpreted against control-cohort background rates. - A copy-number deletion, exons 10–12 (c.652del237bp / "607del237bp"), removing 79 amino acids from the meiosis-specific SPO22/TEX11-domain, was among the first pathogenic TEX11 lesions described via array-CGH (Yatsenko et al. 2015) and remains a recurrent, well-studied allele — most recently re-examined by in vitro and in silico functional study (Genes, 2025; PMC12652577) questioning/confirming its pathogenicity mechanism. - ZZS-complex paralog genesSHOC1 and SPO16 (TEX11's obligate complex partners) — and the interacting autosomal gene M1AP cause phenotypically similar or distinguishable meiotic-arrest NOA; a 2025 Andrology study (Ma et al., DOI 10.1111/andr.70291) and a 2025 EMBO Molecular Medicine study (DOI 10.1038/s44321-025-00244-0) directly compared genotype-phenotype relationships across TEX11/SHOC1/SPO16 ("ZZS deficiency") versus M1AP loss-of-function, finding ZZS-deficient men show early meiotic arrest, while M1AP-deficient men show a later metaphase I arrest with occasional haploid spermatid production — an important differential-diagnostic and prognostic distinction for sperm-retrieval counseling. - Overall, TEX11 is one of dozens of genes implicated in monogenic NOA (others include MEIOB, HFM1, MSH5, REC114, DMRT1, SYCP2, STAG3, TEX15), reflecting extreme locus heterogeneity in meiotic-arrest azoospermia.

Genetic risk factor — inheritance mode. X-linked recessive. Affected males are hemizygous for the causal TEX11 allele; because they are typically infertile without medical intervention, de novo mutation or maternal carrier transmission are the expected origins, and the condition is not usually observed to segregate across multiple generations of a pedigree in the classic sense (unlike autosomal-dominant conditions) — although reported multiplex families (e.g., infertile brothers, BMC Med Genet 2018, PMC5902858) demonstrate maternal transmission to more than one son.

Environmental/lifestyle risk factors: Not applicable to the TEX11/genetic subtype specifically — these are separate contributors to the broader idiopathic-NOA differential (heat exposure, gonadotoxins, varicocele, cryptorchidism, chemotherapy/radiation, endocrine disruptors) but are not causal for the monogenic disorder itself; a genetic diagnosis by definition excludes/supersedes these as the operative cause in a given patient, though co-occurrence is possible and not systematically studied.

Protective factors: None specific to this monogenic cause is established in the literature; there is no known genetic modifier that rescues TEX11-null spermatogenesis in humans.

Gene-environment interactions: Not established for TEX11; largely unstudied given the rarity of confirmed cases and difficulty separating genetic from environmental contributions in azoospermia cohorts.


3. Phenotypes

Phenotype Type Onset/Frequency Suggested HPO term
Azoospermia Laboratory/clinical sign Adult (ascertained at infertility workup); universal in confirmed cases HP:0000027 Azoospermia
Severe oligozoospermia (in less-severe allelic variants) Laboratory Adult; variable, minority of cases HP:0000798 Oligospermia
Meiotic arrest (spermatocyte arrest, typically pachytene/early-to-mid meiosis I for ZZS genes) Histopathologic/laboratory Adult; characteristic of TEX11/ZZS-related disease Related to HP:0010461 Oligospermia / meiotic-arrest terms are not finely subdivided in current HPO — best available: HP:0000798; consider free-text/GO-linked annotation for "meiotic arrest"
Mixed testicular atrophy (histology: tubules ranging from meiotic arrest to Sertoli-cell-only, ± hypospermatogenesis) Histopathologic sign Adult HP:0008734 Small testis (associated finding); histology itself is not directly HPO-coded
Sertoli-cell-only pattern (SPGFX1, and a subset of TEX11 cases) Histopathologic sign Adult HP:0000798/testicular biopsy finding; no precise dedicated HPO term for SCO pattern specifically
Small/moderately reduced testicular volume (10–20 mL) Physical/clinical sign Adult HP:0008734 Small testis
Elevated serum FSH Laboratory abnormality Adult HP:0008730 Abnormal circulating follicle stimulating hormone level (elevated)
Normal testosterone and LH Laboratory (normal) N/A (normal finding, documents intact Leydig-cell/HPG axis function)
Normal secondary sexual characteristics / normal androgenization Physical Absence of virilization defect; distinguishes from Klinefelter and other DSDs
Normal karyotype (46,XY) Cytogenetic Distinguishes from Klinefelter syndrome (47,XXY), which is the leading cytogenetic differential

Severity and progression: The phenotype is stable and non-progressive in the sense that it is a congenital, lifelong meiotic defect rather than a degenerative process; however, testicular histology across tubules within one testis is often mosaic ("mixed testicular atrophy"), meaning some tubules retain rare foci of more advanced spermatogenesis, which is directly relevant to sperm-retrieval prognosis (see Treatment/Diagnostics sections).

