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An autosomal recessive nonsyndromic deafness that has material basis in mutation in the SLC26A4 gene on chromosome 7q22. Mutation in the FOXI1 gene has been found to be a rare cause of EVA. EVA may also be rarely caused by digenic inheritance of heterozygous mutations in the SLC26A4 and FOXI1 genes, or in the SLC26A4 and KCNJ10 genes.
Features include always present findings: Enlarged vestibular aqueduct and Inner ear hearing loss (sensorineural hearing impairment). 4 total HPO annotations.
Organ System | Phenotype Count | Example Features |
|---|---|---|
Ears | 3 | Incomplete partition of the cochlea type II, Enlarged vestibular aqueduct, Inner ear hearing loss (sensorineural hearing impairment) |
Age of onset: at birth.
SLC26A4-related sensorineural hearing loss (SLC26A4-SNHL), characterized by inner ear malformations associated with vestibular dysfunction, comprises two phenotypes: (1) nonsyndromic SLC26A4-SNHL (also referred to as DFNB4 or nonsyndromic enlargement of the vestibular aqueduct [NSEVA]) and (2) Pendred syndrome (PDS) that includes thyroid involvement (typically identified more frequently in countries without universal salt iodization programs). The considerable intrafamilial variability (i.e., variability in clinical presentation of a particular disorder among affected individuals within the same immediate or extended family) in temporal bone anomalies, hearing loss, and thyroid disease makes the distinction between nonsyndromic SLC26A4-SNHL and PDS during childhood difficult [, , , , , ].
Source: GeneReviews — "SLC26A4-Related Sensorineural Hearing Loss"
FOXI1 encodes forkhead box I1 (378 aa). Transcriptional activator required for the development of normal hearing, sense of balance and kidney function. Highest expression in Kidney Cortex (32.3 TPM) and Kidney Medulla (24.0 TPM).
Autosomal recessive nonsyndromic hearing loss 4 is associated with mutations in the FOXI1 gene on chromosome 5.
FOXI1 is classified as a druggable target (Transcription Factor category) with score 0.0.
KCNJ10 encodes potassium inwardly rectifying channel subfamily J member 10 (379 aa). May be responsible for potassium buffering action of glial cells in the brain. Highest expression in Brain Spinal cord cervical c-1 (132.0 TPM) and Brain Caudate basal ganglia (61.6 TPM).
Autosomal recessive nonsyndromic hearing loss 4 is associated with mutations in the KCNJ10 gene on chromosome 1.
KCNJ10 is classified as a druggable target (Druggable Genome, Ion Channel, and Transporter categories) with score 7.5.
SLC26A4 function has not been fully characterized.
Autosomal recessive nonsyndromic hearing loss 4 is associated with mutations in the SLC26A4 gene on chromosome 7.
No clinically relevant genotype-phenotype correlations have been identified in individuals with biallelic SLC26A4 pathogenic variants.
Source: GeneReviews — "SLC26A4-Related Sensorineural Hearing Loss"
No consensus clinical diagnostic criteria for SLC26A4-related sensorineural hearing loss (SLC26A4-SNHL) have been published.
SLC26A4-SNHL should be considered in probands with the following clinical findings of sensorineural hearing loss, inner ear malformations, vestibular dysfunction, and thyroid abnormalities and family history .
Clinical findings
• Sensorineural hearing loss (SNHL)
Source: GeneReviews — "SLC26A4-Related Sensorineural Hearing Loss"
Congenital (or prelingual) genetic hearing loss affects approximately one in 1,000 newborns; 30% of these infants have additional anomalies, making the diagnosis of a syndromic form of hearing loss possible (see Genetic Hearing Loss Overview). Temporal bone malformations • Although enlarged vestibular aqueduct (EVA) with or without cochlear hypoplasia are seen in virtually all individuals with SLC26A4-related sensorineural hearing loss (SLC26A4-SNHL), neither EVA nor cochlear hypoplasia is specific to SLC26A4-SNHL. Other causes of these types of temporal bone malformations include acquired conditions such as congenital cytomegalovirus (cCMV) infection and genetic disorders . • SLC26A4 molecular genetic testing is not indicated for individuals with temporal bone anomalies that do not match the typical SLC26A4-SNHL-associated findings. Anomalies not associated with SLC26A4-SNHL include cochlear aplasia, Michel aplasia, common cavity malformation, and isolated semicircular canal dysplasia. Table 2. Genetic Disorders with Temporal Bone Malformations in the Differential Diagnosis of SLC26A4-Related Sensorineural Hearing Loss
Gene(s) | Disorder | MOI | Features of Disorder |
|---|---|---|---|
Genetic testing for FOXI1, KCNJ10, SLC26A4 is available. Testing is considered confirmatory for diagnosis.
