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在毛细胞带状突触处平衡突触前释放和内吞膜回收。

Balancing presynaptic release and endocytic membrane retrieval at hair cell ribbon synapses.

机构信息

Synaptic Physiology of Mammalian Vestibular Hair Cells Group, Institute for Auditory Neuroscience and InnerEarLab, Auditory Neuroscience Group, Max Planck Institute of Experimental Medicine, University Medical Center Göttingen, Germany.

Presynaptogenesis and Intracellular Transport in Hair Cells Group, Institute for Auditory Neuroscience and InnerEarLab, Auditory Neuroscience Group, Max Planck Institute of Experimental Medicine, University Medical Center Göttingen, Germany.

出版信息

FEBS Lett. 2018 Nov;592(21):3633-3650. doi: 10.1002/1873-3468.13258. Epub 2018 Oct 9.

Abstract

The timely and reliable processing of auditory and vestibular information within the inner ear requires highly sophisticated sensory transduction pathways. On a cellular level, these demands are met by hair cells, which respond to sound waves - or alterations in body positioning - by releasing glutamate-filled synaptic vesicles (SVs) from their presynaptic active zones with unprecedented speed and exquisite temporal fidelity, thereby initiating the auditory and vestibular pathways. In order to achieve this, hair cells have developed anatomical and molecular specializations, such as the characteristic and name-giving 'synaptic ribbons' - presynaptically anchored dense bodies that tether SVs prior to release - as well as other unique or unconventional synaptic proteins. The tightly orchestrated interplay between these molecular components enables not only ultrafast exocytosis, but similarly rapid and efficient compensatory endocytosis. So far, the knowledge of how endocytosis operates at hair cell ribbon synapses is limited. In this Review, we summarize recent advances in our understanding of the SV cycle and molecular anatomy of hair cell ribbon synapses, with a focus on cochlear inner hair cells.

摘要

内耳中听觉和前庭信息的及时可靠处理需要高度复杂的感觉转导途径。在细胞水平上,这些要求是由毛细胞来满足的,毛细胞通过以空前的速度和精细的时间保真度从其突触前活跃区域释放充满谷氨酸的突触小泡 (SVs) 来响应声波或身体位置的变化,从而启动听觉和前庭途径。为了实现这一点,毛细胞已经发展出解剖学和分子特化,例如特征性和命名性的“突触带”——突触前锚定的致密体,在释放之前将 SVs 系紧——以及其他独特或非常规的突触蛋白。这些分子成分之间的紧密协调相互作用不仅使胞吐作用超快,而且同样使内吞作用快速而高效。到目前为止,关于内吞作用在内耳毛细胞带突触中如何发挥作用的知识还很有限。在这篇综述中,我们总结了对毛细胞带突触中 SV 循环和分子解剖结构的理解的最新进展,重点是耳蜗内毛细胞。

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