Martin E Anne, Lasseigne Abagael M, Miller Adam C
Department of Biology, Institute of Neuroscience, University of Oregon, Eugene, OR, United States.
Front Neuroanat. 2020 Apr 15;14:12. doi: 10.3389/fnana.2020.00012. eCollection 2020.
In this review article, we will describe the recent advances made towards understanding the molecular and cell biological mechanisms of electrical synapse formation. New evidence indicates that electrical synapses, which are gap junctions between neurons, can have complex molecular compositions including protein asymmetries across joined cells, diverse morphological arrangements, and overlooked similarities with other junctions, all of which indicate new potential roles in neurodevelopmental disease. Aquatic organisms, and in particular the vertebrate zebrafish, have proven to be excellent models for elucidating the molecular mechanisms of electrical synapse formation. Zebrafish will serve as our main exemplar throughout this review and will be compared with other model organisms. We highlight the known cell biological processes that build neuronal gap junctions and compare these with the assemblies of adherens junctions, tight junctions, non-neuronal gap junctions, and chemical synapses to explore the unknown frontiers remaining in our understanding of the critical and ubiquitous electrical synapse.
在这篇综述文章中,我们将描述在理解电突触形成的分子和细胞生物学机制方面取得的最新进展。新证据表明,作为神经元之间间隙连接的电突触,可能具有复杂的分子组成,包括连接细胞间的蛋白质不对称性、多样的形态排列,以及与其他连接的被忽视的相似性,所有这些都表明其在神经发育疾病中具有新的潜在作用。水生生物,特别是脊椎动物斑马鱼,已被证明是阐明电突触形成分子机制的优秀模型。在整篇综述中,斑马鱼将作为我们的主要示例,并与其他模式生物进行比较。我们强调了构建神经元间隙连接的已知细胞生物学过程,并将其与黏着连接、紧密连接、非神经元间隙连接和化学突触的组装进行比较,以探索在我们对关键且普遍存在的电突触的理解中仍存在的未知领域。