Quality of life impact: Primary impact is psychosocial and reproductive — infertility distress, and for many patients, dependence on assisted reproduction or third-party reproduction (donor sperm) for biological parenthood. No direct impact on general health, life expectancy, sexual function, or somatic development has been reported; this is an isolated reproductive-tract phenotype.


4. Genetic/Molecular Information

Causal gene (SPGFX2): TEX11 ("testis expressed 11"), HGNC:11733, Xq13.1, gene OMIM *300311. Encodes a 947-amino-acid, testis-restricted meiotic protein.

Protein function and domain structure. TEX11 is the mammalian ortholog of the budding-yeast ZMM protein Zip4. It contains a meiosis-specific sporulation domain (SPO22-like). TEX11 forms discrete immunocytochemical foci on synapsed meiotic chromosomes and is a physical constituent of recombination/meiotic nodules.

Variant spectrum (SPGFX2/TEX11): - Nonsense and frameshift mutations → protein truncation, associated with defective SPO22/meiosis-specific domain — generally the most clearly pathogenic class, correlating with complete meiotic arrest in both human and CRISPR mouse models. - Splice-site mutations. - Missense mutations — pathogenicity more variable/uncertain; population screening finds missense TEX11 variants in fertile controls as well, so ACMG/AMP-style classification per variant is essential rather than assuming all TEX11 missense changes are causal (Yang et al., cited above). - In-frame exonic deletion: c.652del237bp (loss of exons 10–12, 79-aa deletion within the SPO22 domain) — first described by array-CGH (Yatsenko 2015); its pathogenic mechanism was re-examined by a 2025 in vitro/in silico functional study. - Estimated contribution: TEX11 mutations account for ~1–2.4% of nonobstructive azoospermia with meiotic arrest, and roughly 1% of unselected NOA cohorts overall, making it one of the most frequent single-gene causes identified to date for this histologic subtype.

Functional consequence: Predominantly loss of function. TEX11 is required as part of the trimeric "ZZS" complex (TEX11–SHOC1–SPO16, orthologous to yeast Zip4–Zip2–Spo16) that couples synaptonemal complex assembly to Class-I crossover formation during meiotic prophase I. Loss of TEX11 causes chromosomal asynapsis and reduced crossover formation, triggering meiotic checkpoint-mediated elimination of spermatocytes at pachytene and metaphase/anaphase I — this is the direct molecular-to-cellular mechanistic link between the gene defect and the azoospermia phenotype.

Modifier genes / interacting loci: SHOC1 and SPO16 (ZZS complex partners) and M1AP (an interacting autosomal protein that promotes Class-I crossover formation alongside the ZZS complex) — pathogenic variants in any of these genes produce a related but genotype-distinguishable meiotic-arrest phenotype (early arrest for ZZS-gene defects vs. later metaphase-I arrest with rare haploid cells for M1AP defects), per the 2025 EMBO Molecular Medicine genotype-phenotype study.

Population/allele frequency: TEX11 pathogenic loss-of-function alleles are, as expected for a fertility-limiting X-linked recessive trait, rare/absent in general population reference databases such as gnomAD (consistent with strong purifying/reproductive selection against transmission, since affected hemizygous males are naturally infertile). Systematic gnomAD constraint metrics were not retrieved in this pass and should be checked directly in gnomAD/ClinVar at curation time.

Epigenetics/chromosomal abnormalities: No specific DNA-methylation or histone-modification signature has been reported as causal for TEX11-related disease; the defect is a primary loss-of-function protein/meiotic-machinery lesion rather than an epigenetic disorder. No recurrent chromosomal rearrangement (aside from the exon 10–12 deletion noted above) is described.

SPGFX1 (305700) molecular information: None available — no gene has been mapped for this OMIM entry; it remains defined purely by clinical/pedigree phenotype (X-linked pattern of SCO-syndrome infertility). This is a genuine, reportable knowledge gap rather than an omission in this research pass.


5. Environmental Information

Not applicable as a cause of the monogenic disorder itself. General environmental/lifestyle contributors to non-obstructive azoospermia as a category (heat, gonadotoxic chemotherapy/radiation, endocrine-disrupting chemicals, smoking, obesity) are documented in the broader NOA literature but are not specifically implicated in TEX11-mutation-positive or SPGFX1 cases, and no gene-environment interaction study for TEX11 was identified in this search.


