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Molecular and Functional Asymmetry at a Vertebrate Electrical Synapse

机译:脊椎动物电突触的分子和功能不对称性

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Electrical synapses are abundant in the vertebrate brain, but their functional and molecular complexities are still poorly understood. We report here that electrical synapses between auditory afferents and goldfish Mauthner cells are constructed by apposition of hemichannels formed by two homologs of mammalian connexin 36 (Cx36) and that, while Cx35 is restricted to presynaptic hemiplaques, Cx34.7 is restricted to postsynaptic hemiplaques, forming heterotypic junctions. This molecular asymmetry is associated with rectification of electrical transmission that may act to promote cooperativity between auditory afferents. Our data suggest that, in similarity to pre- and postsynaptic sites at chemical synapses, one side in electrical synapses should not necessarily be considered the mirror image of the other. While asymmetry based on the presence of two Cx36 homologs is restricted to teleost fish, it might also be based on differences in posttranslational modifications of individual connexins or in the complement of gap junction-associated proteins.
机译:电突触在脊椎动物的大脑中很丰富,但对其功能和分子的复杂性仍知之甚少。我们在这里报告说,听觉传入和金鱼Mauthner细胞之间的电突触是通过并置由哺乳动物连接蛋白36(Cx36)的两个同源物形成的半通道而构建的,而Cx35限于突触前半斑,Cx34.7限于突触后半斑,形成异型连接。这种分子不对称性与电传输的整流有关,该整流可以起到促进听觉传入之间的协作性的作用。我们的数据表明,与化学突触中的突触前和突触位点相似,电突触的一侧不一定被视为另一侧的镜像。虽然基于两个Cx36同源物的存在的不对称性仅限于硬骨鱼,但它也可能基于单个连接蛋白的翻译后修饰差异或与间隙连接相关的蛋白质的互补差异。

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