Biomarker and diagnostic research for autosomal recessive nonsyndromic hearing loss 4 has been reported in the published literature.
No approved treatments are currently available for autosomal recessive nonsyndromic hearing loss 4. The disease remains an area of unmet medical need.
No clinical practice guidelines for SLC26A4-related sensorineural hearing loss (SLC26A4-SNHL) have been published. In the absence of published guidelines, the following recommendations are based on the authors' personal experience managing individuals with this disorder.
To establish the extent of disease and needs in an individual diagnosed with SLC26A4-SNHL, the evaluations summarized in this section (if not performed as part of the evaluation that led to the diagnosis) are recommended.
Assessment of auditory acuity (auditory brain stem response testing, pure tone audiometry)
Assessment of vestibular function during early childhood (should be considered)
Thyroid ultrasonography and thyroid function tests (T3 [triiodothyronine], T4 [thyroxine], and TSH [thyroid-stimulating hormone]) during early childhood with endocrinologist consultation as needed
Consultation with a clinical geneticist, certified genetic counselor, certified genetic nurse, or genetics advanced practice provider (nurse practitioner or physician assistant) to inform affected individuals and their families about the nature, mode of inheritance, and implications of SLC26A4-SNHL to facilitate medical and personal decision making
Assessment of need for family support and resources including community or online and social work involvement for parental support
See also Genetic Hearing Loss Overview.
There is no cure for SLC26A4-SNHL. For general informa...
Source: GeneReviews — "SLC26A4-Related Sensorineural Hearing Loss"
See Genetic Hearing Loss Overview, Agents/Circumstances to Avoid. There are anecdotal reports that increased intracranial pressure in individuals with enlarged vestibular aqueduct (EVA) can occasionally trigger a decline in hearing, leading some providers to recommend avoiding activities like weightlifting and contact sports . However, evidence is insufficient to support the claim that avoiding these activities will decrease the risk of overall hearing loss progression . While health care providers should alert families to the possible association between EVA and hearing loss following head injuries, families should be encouraged to make their own decisions on participation in contact sports, taking into account that head trauma may not significantly affect the overall risk of hearing loss progression .
Source: GeneReviews — "SLC26A4-Related Sensorineural Hearing Loss"
Search ClinicalTrials.gov in the US and EU Clinical Trials Register in Europe for access to information on clinical studies for a wide range of diseases and conditions. Note: There may not be clinical trials for this disorder.
Source: GeneReviews — "SLC26A4-Related Sensorineural Hearing Loss"
1 trial found
To monitor existing manifestations, the individual's response to supportive care, and the emergence of new manifestations, the following evaluations are recommended.
Hearing loss
The primary focus should be routinely scheduled audiometric follow up that includes assessment of suitability for CI to avoid unnecessary and counterproductive delay if/when the hearing loss progresses and hearing aids are no longer adequate .
Repeat audiometric testing every three to six months until age three years and annually thereafter.
Thyroid function
Baseline ultrasonography should be performed to assess thyroid size after age ten years and repeated every five to ten years based on findings on palpation of thyroid size. (The odds of developing a goiter are 1.1 for each one-year increase in age. Thus, after age 20 years, the increase in odds of developing goiter is 6.7-fold ).