6. Mechanism / Pathophysiology

Ordered causal chain (TEX11/SPGFX2 — the molecularly defined disorder):

  1. Hemizygous TEX11 loss-of-function variant (nonsense/frameshift/splice/exonic deletion) → absence or non-functional TEX11 protein in spermatocytes. (Directly demonstrated: immunostaining shows TEX11 protein absent in patient testis tissue with truncating mutations, PMC8491544.)
  2. Loss of functional TEX11 disrupts assembly of the ZZS complex (TEX11–SHOC1–SPO16), which normally localizes to recombination intermediates on meiotic chromosome axes. (Demonstrated in mouse and yeast homolog studies; inferred as the mechanism in human cells based on cross-species conservation.)
  3. ZZS-complex failure → impaired coupling of synaptonemal-complex assembly to Class-I crossover formation, and TEX11 loss additionally delays repair of programmed meiotic double-strand breaks (DSBs). (Demonstrated in Tex11-knockout mice, PMID:26136358.)
  4. This produces chromosomal asynapsis (failure of homologous chromosome pairing) and a genome-wide reduction in crossover/chiasma frequency. (Demonstrated in mouse; strongly inferred in human based on the shared molecular mechanism and observed cytogenetic/histologic parallels.)
  5. Unrepaired DSBs and unsynapsed/achiasmate chromosomes trigger the meiotic pachytene checkpoint, leading to apoptotic elimination of spermatocytes, predominantly at the pachytene and metaphase/anaphase I stages of meiosis I. (Demonstrated — this is the direct cytological finding in both human testis biopsy and mouse models.)
  6. Loss of the spermatocyte population at these stages → failure of progression to secondary spermatocytes, spermatids, and mature spermatozoa, producing histologic meiotic arrest, often admixed across tubules with Sertoli-cell-only tubules (where germ cells are entirely absent) — the "mixed testicular atrophy" pattern characteristic of TEX11 disease. (Demonstrated on testis biopsy.)
  7. Absence of mature spermatozoa in the ejaculate → clinical azoospermia, with compensatory elevated FSH (loss of germ-cell-derived inhibin B feedback on the pituitary) and preserved testosterone/LH (Leydig cell/steroidogenic axis unaffected, since the lesion is germ-cell-intrinsic). (Demonstrated — routine clinical/hormonal finding.)

Branch point — genotype-dependent severity: Loss-of-function TEX11 variants (frameshift/nonsense) produce complete, early meiotic arrest and full infertility in both mouse models and men; certain missense or partial in-frame-deletion alleles may permit partial/leaky spermatogenesis with rare mature sperm production, which is clinically important for sperm-retrieval prognosis (see Treatment, below). The 2025 EMBO Mol Med study further demonstrates a mechanistic branch by paralog: ZZS-gene defects (TEX11/SHOC1/SPO16) → early meiotic arrest, whereas M1AP defects → later, metaphase-I arrest with occasional haploid spermatid output — i.e., the same general recombination-failure pathway but with a distinguishable "how far cells get" phenotype depending on which node of the pathway is disrupted.

Molecular pathways: Meiotic homologous recombination / Class-I (interference-sensitive) crossover pathway; synaptonemal complex assembly (SYCP1/SYCP2/SYCP3/SYCE-family proteins); TEX11 physically interacts with SYCP2 in vivo, providing a proposed molecular link between chromosomal synapsis and recombination machinery.

Cellular processes: Meiotic prophase I progression (leptotene→zygotene→pachytene→diplotene), homologous chromosome synapsis, DNA double-strand break formation and repair (via SPO11-initiated DSBs, RAD51/DMC1-mediated strand invasion), crossover/chiasma formation, and meiotic checkpoint-triggered apoptosis of defective spermatocytes.

Protein dysfunction: Loss of function of a meiosis-specific recombination-complex scaffold protein (TEX11), rather than misfolding/aggregation or a gain-of-function mechanism.

Suggested ontology terms: - GO (biological process): GO:0007129 synapsis; GO:0000724 double-strand break repair via homologous recombination; GO:0007140 male meiotic nuclear division; GO:0007140/GO:0051321 meiotic cell cycle; crossover formation processes. - GO (cellular component): synaptonemal complex (GO:0000795). - CL (cell types): CL:0000017 spermatocyte (and more specific: primary spermatocyte, pachytene spermatocyte if a finer term is required); CL:0000020 spermatogonium (upstream, unaffected population); CL:0000216 Sertoli cell. - UBERON: UBERON:0000473 testis; UBERON:0001301 seminiferous tubule. - HGNC: TEX11 (HGNC:11733), SHOC1 (HGNC:29403 — verify), SPO16, M1AP.

Single-cell/omics context: Human testis single-cell RNA-seq atlases (Human Cell Atlas testis datasets) have characterized normal spermatogenic-lineage trajectories and are the appropriate reference for interpreting TEX11-deficient testis transcriptomic/spatial data, though a TEX11-specific single-cell study of patient tissue was not retrieved in this search pass and should be checked directly in GEO/CELLxGENE at curation time.


