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基于连接蛋白的电突触中的长时程增强。

Long-term potentiation in an innexin-based electrical synapse.

机构信息

Department of Animal Physiology, University of Bayreuth, 95440, Bayreuth, Germany.

出版信息

Sci Rep. 2018 Aug 22;8(1):12579. doi: 10.1038/s41598-018-30966-w.

Abstract

Electrical synapses are formed by two unrelated gap junction protein families, the primordial innexins (invertebrates) or the connexins (vertebrates). Although molecularly different, innexin- and connexin-based electrical synapses are strikingly similar in their membrane topology. However, it remains unclear if this similarity extends also to more sophisticated functions such as long-term potentiation which is only known in connexin-based synapses. Here we show that this capacity is not unique to connexin-based synapses. Using a method that allowed us to quantitatively measure gap-junction conductance we provide the first and unequivocal evidence of long-term potentiation in an innexin-based electrical synapse. Our findings suggest that long-term potentiation is a property that has likely existed already in ancestral gap junctions. They therefore could provide a highly potent system to dissect shared molecular mechanisms of electrical synapse plasticity.

摘要

电突触由两个不相关的缝隙连接蛋白家族形成,原始连接蛋白(无脊椎动物)或连接蛋白(脊椎动物)。尽管分子上不同,但基于连接蛋白和连接蛋白的电突触在其膜拓扑结构上非常相似。然而,目前尚不清楚这种相似性是否也扩展到更复杂的功能,如仅在连接蛋白突触中才知道的长时程增强。在这里,我们表明这种能力并非连接蛋白突触所特有。我们使用一种允许我们定量测量缝隙连接电导的方法,提供了第一个也是明确的证据,证明基于连接蛋白的电突触存在长时程增强。我们的研究结果表明,长时程增强是一种可能已经存在于祖先缝隙连接中的特性。因此,它们可以提供一个高度有效的系统来剖析电突触可塑性的共享分子机制。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/c2b4/6105662/dcca0d7b4e95/41598_2018_30966_Fig1_HTML.jpg

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