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首页> 外文期刊>Biochimica et biophysica acta. Molecular cell research >Sphingosine 1-phosphate-mediated activation of ezrin-radixin-moesin proteins contributes to cytoskeletal remodeling and changes of membrane properties in epithelial otic vesicle progenitors
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Sphingosine 1-phosphate-mediated activation of ezrin-radixin-moesin proteins contributes to cytoskeletal remodeling and changes of membrane properties in epithelial otic vesicle progenitors

机译:鞘氨醇1-磷酸介导的Ezrin-radixin-Moesin蛋白的活化有助于上皮耳囊泡祖细胞囊泡中的细胞骨骼重塑和膜特性的变化

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摘要

Hearing loss is among the most prevalent sensory impairments in humans. Cochlear implantable devices represent the current therapies for hearing loss but have various shortcomings. ERM (ezrin- radixin -moesin) are a family of adaptor proteins that link plasma membrane with actin cytoskeleton, playing a crucial role in cell morphology and in the formation of membrane protrusions. Recently, bioactive sphingolipids have emerged as regulators of ERM proteins. Sphingosine 1-phosphate (S1P) is a pleiotropic sphingolipid which regulates fundamental cellular functions such as proliferation, survival, migration as well as processes such as development and inflammation mainly via ligation to its specific receptors S1PR (S1P(1-5)). Experimental findings demonstrate a key role for S1P signaling axis in the maintenance of auditory function. Preservation of cellular junctions is a fundamental function both for S1P and ERM proteins, crucial for the maintenance of cochlear integrity. In the present work, SW was found to activate ERM in a S1P(2)-dependent manner in murine auditory epithelial progenitors US/VOT-E36. S1P-induced ERM activation potently contributed to actin cytoskeletal remodeling and to the appearance of ionic currents and membrane passive properties changes typical of more differentiated cells. Moreover, PKC and Akt activation was found to mediate S1P-induced ERM phosphorylation. The obtained findings contribute to demonstrate the role of S1P signaling pathway in inner ear biology and to disclose potential innovative therapeutical approaches in the field of hearing loss prevention and treatment.
机译:听力损失是人类最普遍的感官障碍之一。耳蜗植入装置代表听力损失的当前疗法,但具有各种缺点。 ERM(EZRIN- adrixin -Moesin)是一种适配器蛋白质,其与肌动蛋白细胞骨架链接血浆膜,在细胞形态和膜突起中发挥关键作用。最近,生物活性鞘脂已成为ERM蛋白的调节剂。鞘氨氨酸1-磷酸(S1P)是一种抗磷酸鞘脂,其调节基本细胞功能,例如诸如发育和炎症的过程,主要通过连接到其特异性受体S1PR(S1P(1-5))。实验结果表明S1P信号轴在维护听觉功能中的关键作用。蜂窝连接的保存是S1P和ERM蛋白的基本功能,对于维持耳蜗完整性至关重要。在本作本作中,发现SW以S1P(2)依赖性方式激活ERM,在鼠听觉上皮祖细胞US / VOT-E36中。 S1P诱导的ERM活化有助于肌蛋白细胞骨架重塑和离子电流的外观和膜被动性能的更典型的更分化细胞。此外,发现PKC和AKT活化介导S1P诱导的ERM磷酸化。所得调查结果有助于证明S1P信号通路在内耳生物学中的作用,并在听力丧失预防和治疗领域披露潜在的创新治疗方法。

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