7. Anatomical Structures Affected

  • Organ level (primary): Testis (bilateral) — the sole primary site of pathology. No other organ system is affected; this is an isolated reproductive-tract/gonadal phenotype.
  • Organ level (secondary): None directly damaged; downstream/secondary consequences are functional (infertility) rather than additional organ pathology. The epididymis is anatomically normal but functionally irrelevant to sperm output given the absence of testicular sperm production (obstructive causes are explicitly excluded in this differential).
  • Body systems: Male reproductive system only; endocrine (hypothalamic-pituitary-gonadal axis) is secondarily perturbed only at the hormonal level (elevated FSH) without primary pathology in the hypothalamus/pituitary.
  • Tissue/cell level: Seminiferous tubule epithelium — specifically the germ-cell lineage (spermatogonia → spermatocytes) is lost/arrested; the somatic Sertoli cells persist and structurally support the (empty or arrested) tubules; Leydig cells in the interstitium remain functionally intact (normal testosterone).
  • Cell populations (CL terms): Primary spermatocyte (CL:0000018/pachytene spermatocyte), spermatogonium (CL:0000020), Sertoli cell (CL:0000216), Leydig cell (CL:0000178).
  • Subcellular level: Meiotic chromosome axis / synaptonemal complex (nuclear, GO:0000795); the causal lesion operates at chromatin/nuclear structures during meiotic prophase I, not in cytoplasmic organelles.
  • Localization: Bilateral, generally symmetric testicular involvement; no lateralization pattern reported. Within each testis, involvement is characteristically mosaic/heterogeneous across seminiferous tubules ("mixed testicular atrophy").

8. Temporal Development

  • Onset: The molecular/meiotic lesion is present from puberty onward (spermatogenesis, and thus meiosis, does not occur before puberty), but clinically the condition is ascertained in adulthood, typically during a couple's infertility workup (commonly late 20s–40s). It is not congenital in the sense of being present/detectable at birth (karyotype and genitalia are normal), though the causal genetic variant is present from conception.
  • Progression: The underlying meiotic block is a fixed, non-progressive developmental defect rather than a degenerative disease course — it does not worsen over the patient's reproductive lifespan in the way an acquired or age-related condition would, though clinicians should note some non-genetic causes of NOA (e.g., varicocele) can be progressive; the monogenic TEX11 defect itself is not known to be progressive.
  • Disease course pattern: Stable/lifelong; not episodic, relapsing-remitting, or fluctuating.
  • Duration: Lifelong (permanent infertility via natural conception) unless circumvented by assisted reproductive technology using surgically retrieved sperm.
  • Remission: No spontaneous or treatment-induced remission of the underlying meiotic defect is described; management targets sperm retrieval/assisted reproduction rather than restoring endogenous fertility.
  • Critical periods: None identified for intervention/prevention, since this is a germline genetic lesion rather than a modifiable exposure-driven process; the only "intervention window" of practical relevance is the timing of surgical sperm retrieval and cryopreservation relative to a couple's reproductive planning.

9. Inheritance and Population

  • Epidemiology: Non-obstructive azoospermia (NOA) as a category affects ~1% of all men and ~10–15% of infertile men (obstructive azoospermia accounts for ~40% of azoospermia cases, NOA for ~60%). Within NOA cohorts specifically ascertained for meiotic-arrest histology, TEX11 mutations account for roughly 1–2.4%, and TEX11 variants overall are found in up to ~1% of unselected azoospermic men — making it one of the more frequent single monogenic causes identified for this phenotype, though still individually rare in absolute population terms.
  • Inheritance pattern: X-linked recessive for SPGFX2/TEX11 (and presumed X-linked for SPGFX1, based on pedigree evidence, though no gene is mapped). Affected males are hemizygous.
  • Penetrance: Reported as high/complete for clearly loss-of-function (truncating) alleles based on mouse and human correlation, but genotype-phenotype studies show variable expressivity for missense and certain in-frame variants (some producing partial spermatogenesis rather than complete arrest) — formal penetrance estimates are not established with population-level precision given the rarity and ascertainment bias (nearly all reported cases come from infertility clinics).
  • Expressivity: Variable — histologic severity ranges from complete Sertoli-cell-only pattern to mixed testicular atrophy with rare mature sperm, correlating loosely with variant type (truncating vs. missense/in-frame).
  • Genetic anticipation: Not reported/applicable (not a repeat-expansion disorder).
  • Germline mosaicism: Not specifically documented for TEX11, though theoretically possible as for any X-linked condition; multiplex-brother families (e.g., PMC5902858) are explained by inheritance from a heterozygous carrier mother rather than mosaicism.
  • Founder effects: No specific population founder allele reported; variants described across Chinese Han, Iranian, and other cohorts appear largely independent/private (many are "singleton" variants per cohort screening studies), consistent with ongoing new-mutation input given that affected males rarely reproduce without ART.
  • Carrier frequency: Not established in population screening databases; because carrier mothers are typically fertile and asymptomatic (X-inactivation mosaicism in somatic/ovarian tissue), population carrier frequency is unknown and not routinely tested outside of an affected male's family.
  • Consanguinity role: Not specifically emphasized for this X-linked (as opposed to autosomal-recessive) disorder in the retrieved literature, since a single maternal X-linked allele is sufficient for male disease — consanguinity is more relevant to the many autosomal-recessive meiotic-arrest NOA genes (e.g., HFM1, MSH5, MEIOB) than to TEX11.
  • Population demographics: Cases have been reported across diverse populations, including Chinese Han (PMC8491544), Iranian (PMC8897944), and other cohorts; no specific ethnic enrichment or geographic endemicity is established — this reflects broadly distributed private mutations rather than a population-specific founder variant.
  • Sex ratio: By definition, this is a male-only phenotype (X-linked recessive with male-restricted clinical manifestation as azoospermia); female carriers are not reported to have a reproductive or other phenotype.
  • Age distribution: Clinical ascertainment occurs in reproductive-age adult men (typically 20s–40s) presenting for infertility evaluation.

