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鱼类内耳和侧线的化学性耳毒性

Chemical Ototoxicity of the Fish Inner Ear and Lateral Line.

作者信息

Coffin Allison B, Ramcharitar John

机构信息

Department of Integrative Physiology and Neuroscience, Washington State University, Vancouver, WA, USA.

Department of Biology, St. Mary's College of Maryland, St Marys City, MD, USA.

出版信息

Adv Exp Med Biol. 2016;877:419-37. doi: 10.1007/978-3-319-21059-9_18.

Abstract

Hair cell-driven mechanosensory systems are crucial for successful execution of a number of behaviors in fishes, and have emerged as good models for exploring questions relevant to human hearing. This review focuses on ototoxic effects in the inner ear and lateral line system of fishes. We specifically examine studies where chemical ototoxins such as aminoglycoside antibiotics have been employed as tools to disable the lateral line. Lateral line ablation results in alterations to feeding behavior and orientation to water current in a variety of species. However, neither behavior is abolished in the presence of additional sensory cues, supporting the hypothesis that many fish behaviors are driven by multisensory integration. Within biomedical research, the larval zebrafish lateral line has become an important model system for understanding signaling mechanisms that contribute to hair cell death and for developing novel pharmacological therapies that protect hair cells from ototoxic damage. Furthermore, given that fishes robustly regenerate damaged hair cells, ototoxin studies in fishes have broadened our understanding of the molecular and genetic events in an innately regenerative system, offering potential targets for mammalian hair cell regeneration. Collectively, studies of fish mechanosensory systems have yielded insight into fish behavior and in mechanisms of hair cell death, protection, and regeneration.

摘要

毛细胞驱动的机械感觉系统对于鱼类成功执行多种行为至关重要,并且已成为探索与人类听力相关问题的良好模型。本综述聚焦于鱼类内耳和侧线系统中的耳毒性效应。我们特别考察了使用氨基糖苷类抗生素等化学耳毒素作为工具使侧线失能的研究。侧线切除导致多种鱼类的摄食行为和水流定向发生改变。然而,在存在额外感觉线索的情况下,这两种行为都不会消失,这支持了许多鱼类行为是由多感觉整合驱动的假说。在生物医学研究中,斑马鱼幼体侧线已成为理解导致毛细胞死亡的信号传导机制以及开发保护毛细胞免受耳毒性损伤的新型药物疗法的重要模型系统。此外,鉴于鱼类能够强有力地再生受损的毛细胞,鱼类耳毒素研究拓宽了我们对天生具有再生能力系统中分子和遗传事件的理解,为哺乳动物毛细胞再生提供了潜在靶点。总体而言,对鱼类机械感觉系统的研究已使我们深入了解鱼类行为以及毛细胞死亡、保护和再生机制。

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