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果蝇Cdh1(Rap/Fzr)是后期促进复合体/细胞周期体(APC/C)的一个调节亚基,对突触形态、突触传递和运动是必需的。

Drosophila-Cdh1 (Rap/Fzr) a regulatory subunit of APC/C is required for synaptic morphology, synaptic transmission and locomotion.

作者信息

Wise Alexandria, Schatoff Emma, Flores Julian, Hua Shao-Ying, Ueda Atsushi, Wu Chun-Fang, Venkatesh Tadmiri

机构信息

Department of Biology, City College of New York, and The Graduate Center of CUNY, New York, NY 10031, United States; Department of Pathology and Cell Biology, Columbia University, 630 West 168th Street, New York, NY 10032, United States.

出版信息

Int J Dev Neurosci. 2013 Nov;31(7):624-33. doi: 10.1016/j.ijdevneu.2013.07.002. Epub 2013 Aug 7.

Abstract

The assembly of functional synapses requires the orchestration of the synthesis and degradation of a multitude of proteins. Protein degradation and modification by the conserved ubiquitination pathway has emerged as a key cellular regulatory mechanism during nervous system development and function (Kwabe and Brose, 2011). The anaphase promoting complex/cyclosome (APC/C) is a multi-subunit ubiquitin ligase complex primarily characterized for its role in the regulation of mitosis (Peters, 2002). In recent years, a role for APC/C in nervous system development and function has been rapidly emerging (Stegmuller and Bonni, 2005; Li et al., 2008). In the mammalian central nervous system the activator subunit, APC/C-Cdh1, has been shown to be a regulator of axon growth and dendrite morphogenesis (Konishi et al., 2004). In the Drosophila peripheral nervous system (PNS), APC2, a ligase subunit of the APC/C complex has been shown to regulate synaptic bouton size and activity (van Roessel et al., 2004). To investigate the role of APC/C-Cdh1 at the synapse we examined loss-of-function mutants of Rap/Fzr (Retina aberrant in pattern/Fizzy related), a Drosophila homolog of the mammalian Cdh1 during the development of the larval neuromuscular junction in Drosophila. Our cell biological, ultrastructural, electrophysiological, and behavioral data showed that rap/fzr loss-of-function mutations lead to changes in synaptic structure and function as well as locomotion defects. Data presented here show changes in size and morphology of synaptic boutons, and, muscle tissue organization. Electrophysiological experiments show that loss-of-function mutants exhibit increased frequency of spontaneous miniature synaptic potentials, indicating a higher rate of spontaneous synaptic vesicle fusion events. In addition, larval locomotion and peristaltic movement were also impaired. These findings suggest a role for Drosophila APC/C-Cdh1 mediated ubiquitination in regulating synaptic morphology, function and integrity of muscle structure in the peripheral nervous system.

摘要

功能性突触的组装需要多种蛋白质的合成与降解相互协调。保守的泛素化途径介导的蛋白质降解和修饰已成为神经系统发育和功能过程中的关键细胞调节机制(夸贝和布罗斯,2011年)。后期促进复合物/细胞周期体(APC/C)是一种多亚基泛素连接酶复合物,主要因其在有丝分裂调控中的作用而被熟知(彼得斯,2002年)。近年来,APC/C在神经系统发育和功能中的作用迅速显现(施泰格米勒和博尼,2005年;李等人,2008年)。在哺乳动物中枢神经系统中,激活亚基APC/C-Cdh1已被证明是轴突生长和树突形态发生的调节因子(小西等人,2004年)。在果蝇外周神经系统(PNS)中,APC/C复合物的连接酶亚基APC2已被证明可调节突触小体的大小和活性(范·罗塞尔等人,2004年)。为了研究APC/C-Cdh1在突触中的作用,我们在果蝇幼虫神经肌肉接头发育过程中,检测了Rap/Fzr(视网膜模式异常/模糊相关)的功能缺失突变体,Rap/Fzr是哺乳动物Cdh1在果蝇中的同源物。我们的细胞生物学、超微结构、电生理和行为学数据表明,rap/fzr功能缺失突变会导致突触结构和功能的改变以及运动缺陷。此处呈现的数据显示了突触小体的大小和形态以及肌肉组织结构的变化。电生理实验表明,功能缺失突变体表现出自发性微小突触电位频率增加,表明自发性突触小泡融合事件的发生率更高。此外,幼虫的运动和蠕动也受到损害。这些发现表明,果蝇APC/C-Cdh1介导的泛素化在调节外周神经系统中突触形态、功能和肌肉结构完整性方面发挥作用。

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