10. Diagnostics

Clinical/laboratory tests: - Semen analysis (repeated, per WHO criteria) confirming azoospermia (or severe oligozoospermia). - Hormonal panel: elevated FSH with normal LH and testosterone — a pattern indicating primary (testicular) rather than obstructive or hypothalamic-pituitary cause; LOINC codes exist for FSH (e.g., LOINC 2731-3 Follicle stimulating hormone [Units/volume] in Serum or Plasma) and are directly applicable. - Karyotype: essential first-line test — must be normal 46,XY to distinguish this monogenic disorder from Klinefelter syndrome (47,XXY), the most common chromosomal cause of NOA, and from other sex-chromosome aneuploidies. - Y-chromosome microdeletion (AZFa/AZFb/AZFc) testing: essential to exclude the classic Y-linked/AZF causes of NOA, which are far more commonly tested clinically than single-gene X-linked panels; a normal AZF result supports proceeding to autosomal/X-linked gene panel testing. - Testicular biopsy/histopathology: the definitive diagnostic step distinguishing SCO-only (SPGFX1-type) from meiotic arrest with mixed testicular atrophy (TEX11/SPGFX2-type) — histologic pattern is also directly prognostic for sperm-retrieval success (see below).

Genetic testing: - Targeted TEX11 sequencing (all coding exons) is commercially available as a clinical genetic test (e.g., GTR test ID 579471, "TEX11 gene Sequence Analysis-All Coding Exons," postnatal). - Exome-based male-infertility gene panels including AR, DMRT1, M1AP, TEX11, NR5A1, and others report a diagnostic yield of ~8.5% in previously genetically unexplained azoospermia cases (per a cited exome-panel study). - Whole-exome sequencing (WES) is increasingly used in the NOA diagnostic workup and has identified TEX11 along with CFTR and DMRT1 as clinically informative findings that may also help predict sperm-retrieval success; a 2025 systematic review/meta-analysis (PLOS ONE) formally evaluated the diagnostic yield of exome sequencing in NOA. - Array-CGH/CNV analysis was the original method by which the TEX11 exon 10–12 deletion was discovered and remains relevant for detecting exonic copy-number lesions not caught by standard exon sequencing. - Chromosomal microarray, mitochondrial DNA testing, and repeat-expansion testing are not specifically indicated for this disorder.

Differential diagnosis: - Klinefelter syndrome (47,XXY) — most common chromosomal cause of NOA; excluded by karyotype. - Y-chromosome AZF microdeletions — excluded by Y-microdeletion PCR panel. - Other monogenic meiotic-arrest genes (autosomal): HFM1, MSH5, MEIOB, REC114, STAG3, SYCE1, etc. — clinically indistinguishable without gene-panel/exome testing; histology alone (meiotic arrest pattern) cannot pinpoint the specific gene. - SHOC1, SPO16, M1AP — genetically and mechanistically related ZZS-pathway/interacting genes producing a similar-but-distinguishable (per 2025 genotype-phenotype study) meiotic-arrest phenotype. - Acquired/idiopathic NOA (varicocele, cryptorchidism history, gonadotoxin exposure, post-infectious) — excluded by history and by absence of an identified pathogenic variant. - Obstructive azoospermia — excluded by normal FSH/testicular volume and clinical exam (though genetic and obstructive causes are formally distinguished by biopsy/hormonal profile, as reviewed in a 2025 Asian Journal of Andrology paper on "Differentiation between nonobstructive azoospermia and obstructive azoospermia: then and now").

