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本文引用的文献

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Cadherin 23 and protocadherin 15 interact to form tip-link filaments in sensory hair cells.钙黏蛋白23和原钙黏蛋白15相互作用,在感觉毛细胞中形成顶连接丝。
Nature. 2007 Sep 6;449(7158):87-91. doi: 10.1038/nature06091.
2
Dynamical control of the shape and size of stereocilia and microvilli.静纤毛和微绒毛形状与大小的动态控制。
Biophys J. 2007 Aug 15;93(4):1124-33. doi: 10.1529/biophysj.106.098038. Epub 2007 May 25.
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Kinetic mechanism of human myosin IIIA.人类肌球蛋白IIIA的动力学机制。
J Biol Chem. 2007 Jan 5;282(1):216-31. doi: 10.1074/jbc.M605964200. Epub 2006 Oct 29.
4
A new compartment at stereocilia tips defined by spatial and temporal patterns of myosin IIIa expression.由肌球蛋白IIIa表达的时空模式定义的静纤毛尖端新间隔。
J Neurosci. 2006 Oct 4;26(40):10243-52. doi: 10.1523/JNEUROSCI.2812-06.2006.
5
Human myosin III is a motor having an extremely high affinity for actin.人类肌球蛋白III是一种对肌动蛋白具有极高亲和力的分子马达。
J Biol Chem. 2006 Dec 8;281(49):37291-301. doi: 10.1074/jbc.M603823200. Epub 2006 Oct 1.
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Auditory mechanotransduction in the absence of functional myosin-XVa.缺乏功能性肌球蛋白XV a时的听觉机械转导
J Physiol. 2006 Nov 1;576(Pt 3):801-8. doi: 10.1113/jphysiol.2006.118547. Epub 2006 Sep 14.
7
A morphogenetic wave of p27Kip1 transcription directs cell cycle exit during organ of Corti development.p27Kip1转录的形态发生波在柯蒂氏器发育过程中引导细胞周期退出。
Development. 2006 Aug;133(15):2817-26. doi: 10.1242/dev.02453. Epub 2006 Jun 21.
8
Subcellular translocation of the eGFP-tagged TRPL channel in Drosophila photoreceptors requires activation of the phototransduction cascade.在果蝇光感受器中,eGFP标记的TRPL通道的亚细胞易位需要光转导级联反应的激活。
J Cell Sci. 2006 Jun 15;119(Pt 12):2592-603. doi: 10.1242/jcs.02986. Epub 2006 May 30.
9
Ca2+ changes the force sensitivity of the hair-cell transduction channel.钙离子改变毛细胞转导通道的力敏感性。
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10
The transduction channel filter in auditory hair cells.听觉毛细胞中的转导通道滤波器。
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大鼠外毛细胞机械转导的逐步形态学和功能成熟

Stepwise morphological and functional maturation of mechanotransduction in rat outer hair cells.

作者信息

Waguespack Jessica, Salles Felipe T, Kachar Bechara, Ricci Anthony J

机构信息

Neuroscience Center, Louisiana State Health Sciences Center, New Orleans, Louisiana 70112, USA.

出版信息

J Neurosci. 2007 Dec 12;27(50):13890-902. doi: 10.1523/JNEUROSCI.2159-07.2007.

DOI:10.1523/JNEUROSCI.2159-07.2007
PMID:18077701
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC6673611/
Abstract

Inner ear mechanosensory hair cells convert mechanical vibrations into electrical signals via the coordinated interaction of multiple proteins precisely positioned within the sensory hair bundle. Present work identifies the time course for the acquisition and maturation of mechanoelectric transduction (MET) in rat cochlea outer hair cells maintained in organotypic cultures. A spatiotemporal developmental progression was observed morphologically and functionally with basal cochlea maturation preceding apical cochlea by 2-3 d in all measured properties. The fraction of mechanosensitive cells increased rapidly, with a midpoint at postnatal day 0 for basal cells, and correlated with myosin IIIa immunoreactivity. MET current magnitude increased over several days. Adaptation lagged the onset of transduction by a day and matured more slowly, overlapping but preceding the rise in myosin Ic immunoreactivity. Less than approximately 25% of myosin Ic expression was required for the mature adaptation response, suggesting multiple roles for this protein in hair bundle function. Directional sensitivity, lacking in immature responses, developed rapidly and correlated with the pruning of radial links and an increase in tenting of stereociliary tips. Morphological and electrophysiological data support a hypothesis in which key elements arrive independently at the site of MET, with a mature response occurring as membrane tension increases, likely by the increased tensioning of the tip link with the onset of adaptation. Organotypic cultures developed normal, tonotopically specific, MET response properties, suggesting that maturation was not influenced significantly by external factors such as innervation, endolymph, normal mechanical stimulation, or an intact organ of Corti.

摘要

内耳机械感觉毛细胞通过精确位于感觉毛束内的多种蛋白质的协同相互作用,将机械振动转化为电信号。目前的研究确定了在器官型培养中维持的大鼠耳蜗外毛细胞中机械电转导(MET)的获得和成熟的时间进程。在所有测量特性中,观察到形态和功能上的时空发育进程,基底耳蜗成熟比顶端耳蜗早2 - 3天。机械敏感细胞的比例迅速增加,基底细胞在出生后第0天达到中点,并且与肌球蛋白IIIa免疫反应性相关。MET电流幅度在数天内增加。适应比转导的开始滞后一天,并且成熟得更慢,与肌球蛋白Ic免疫反应性的上升重叠但先于其上升。成熟的适应反应需要的肌球蛋白Ic表达少于约25%,表明该蛋白在毛束功能中具有多种作用。不成熟反应中缺乏的方向敏感性迅速发展,并且与径向连接的修剪和静纤毛尖端的拉伸增加相关。形态学和电生理学数据支持一种假说,即关键元件独立到达MET位点,随着膜张力增加出现成熟反应,这可能是由于适应开始时尖端连接的张力增加。器官型培养物发展出正常的、具有音调定位特异性的MET反应特性,表明成熟并未受到诸如神经支配、内淋巴、正常机械刺激或完整的柯蒂氏器等外部因素的显著影响。