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秀丽隐杆线虫中的神经元再生需要兰尼碱受体通道进行亚细胞钙释放,并且可以通过光遗传学刺激得到增强。

Neuronal regeneration in C. elegans requires subcellular calcium release by ryanodine receptor channels and can be enhanced by optogenetic stimulation.

作者信息

Sun Lin, Shay James, McLoed Melissa, Roodhouse Kevin, Chung Samuel H, Clark Christopher M, Pirri Jennifer K, Alkema Mark J, Gabel Christopher V

机构信息

Department of Physiology and Biophysics, Photonics Center, Boston University School of Medicine, Boston, Massachusetts 02118.

Department of Pharmacology and Experimental Therapeutics, Boston University School of Medicine, Boston, Massachusetts 02118, and.

出版信息

J Neurosci. 2014 Nov 26;34(48):15947-56. doi: 10.1523/JNEUROSCI.4238-13.2014.

Abstract

Regulated calcium signals play conserved instructive roles in neuronal repair, but how localized calcium stores are differentially mobilized, or might be directly manipulated, to stimulate regeneration within native contexts is poorly understood. We find here that localized calcium release from the endoplasmic reticulum via ryanodine receptor (RyR) channels is critical in stimulating initial regeneration following traumatic cellular damage in vivo. Using laser axotomy of single neurons in Caenorhabditis elegans, we find that mutation of unc-68/RyR greatly impedes both outgrowth and guidance of the regenerating neuron. Performing extended in vivo calcium imaging, we measure subcellular calcium signals within the immediate vicinity of the regenerating axon end that are sustained for hours following axotomy and completely eliminated within unc-68/RyR mutants. Finally, using a novel optogenetic approach to periodically photo-stimulate the axotomized neuron, we can enhance its regeneration. The enhanced outgrowth depends on both amplitude and temporal pattern of excitation and can be blocked by disruption of UNC-68/RyR. This demonstrates the exciting potential of emerging optogenetic technology to beneficially manipulate cell physiology in the context of neuronal regeneration and indicates a link to the underlying cellular calcium signal. Taken as a whole, our findings define a specific localized calcium signal mediated by RyR channel activity that stimulates regenerative outgrowth, which may be dynamically manipulated for beneficial neurotherapeutic effects.

摘要

受调控的钙信号在神经元修复中发挥着保守的指导作用,但在天然环境中,局部钙库如何被差异性动员,或者是否可以直接被操纵以刺激再生,目前尚不清楚。我们在此发现,内质网通过兰尼碱受体(RyR)通道进行的局部钙释放,对于刺激体内创伤性细胞损伤后的初始再生至关重要。利用秀丽隐杆线虫单个神经元的激光轴突切断术,我们发现unc-68/RyR的突变极大地阻碍了再生神经元的生长和导向。通过进行长时间的体内钙成像,我们测量了再生轴突末端紧邻区域内的亚细胞钙信号,这些信号在轴突切断后持续数小时,在unc-68/RyR突变体中则完全消失。最后,我们使用一种新颖的光遗传学方法定期对轴突切断的神经元进行光刺激,能够增强其再生能力。增强的生长依赖于激发的幅度和时间模式,并且可以被UNC-68/RyR的破坏所阻断。这证明了新兴的光遗传学技术在神经元再生背景下有益地操纵细胞生理学的令人兴奋的潜力,并表明与潜在的细胞钙信号存在联系。总体而言,我们的研究结果定义了一种由RyR通道活性介导的特定局部钙信号,该信号刺激再生生长,可能可以通过动态操纵来产生有益的神经治疗效果。

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