While tests of thyroid function are usually normal in individuals with SLC26A4-SNHL irrespective of thyroid size, this testing is important in the evaluation and management of signs and symptoms of hypo- and hyperthyroidism and should be considered when the medical history and/or physical examination suggest thyroid dysfunction .
Source: GeneReviews — "SLC26A4-Related Sensorineural Hearing Loss"
Phenotype severity distribution: 2 always present features.
1 clinical trial registered, 1 recruiting. Interventions under study include other interventions. Research is primarily sponsored by academic and government institutions.
69 publications have been identified in PubMed for autosomal recessive nonsyndromic hearing loss 4. Kisho has analyzed 27 by research type. Research spans Basic Science / Preclinical (26%), Epidemiology / Natural History (26%), and Review / Meta-Analysis (19%).
Research Type | Count | % of Total |
|---|---|---|
Laboratory research | 7 | 26% |
Disease patterns and progression | 7 | 26% |
Research summaries | 5 | 19% |
Patient case studies | 4 | 15% |
Testing and diagnosis research | 3 | 11% |
Clinical study results | 1 | 4% |
Guan RR (2026). [PMID: 41521852](https://pubmed.ncbi.nlm.nih.gov/41521852/). *Otolaryngol Head Neck Surg*. [Basic Science / Preclinical]
Gan H (2026). [PMID: 41578500](https://pubmed.ncbi.nlm.nih.gov/41578500/). *Medicine (Baltimore)*. [Case Report / Case Series]
Kutija Fučkar I (2026). [PMID: 42074586](https://pubmed.ncbi.nlm.nih.gov/42074586/). *Genes (Basel)*. [Epidemiology / Natural History]
Chen PY (2026). [PMID: 42115145](https://pubmed.ncbi.nlm.nih.gov/42115145/). *Acta Otolaryngol*. [Basic Science / Preclinical]
Chan KH (2026). [PMID: 41623227](https://pubmed.ncbi.nlm.nih.gov/41623227/). *Laryngoscope*. [Epidemiology / Natural History]
Sklenar M (2025). [PMID: 40426046](https://pubmed.ncbi.nlm.nih.gov/40426046/). *Mol Med*. [Basic Science / Preclinical]
Guan R (2025). [PMID: 40906196](https://pubmed.ncbi.nlm.nih.gov/40906196/). *Eur J Pediatr*. [Basic Science / Preclinical]
Patel P (2025). [PMID: 40164977](https://pubmed.ncbi.nlm.nih.gov/40164977/). *Otol Neurotol*. [Basic Science / Preclinical]
Arai Y (2025). [PMID: 39858607](https://pubmed.ncbi.nlm.nih.gov/39858607/). *Genes (Basel)*. [Epidemiology / Natural History]
Bhogade M (2025). [PMID: 40093473](https://pubmed.ncbi.nlm.nih.gov/40093473/). *Indian J Otolaryngol Head Neck Surg*. [Diagnostic / Biomarker]
Data assembled from 7 of 12 sources · Last updated Sep 19, 2026, 9:18 AM UTC
Online Mendelian Inheritance in Man
Genetic and Rare Diseases Info Center
FOXI1 |
Distal renal tubular acidosis w/progressive SNHL (See Hereditary Distal Renal Tubular Acidosis.) |
AR |
SNHL; Malformations of inner ear incl EVA |
Branchiootorenal spectrum disorder | AD | SNHL; Malformations of inner ear incl EVA cochlear hypoplasia | Abnormalities of semicircular canals; Malformation of outer middle ear; Branchial fistulae cysts; Renal malformations POLR1B POLR1C POLR1D TCOF1 |
Treacher Collins syndrome | ADAR | Hearing loss (conductive) in ~40%-50% of persons; Occasionally, malformations of inner ear incl dysplasia of vestibule | Abnormalities of semicircular canals; Malformations of outer middle ear; Facial abnormalities incl maxillary hypoplasia micrognathia AD = autosomal dominant; AR = autosomal recessive; EVA = enlarged vestibular aqueduct; MOI = mode of inheritance; SNHL = sensorineural hearing loss |
Source: GeneReviews — "SLC26A4-Related Sensorineural Hearing Loss"