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Connexin-caused genetic diseases and corresponding mouse models.

机译:连接蛋白引起的遗传疾病和相应的小鼠模型。

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摘要

The human and mouse genomes contain 21 and 20 connexin genes, respectively. During the last 10-year period, genetic research on connexins has been stimulated by two parallel approaches: first, the characterization of genetic diseases that are caused by connexin mutations and, second, the generation and characterization of connexin knockout (null) mutated mice in which the coding region of nearly all connexin genes has been deleted. We summarize the current results of each of these two approaches. More recently, first results have been published in which connexin point mutations in human connexin genes were inserted at the corresponding position of the orthologous mouse gene. Under these conditions, the mutated connexin protein is expressed, in contrast to a connexin null mutation, and its interaction with other connexin isoforms or other connexin-binding proteins can be maintained. In this review, we discuss advantages and problems of such an approach and possible implications regarding the mechanism of the disease. The long-term goal is to understand the biologic function of each connexin isoform and the contribution of these proteins to the physiology of the corresponding organs in health and disease.
机译:人和小鼠基因组分别包含21和20个连接蛋白基因。在过去的10年中,通过两种平行的方法促进了对连接蛋白的遗传研究:第一,表征由连接蛋白突变引起的遗传疾病,第二,连接蛋白敲除(空)突变小鼠的产生和表征。几乎所有连接蛋白基因的编码区已被删除。我们总结了这两种方法的当前结果。最近,已经发表了第一个结果,其中人连接蛋白基因中的连接蛋白点突变被插入直系同源小鼠基因的相应位置。在这些条件下,与连接蛋白无效突变相比,突变的连接蛋白被表达,并且可以保持其与其他连接蛋白同工型或其他连接蛋白结合蛋白的相互作用。在这篇综述中,我们讨论了这种方法的优点和问题,以及对疾病机理的潜在影响。长期目标是了解每种连接蛋白同工型的生物学功能以及这些蛋白质对健康和疾病中相应器官生理的贡献。

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