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E3 泛素连接酶 RNF13 参与空间学习和 SNARE 复合物的组装。

E3 ubiquitin ligase RNF13 involves spatial learning and assembly of the SNARE complex.

机构信息

Key Laboratory of Medical Molecular Biology, Institute of Basic Medical Sciences, Chinese Academy of Medical Sciences, School of Basic Medicine, Peking Union Medical College, Tsinghua University, Beijing, 100005, China.

出版信息

Cell Mol Life Sci. 2013 Jan;70(1):153-65. doi: 10.1007/s00018-012-1103-5. Epub 2012 Aug 14.

Abstract

Changes in the structure and number of synapses modulate learning, memory and cognitive disorders. Ubiquitin-mediated protein modification is a key mechanism for regulating synaptic activity, though the precise control of this process remains poorly understood. RING finger protein 13 (RNF13) is a recently identified E3 ubiquitin ligase, and its in vivo function remains completely unknown. We show here that genetic deletion of RNF13 in mice leads to a significant deficit in spatial learning as determined by the Morris water maze test and Y-maze learning test. At the ultrastructral level, the synaptic vesicle density was decreased and the area of the active zone was increased at hippocampal synapses of RNF13-null mice compared with those of wild-type littermates. We found no change in the levels of SNARE (soluble N-ethylmaleimide-sensitive factor-attachment protein receptor) complex proteins in the hippocampus of RNF13-null mice, but impaired SNARE complex assembly. RNF13 directly interacted with snapin, a SNAP-25-interacting protein. Interestingly, snapin was ubiquitinated by RNF13 via the lysine-29 conjugated polyubiquitin chain, which in turn promoted the association of snapin with SNAP-25. Consistently, we found an attenuated interaction between snapin and SNAP-25 in the RNF13-null mice. Therefore, these results suggest that RNF13 is involved in the regulation of the SNARE complex, which thereby controls synaptic function.

摘要

突触结构和数量的变化调节学习、记忆和认知障碍。泛素介导的蛋白质修饰是调节突触活动的关键机制,但这一过程的精确控制仍知之甚少。RING 指蛋白 13(RNF13)是一种新发现的 E3 泛素连接酶,其体内功能仍完全未知。我们在这里表明,RNF13 在小鼠中的基因缺失导致空间学习能力显著缺陷,这可以通过 Morris 水迷宫测试和 Y 迷宫学习测试来确定。在超微结构水平上,与野生型同窝仔相比,RNF13 缺失型小鼠海马突触的突触小泡密度降低,活性区面积增大。我们在 RNF13 缺失型小鼠的海马体中没有发现 SNARE(可溶性 N-乙基马来酰亚胺敏感因子附着蛋白受体)复合物蛋白水平的变化,但 SNARE 复合物组装受损。RNF13 与 snapin 直接相互作用,后者是一种与 SNAP-25 相互作用的蛋白。有趣的是,snapin 被 RNF13 通过赖氨酸-29 连接的多聚泛素链泛素化,这反过来又促进了 snapin 与 SNAP-25 的结合。一致地,我们发现 RNF13 缺失型小鼠中 snapin 与 SNAP-25 之间的相互作用减弱。因此,这些结果表明 RNF13 参与 SNARE 复合物的调节,从而控制突触功能。

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