Screening: No population or newborn screening applies (adult-onset ascertainment, isolated reproductive phenotype). Once a proband is identified, cascade genetic counseling for maternal relatives (assessing carrier status in the mother and any sisters, for their own future reproductive/family-planning counseling, since carrier daughters could transmit the allele to sons) is the relevant "screening" context, though this was not directly documented with formal guideline citations in this search pass.


11. Outcome/Prognosis

  • Survival/mortality: No excess mortality or reduced life expectancy is associated with this disorder — it is not a systemic disease. Not applicable.
  • Morbidity: Morbidity is confined to infertility and its psychosocial sequelae; no physical disability or organ dysfunction outside the reproductive axis.
  • Quality of life: Impact is specifically on reproductive well-being/family-building; general health-related quality of life is not otherwise impaired. No disease-specific validated QoL instrument for this condition was identified in this search; general infertility-distress instruments would be the applicable proxy.
  • Complications: None directly attributable to the genetic lesion itself; complications relevant to management relate instead to surgical sperm-retrieval procedures (standard microTESE risks: bleeding, hematoma, transient testosterone reduction) rather than to the underlying disease process.
  • Recovery potential: Endogenous fertility does not recover; "recovery" in practical terms means successful surgical sperm retrieval enabling assisted reproduction.
  • Prognostic factors for sperm retrieval (micro-TESE): Testicular histology is the dominant prognostic factor. Reported micro-TESE sperm-retrieval success rates by histologic pattern (from cited 2025 review, PMC12055743):
  • Hypospermatogenesis: ~100% retrieval success
  • Testicular degeneration/atrophy: ~36.4%
  • Post-meiotic arrest: ~33.3%
  • Pre-meiotic arrest: ~16.7%
  • Sertoli-cell-only syndrome: ~8.3%
  • Meiotic arrest: ~8.7%

Because TEX11-related disease characteristically produces meiotic arrest and/or Sertoli-cell-only histology, retrieval success is generally low (roughly 8–9%), and men carrying pathogenic variants in genes essential for meiosis are "theoretically unlikely to yield viable sperm through TESE" (per cited 2025 review) — although mosaic "mixed testicular atrophy" foci mean retrieval is not impossible, and TEX11 genotype has been proposed as a prognostic biomarker to help set patient expectations before pursuing micro-TESE. - Prognostic biomarkers: Confirmed TEX11 (or ZZS/M1AP) pathogenic genotype itself functions as a prognostic marker for micro-TESE outcome counseling, per multiple cited sources.


12. Treatment

There is no treatment that restores or induces endogenous spermatogenesis for this genetic disorder — management is entirely oriented toward assisted reproduction using surgically retrieved sperm (where possible) or third-party reproduction/adoption.

  • Surgical/interventional: Microdissection testicular sperm extraction (micro-TESE) is the standard-of-care intervention to identify and retrieve any focal areas of sperm production for use in intracytoplasmic sperm injection (ICSI). NCIT term: NCIT:C15329 (Surgical Procedure); more specific device/procedure-coded terms for TESE specifically should be confirmed in NCIT at curation time.
  • Assisted reproductive technology: ICSI following successful sperm retrieval is the definitive fertility-restoring intervention when any mature sperm can be found. NCIT: consider NCIT:C15746/relevant ART procedure term (verify exact code via OAK search at curation time; not independently confirmed in this pass).
  • Pharmacotherapy: No disease-modifying or spermatogenesis-inducing drug therapy exists for this monogenic cause; empiric hormonal therapies used in some NOA contexts (e.g., clomiphene, aromatase inhibitors, gonadotropins) are generally directed at hypogonadotropic or secondary causes and are not expected to be effective when the defect is a primary, cell-intrinsic meiotic-recombination failure, though this was not directly documented as formally studied/excluded for TEX11 specifically in this search pass.
  • Third-party reproduction: Donor sperm insemination/IVF, or adoption, are standard alternative family-building options when sperm retrieval fails (a substantial proportion of TEX11/meiotic-arrest cases, given the ~8–9% retrieval rate cited above).
  • Genetic counseling: NCIT:C15240 (Genetic Counseling) is directly applicable and clinically essential — particularly because ICSI with retrieved sperm can, for the first time in an affected man's lineage, transmit the pathogenic X-linked allele to all daughters (obligate carriers), while sons (who receive the father's Y chromosome, not his X) are not at risk of inheriting the paternal X-linked variant. This transmission-risk counseling point is a standard consideration in ART for men with identified monogenic infertility causes, though a TEX11-specific formal counseling guideline was not directly retrieved in this search pass and should be verified against current ASRM/ESHRE guidance at curation time.
  • Experimental/investigational: No gene-therapy, gene-editing, or in-vitro gametogenesis approach has reached clinical application for this disorder; in vitro spermatogenesis / testicular organoid research is an active general research area relevant to future management of meiotic-arrest infertility but was not identified as TEX11-disease-specific in this search pass.
  • Treatment outcomes/prognosis by genotype: As above (Section 11) — retrieval success is histology/genotype-dependent, and the ZZS-vs-M1AP genotype distinction (2025 EMBO Mol Med study) is now proposed as a basis for differentiated pre-TESE counseling, since M1AP-deficient men may retain a slightly higher chance of haploid spermatid recovery than early-arrest ZZS-gene-deficient men.

