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Novel Role of the Mitochondrial Protein Fus1 in Protection from Premature Hearing Loss via Regulation of Oxidative Stress and Nutrient and Energy Sensing Pathways in the Inner Ear

机译:线粒体蛋白Fus1在通过调节内耳的氧化应激以及营养和能量感应途径防止过早听力丧失中的新作用

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摘要

>Aims: Acquired hearing loss is a worldwide epidemic that affects all ages. It is multifactorial in etiology with poorly characterized molecular mechanisms. Mitochondria are critical components in hearing. Here, we aimed to identify the mechanisms of mitochondria-dependent hearing loss using Fus1 KO mice, our novel model of mitochondrial dysfunction/oxidative stress.>Results: Using auditory brainstem responses (ABRs), we characterized the Fus1 KO mouse as a novel, clinically relevant model of age-related hearing loss (ARHL) of metabolic etiology. We demonstrated early decline of the endocochlear potential (EP) that may occur due to severe mitochondrial and vascular pathologies in the Fus1 KO cochlear stria vascularis. We showed that pathological alterations in antioxidant (AO) and nutrient and energy sensing pathways (mTOR and PTEN/AKT) occur in cochleae of young Fus1 KO mice before major hearing loss. Importantly, short-term AO treatment corrected pathological molecular changes, while longer AO treatment restored EP, improved ABR parameters, restored mitochondrial structure, and delayed the development of hearing loss in the aging mouse.>Innovation: Currently, no molecular mechanisms linked to metabolic ARHL have been identified. We established pathological and molecular mechanisms that link the disease to mitochondrial dysfunction and oxidative stress.>Conclusion: Since chronic mitochondrial dysfunction is common in many patients, it could lead to developing hearing loss that can be alleviated/rescued by AO treatment. Our study creates a framework for clinical trials and introduces the Fus1 KO model as a powerful platform for developing novel therapeutic strategies to prevent/delay hearing loss associated with mitochondrial dysfunction. Antioxid. Redox Signal. 27, 489–509.
机译:>目标:后天性听力损失是一种影响所有年龄段的全球流行病。在病因学上它是多因素的,其分子机制的特征较差。线粒体是听力的关键组成部分。在这里,我们旨在确定使用我们的新型线粒体功能障碍/氧化应激模型Fus1 KO小鼠的线粒体依赖性听力损失的机制。>结果:我们使用听觉脑干反应(ABR)对Fus1进行了表征KO小鼠是一种新的,与年龄相关的听力损失(ARHL)代谢病因的临床相关模型。我们证明了由于Fus1 KO耳蜗纹状体血管的严重线粒体和血管病变而可能导致的耳蜗内电位(EP)的早期下降。我们显示,抗Fusion(AO)以及营养和能量感应途径(mTOR和PTEN / AKT)的病理改变发生在年轻的Fus1 KO小鼠的耳蜗中,严重的听力下降之前。重要的是,短期AO治疗可纠正病理分子变化,而更长的AO治疗可恢复衰老小鼠的EP,改善ABR参数,恢复线粒体结构并延缓听力丧失的发展。>创新:尚未发现与代谢性ARHL相关的分子机制。我们建立了将疾病与线粒体功能障碍和氧化应激联系起来的病理和分子机制。>结论:由于慢性线粒体功能障碍在许多患者中很常见,因此可能导致听力下降,可通过缓解/缓解AO治疗。我们的研究为临床试验创建了一个框架,并将Fus1 KO模型作为开发新的治疗策略来预防/延缓与线粒体功能障碍相关的听力损失的有力平台。抗氧化。氧化还原信号。 27,489–509。

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