昆明理工大学附属医院,云南省第一人民医院医学遗传科,昆明 650500
国家自然科学基金(82360331,81860190)资助项目。
Medical Genetics Department of the Yunnan First People’s Hospital, The Affiliated Hospital of Kunming University of Science and Technology, Kunming 650500, China
This work was supported by grants from The National Natural Science Foundation of China (82360331, 81860190).
TMEM43基因编码的跨膜蛋白43(transmembrane protein 43,TMEM43)是TMEM蛋白家族成员之一,该蛋白质约为400个氨基酸,包括4个跨膜结构域和1个膜内结构域。TMEM43在许多物种中都存在表达,并且遗传相似性很高,特别是4个跨膜结构在不同物种中都表现为高度保守。近年来有研究者发现,TMEM43与听神经病谱系障碍(auditory neuropathy spectrum disorder,ANSD)的发生可能相关,推测其可能为一种新的听力损伤相关基因。本文就现阶段TMEM43基因与听力损伤的关系展开综述,分析TMEM43在耳发育与声传导方面的作用,探讨TMEM43基因变异对听力损伤产生的影响,以期为TMEM43后续研究和精准医疗提供新思路。
Transmembrane proteins (TMEM) are a type of membrane protein. Most proteins in this family are located in the phospholipid bilayer of the cell membrane, while a smaller portion is found in the membranes of cellular organelles. Transmembrane protein 43 (TMEM43) is a member of the TMEM protein family and is encoded by the TMEM43 gene. This protein consists of 400 amino acids and has 4 transmembrane domains and 1 membrane-associated domain. TMEM43 is localized to various biological membranes within the cell, such as the cell membrane and nuclear membrane, where it forms transmembrane channels for various ions. Additionally, TMEM43 is expressed in many species, showing high genetic similarity, especially with the four transmembrane domains being highly conserved. Current studies on the TMEM43 gene are still in its early stages, mainly focusing on its association with arrhythmogenic right ventricular cardiomyopathy (ARVC) and cancer. However, recent studies suggest that pathogenic mutations in TMEM43 may cause auditory neuropathy spectrum disorder (ANSD). Patients with TMEM43 p.Ser372Ter exhibited late-onset progressive ANSD. Impact of TMEM43 pathogenic mutations on individual hearing was likely mediated through effects on gap junction (GJ) structures on glia-like supporting cells (GLS), cell membranes. The TMEM43 p.Arg372Ter pathogenic mutation primarily affected the structure and function of TMEM43 protein, leading to premature termination of protein translation and the production of a truncated protein. Abnormal TMEM43 protein significantly reduced K+ influx in GLS cells, disrupting the endolymphatic K+ circulation and cochlear microenvironment homeostasis. When K+ circulation was obstructed, the endocochlear potential (EP) became abnormal, impairing the physiological function of hair cells and potentially leading to hearing impairment. However, it is important to note that studies on the mechanism is limited, and more experimental evidence is needed to confirm this hypothesis. Currently, there is a significant gap in research on TMEM43 and hearing loss, with many issues remaining unresolved. While TMEM43 has been studied in relation to hearing loss in humans, zebrafish, mice, and rats, the research is still preliminary. Detailed investigations into the molecular pathogenic mechanisms, the impact of mutations on hearing damage, and related therapeutic strategies are needed. Additionally, as a newly identified hearing loss-related gene, the mutation frequency and incidence of hearing disorders associated with TMEM43 have not been effectively quantified. For example, the ClinVar database listed 829 mutation sites for the TMEM43 gene, with only three mutations related to auditory neuropathy: c.605A>T (p.Asn202Ile), c.889T>A (p.Phe297Ile), and c.1114C>T (p.Arg372Ter). Aside from the aforementioned TMEM43 c.1114C>T (p.Arg372Ter) mutation observed in patients, the other two mutations were experimentally induced and have not been found in patients. Consequently, these mutations have been classified as unknown significance. We reviewed the current understanding of TMEM43 and hearing loss, analyzed its role in ear development and sound conduction, and explored the impact of TMEM43 gene variations on hearing loss, aiming to provide new insights for future research and precision medicine related to TMEM43.
崔荣洁,李云龙.TMEM43基因与听力损伤相关研究现状[J].生物化学与生物物理进展,2025,52(2):269-278
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