13. Prevention

  • Primary prevention: Not applicable — this is a germline genetic condition with no modifiable environmental trigger to prevent onset.
  • Secondary prevention (early detection): Early referral of men presenting with infertility/azoospermia for karyotype, Y-microdeletion, and (where indicated) expanded gene-panel/exome testing enables earlier, more accurate counseling and avoids unnecessary or lower-yield interventions.
  • Tertiary prevention: Timely semen cryopreservation is not applicable (azoospermic), but cryopreservation of any sperm successfully retrieved via micro-TESE is standard practice to preserve reproductive options and avoid repeat surgical procedures.
  • Genetic/reproductive counseling and screening: Preimplantation genetic testing (PGT) could theoretically be used to select female (carrier or non-carrier) versus male embryos, or specifically to test for the TEX11 variant in female embryos, when ICSI is used with retrieved paternal sperm — a decision to be made through formal genetic counseling given that carrier daughters themselves would not be expected to have a fertility phenotype (X-linked recessive, male-restricted expression) but could transmit the allele in the next generation.
  • Public health/behavioral/immunization: Not applicable to this monogenic disorder.

14. Other Species / Natural Disease

  • Taxonomy: Modeled primarily in Mus musculus (NCBITaxon:10090); TEX11 orthologs are broadly conserved across vertebrates and even show mechanistic conservation back to budding yeast (Saccharomyces cerevisiae, NCBITaxon:4932) via the Zip4 ortholog relationship.
  • Gene orthology: Mouse Tex11 (MGI:1933237) is the direct ortholog of human TEX11; yeast Zip4 is the deep evolutionary ortholog establishing the conserved ZZS-complex mechanism (Zip2/Zip4/Spo16 in yeast ↔ SHOC1/TEX11/SPO16 in mammals).
  • Natural disease in other species: No naturally occurring TEX11-associated infertility syndrome in companion animals or wildlife was identified in this search — essentially all animal data derive from engineered (knockout/CRISPR) mouse models rather than spontaneously occurring veterinary cases; this is not a documented OMIA (Online Mendelian Inheritance in Animals) entry as far as this search could determine.
  • Comparative pathology: The meiotic-recombination-failure mechanism (impaired crossover formation, asynapsis, pachytene/metaphase-I checkpoint-triggered germ cell loss) is highly conserved between mouse and human, which is precisely why mouse Tex11-knockout/knock-in models are considered strong mechanistic proxies for the human disease (see Model Organisms, below) — though translational fidelity for milder/missense human alleles is less well validated (see model limitations below).
  • Zoonotic potential/transmission: Not applicable — this is a non-communicable, germline-genetic reproductive disorder.

