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Regulation of neuronal gap junctions turnover by LNX-mediated ubiquitination of the neuronal gap junction protein connexin36

Regulation of neuronal gap junctions turnover by LNX-mediated ubiquitination of the neuronal gap junction protein connexin36
LNX 介导的神经元间隙连接蛋白 connexin36 泛素化对神经元间隙连接周转的调节
批准号:
68-2009
负责人:
Nagy, James
金额:
$2.33万
依托单位:
依托单位国家:
加拿大
项目类别:
Discovery Grants Program - Individual
财政年份:
2014
资助国家:
加拿大
项目状态:
已结题
起止时间:
2014-01-01 至 2015-12-31

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中文摘要
翻译
一种叫做连接蛋白的蛋白质家族在细胞质膜之间的接触处形成通道,允许离子和小分子在细胞间流动。这些通道聚集形成称为间隙连接的结构,在身体许多器官的广泛细胞功能中起着至关重要的作用。当可电兴奋的细胞(包括大脑中的神经元,这些连接是由连接组成的)之间出现间隙连接时,它们就形成了所谓的电突触。与化学突触不同,电突触介导神经元之间的直接电通信。尽管长期以来人们一直认为高等动物中很少存在电突触,但最近的研究揭示了形成这些突触的间隙连接在哺乳动物大脑许多区域的普遍性和功能重要性。由于电突触在大脑认知功能中起着至关重要的作用,人们很容易想象这些突触的功能障碍可能会导致精神障碍。纳吉小组的研究重点是获取生物化学过程的知识,这些过程控制着神经元间隙连接的形成和维持,并调节它们传输电信号的能力。这包括旨在识别与神经元间隙连接物理相关的蛋白质的研究,并阐明其中一些蛋白质有助于间隙连接的组装和拆卸的机制。其中一种蛋白质被称为LNX1, Nagy的研究小组认为它可能有助于从神经元间隙连接中移除连接蛋白36。他们设计了一些策略来验证这种想法,即这种去除是通过LNX1与connexin36的物理相互作用发生的,然后是connexin36结构的修改,导致这种连接蛋白的分解或降解。这项工作将提供对控制电突触操作的基本生化机制的理解,这将允许考虑这些突触可能发生故障导致疾病的方式。
英文摘要
A family of proteins called connexins form channels at contacts between cellular plasma membranes and allow the flow of ions and small molecules from cell to cell. These channels aggregate to form structures called gap junctions, which play essential roles in a broad range of cellular functions in many organs of the body. When gap junctions occur between electrically excitable cells, including neurons in the brain where these junctions are composed of connexin36, they form what are called electrical synapses. Unlike chemical synapses, electrical synapses mediate direct electrical communication between neurons. Although it was thought for a long time that very few electrical synapses exist in higher animals, recent studies have revealed both the prevalence and functional importance of gap junctions forming these synapses in many regions of mammalian brain. Because it is now accepted that electrical synapses play a crucial role in brain cognitive functions, it is easy to imagine that malfunction of these synapses could contribute to mental disorders. Research in Nagy's group is focused on acquiring knowledge about biochemical processes that control the formation and maintenance of neuronal gap junctions, and that regulate their capacity to transmit electrical signals. This includes studies aimed to identify proteins that are physically associated with neuronal gap junctions and to elucidate mechanisms whereby some of these proteins contribute to the assembly and disassembly of gap junctions. One protein of particular focus is called LNX1, which Nagy's group believes may contribute to the removal of connexin36 from neuronal gap junctions. They have devised strategies to test the idea that this removal occurs by physical interaction of LNX1 with connexin36, followed by modification of connexin36 structure, leading to the breakdown or degradation of this connexin. This work will provide understanding of the basic biochemical machinery that governs the operation of electrical synapses, which will allow considerations of ways these synapses could malfunction to cause diseases.
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