Presynaptogenesis and Intracellular Transport in Hair Cells Junior Research Group, Institute for Auditory Neuroscience and InnerEarLab, University Medical Center Goettingen, 37075 Goettingen, Germany.
Göttingen Graduate Center for Neurosciences, Biophysics and Molecular Biosciences, 37075 Goettingen, Germany.
Int J Mol Sci. 2020 Nov 19;21(22):8758. doi: 10.3390/ijms21228758.
In the mammalian cochlea, specialized ribbon-type synapses between sensory inner hair cells (IHCs) and postsynaptic spiral ganglion neurons ensure the temporal precision and indefatigability of synaptic sound encoding. These high-through-put synapses are presynaptically characterized by an electron-dense projection-the synaptic ribbon-which provides structural scaffolding and tethers a large pool of synaptic vesicles. While advances have been made in recent years in deciphering the molecular anatomy and function of these specialized active zones, the developmental assembly of this presynaptic interaction hub remains largely elusive. In this review, we discuss the dynamic nature of IHC (pre-) synaptogenesis and highlight molecular key players as well as the transport pathways underlying this process. Since developmental assembly appears to be a highly dynamic process, we further ask if this structural plasticity might be maintained into adulthood, how this may influence the functional properties of a given IHC synapse and how such plasticity could be regulated on the molecular level. To do so, we take a closer look at other ribbon-bearing systems, such as retinal photoreceptors and pinealocytes and aim to infer conserved mechanisms that may mediate these phenomena.
在哺乳动物耳蜗中,感觉内毛细胞 (IHC) 和突触后螺旋神经节神经元之间的专门带状突触确保了突触声编码的时间精度和耐久性。这些高吞吐量突触在突触前被电子致密的突起——突触带——所特征化,它提供了结构支架,并固定了大量的突触小泡。虽然近年来在破译这些特化的活性区的分子解剖结构和功能方面取得了进展,但这个突触前相互作用中心的发育组装在很大程度上仍然难以捉摸。在这篇综述中,我们讨论了 IHC(前)突触发生的动态性质,并强调了分子关键参与者以及该过程的运输途径。由于发育组装似乎是一个高度动态的过程,我们进一步询问这种结构可塑性是否可以维持到成年期,它如何影响给定的 IHC 突触的功能特性,以及这种可塑性如何在分子水平上被调节。为此,我们仔细研究了其他带有带状结构的系统,如视网膜光感受器和松果体细胞,并试图推断可能介导这些现象的保守机制。