15. Model Organisms

  • Primary model: Mouse (Mus musculus), via targeted knockout and, more recently, CRISPR/Cas9-engineered patient-variant-mimicking alleles.
  • Foundational knockout model: Tex11-null mice show abnormal male meiosis, delayed DSB repair, decreased crossover formation, and non-obstructive azoospermia, closely paralleling the human phenotype and establishing the core causal mechanism (Yatsenko/EMBO Mol Med 2015 mouse data, PMID:26136358).
  • Recent variant-specific CRISPR mouse models (2026 preprint, bioRxiv, "Tex11 Mutant Mouse Models of Human Azoospermia"):
  • Tex11D (frameshift, modeling a human truncating allele): severely reduced testis weight (28.3 mg vs. 144.2 mg wild-type), no epididymal sperm, infertile, maturation-arrest histology — closely recapitulating severe human truncating-variant disease.
  • Tex11A (missense): no spermatogenesis or fertility defect observed — demonstrating that not all TEX11 missense changes are functionally deleterious, directly relevant to human variant-classification caution noted in Section 4.
  • Tex11L: reduced testis weight (87.5 mg) and reduced epididymal sperm counts (0.33 million/cauda epididymis), but only incompletely penetrant infertility (~1/3 of mice infertile) — modeling the "leaky"/partial phenotype seen with some human hypomorphic alleles.
  • A separate PLOS One study additionally found that "a partial deletion within the meiosis-specific sporulation domain SPO22 of Tex11 is not associated with infertility in mice" (PMC11373865) — an important negative/discordant finding showing that not every exonic lesion in this domain is sufficient to cause disease, reinforcing the need for functional validation rather than domain-location alone when classifying human variants.
  • Model characteristics/limitations: Mouse models recapitulate the core cytological mechanism (crossover failure, meiotic arrest, azoospermia) with high fidelity for clearly truncating alleles, but phenotype severity is allele-specific — meaning a given human missense or in-frame variant cannot be assumed pathogenic by analogy alone, and each variant class ideally needs its own mouse (or in vitro) functional validation, as the discordant SPO22-deletion and Tex11A missense results directly demonstrate.
  • Applications: Mouse models are used to (1) establish causality and mechanism for candidate human variants, (2) study the ZZS complex's cell-biological function (chromosome axis localization, crossover formation) in vivo, and (3) potentially inform future variant-classification pipelines (functional stratification of VUS TEX11 alleles found in human NOA cohorts).
  • In vitro/functional models: The 2025 Genes journal study on the c.652del237bp variant used in vitro (cell-based) and in silico (computational/structural modeling) approaches — complementing whole-animal models for variant-level functional characterization, particularly useful for triaging variants before committing to a full mouse-model study.
  • Resources: Mouse Genome Informatics (MGI:1933237, Tex11) is the authoritative model-organism database entry; International Mouse Phenotyping Consortium (IMPC)/KOMP repositories are the standard sources for additional Tex11 allele resources, though specific IMPC phenotyping-center data for Tex11 was not independently retrieved in this search pass.

Summary of Key Gaps and Curation Cautions

  1. Verify which OMIM/MONDO entry is actually intended — SPGFX1 (305700, no gene) vs. SPGFX2 (309120, TEX11) — before building a pathophysiology-driven KB entry, since SPGFX1 itself has no mechanistic literature to curate against.
  2. TEX11 variant pathogenicity is allele-dependent, not a simple "any TEX11 hit = disease" rule — population screening finds TEX11 sequence variants (including some missense changes) in fertile controls, and mouse functional data show at least one missense allele (Tex11A) and one exonic in-frame deletion (SPO22-domain partial deletion, PMC11373865) with no functional consequence — cite specific variant-level evidence, not gene-level association, for any pathophysiology claim.
  3. Distinguish the ZZS-complex genes (TEX11, SHOC1, SPO16) from the interacting autosomal gene M1AP — related but genotype-distinguishable mechanism and prognosis per the 2025 EMBO Molecular Medicine study.
  4. Sperm-retrieval prognosis (micro-TESE success) is histology-driven and should be modeled/cited as a distinct claim from the underlying causal mechanism.

Sources

Reference Validation

Checked with linkml-reference-validator 0.2.1.

Outcome Count
References checked 17
Resolved 17
Unresolved (possible confabulation) 0
Unverifiable 0
Quoted claims checked 1
Quoted claims found in source 1
Quoted claims not found in source 0
References weighed for topical relevance 17
On topic 11
Off topic 0

All extracted references resolved successfully.

Term Validation

Checked with linkml-term-validator 0.4.5, through the ols: adapter.

Outcome Count
Terms checked 26
Resolved 22
Unresolved (possible confabulation) 0
Obsolete 1
Unverifiable 3
Terms whose name was checked 1
Terms named correctly 0
Terms named as a different term 1

Terms the report names something else

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:

  • NCBITaxon:10090 (1 mention) - the report calls it "Mus musculus", "Taxonomy: Modeled primarily in Mus musculus"; NCBITaxon calls it Mus musculus

Obsolete terms

These terms are real but deprecated. Citing one is not a fabrication; it does mean the report is naming something the ontology has retired:

  • MONDO:0010595 (obsolete Sertoli cell-only syndrome) (1 mention) - replaced by MONDO:0056795

Terms named inconsistently

The report gives these identifiers more than one name of its own:

  • HGNC:11733 - called "Gene: TEX11", "HGNC: TEX11"
  • NCBITaxon:10090 - called "Mus musculus", "Taxonomy: Modeled primarily in Mus musculus"
  • MGI:1933237 - called "Tex11", "Gene orthology:* Mouse Tex11"

Prefixes with no resolver

Terms carrying these prefixes were not checked either way, because no configured ontology covers them. An unrecognised prefix may name an ontology this run could not reach as easily as one that does not exist, so nothing here is evidence of fabrication: MGI.