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首页> 外文期刊>Human Molecular Genetics >Methionine sulfoxide reductase B3 deficiency causes hearing loss due to stereocilia degeneration and apoptotic cell death in cochlear hair cells
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Methionine sulfoxide reductase B3 deficiency causes hearing loss due to stereocilia degeneration and apoptotic cell death in cochlear hair cells

机译:甲硫氨酸亚砜还原酶B3缺乏会导致由于耳蜗毛细胞中的纤毛变性和凋亡性细胞死亡而导致听力下降

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Methionine sulfoxide reductase B3 (MsrB3) is a protein repair enzyme that specifically reduces methionine-R-sulfoxide to methionine. A recent genetic study showed that the MSRB3 gene is associated with autosomal recessive hearing loss in human deafness DFNB74. However, the precise role of MSRB3 in the auditory system and the pathogenesis of hearing loss have not yet been determined. This work is the first to generate MsrB3 knockout mice to elucidate the possible pathological mechanisms of hearing loss observed in DFNB74 patients. We found that homozygous MsrB3-/- mice were profoundly deaf and had largely unaffected vestibular function, whereas heterozygous MsrB3+/- mice exhibited normal hearing similar to that of wild-type mice. The MsrB3 protein is expressed in the sensory epithelia of the cochlear and vestibular tissues, beginning at E15.5 and E13.5, respectively. Interestingly, MsrB3 is densely localized at the base of stereocilia on the apical surface of auditory hair cells. MsrB3 deficiency led to progressive degeneration of stereociliary bundles starting at P8, followed by a loss of hair cells, resulting in profound deafness in MsrB3-/- mice. The hair cell loss appeared to be mediated by apoptotic cell death, which was measured using TUNEL and caspase 3 immunocytochemistry. Taken together, our data suggest that MsrB3 plays an essential role in maintaining the integrity of hair cells, possibly explaining the pathogenesis of DFNB74 deafness in humans caused by MSRB3 deficiency.
机译:蛋氨酸亚砜还原酶B3(MsrB3)是一种蛋白质修复酶,可将蛋氨酸-R-亚砜特异性还原为蛋氨酸。最近的一项遗传研究表明,MSRB3基因与人耳聋DFNB74的常染色体隐性遗传性听力损失有关。但是,尚未确定MSRB3在听觉系统中的确切作用和听力损失的发病机理。这项工作是首次产生MsrB3基因敲除小鼠,以阐明在DFNB74患者中观察到的听力丧失的可能病理机制。我们发现,纯合子MsrB3-/-小鼠严重失聪,前庭功能未受影响,而杂合子MsrB3 +/-小鼠表现出与野生型小鼠相似的正常听力。 MsrB3蛋白在耳蜗和前庭组织的感觉上皮中表达,分别从E15.5和E13.5开始。有趣的是,MsrB3密集地位于听毛细胞根尖表面的立体纤毛基部。 MsrB3缺乏症导致从P8开始的立体纤毛束逐渐退化,接着是毛细胞丢失,导致MsrB3-/-小鼠严重耳聋。毛细胞丢失似乎是由凋亡细胞死亡介导的,这是使用TUNEL和caspase 3免疫细胞化学法测量的。综上所述,我们的数据表明MsrB3在维持毛细胞的完整性中起着至关重要的作用,可能解释了MSRB3缺乏引起的DFNB74失聪的发病机理。

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