计算机分析表明,美洲龙虾(Homarus americanus)的心脏神经节含有多种推测的innexin/innexin样蛋白,包括该蛋白家族的已知和新成员。

Q4 Neuroscience
Andrew E Christie, J Joe Hull, Patsy S Dickinson
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引用次数: 2

摘要

间隙连接是连接相邻细胞的物理通道,允许小分子/离子在偶联单元的细胞质之间流动。Innexin/ Innexin样蛋白负责无脊椎动物间隙连接的形成。在神经系统中,间隙连接通常起到电突触的作用,为电偶联神经元之间的活动提供一种协调手段。虽然一些缝隙连接允许小分子/离子在偶联细胞之间双向流动,但其他缝隙连接只允许单向流动或优先流动。存在于间隙连接中的内链蛋白的补体决定了它的特定性质。因此,了解内连蛋白多样性是了解物种/系统中电偶联的全部潜力的关键。控制心肌收缩的十足甲壳类动物心脏神经节(CG)是一个简单的模式生成神经网络,其电路元件之间存在广泛的电耦合。在美洲龙虾(Homarus americanus)中,先前的研究表明,成体神经元内联蛋白补体由6个内联蛋白(Homam-Inx1-4和Homam-Inx6-7)组成。在这里,我们使用美洲龙虾cg特异性转录组,探索了龙虾神经系统这部分的内联蛋白补体。除了Homam-Inx4外,所有先前描述的innexins似乎都在美洲人的CG中表达。此外,还鉴定出了编码7个新的推测的innexins (Homam-Inx8-14)的转录本,其中4个(Homam-Inx8-11)具有多个剪接变体,例如,Homam-Inx8有6个。总的来说,这些数据表明,龙虾神经系统的内联蛋白补体,特别是CG,可能比以前报道的要大得多,这表明美洲美洲人可能扩大了间隙连接的多样性和功能。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
In silico analyses suggest the cardiac ganglion of the lobster, Homarus americanus, contains a diverse array of putative innexin/innexin-like proteins, including both known and novel members of this protein family.

Gap junctions are physical channels that connect adjacent cells, permitting the flow of small molecules/ions between the cytoplasms of the coupled units. Innexin/innexin-like proteins are responsible for the formation of invertebrate gap junctions. Within the nervous system, gap junctions often function as electrical synapses, providing a means for coordinating activity among electrically coupled neurons. While some gap junctions allow the bidirectional flow of small molecules/ions between coupled cells, others permit flow in one direction only or preferentially. The complement of innexins present in a gap junction determines its specific properties. Thus, understanding innexin diversity is key for understanding the full potential of electrical coupling in a species/system. The decapod crustacean cardiac ganglion (CG), which controls cardiac muscle contractions, is a simple pattern-generating neural network with extensive electrical coupling among its circuit elements. In the lobster, Homarus americanus, prior work suggested that the adult neuronal innexin complement consists of six innexins (Homam-Inx1-4 and Homam-Inx6-7). Here, using a H. americanus CG-specific transcriptome, we explored innexin complement in this portion of the lobster nervous system. With the exception of Homam-Inx4, all of the previously described innexins appear to be expressed in the H. americanus CG. In addition, transcripts encoding seven novel putative innexins (Homam-Inx8-14) were identified, four (Homam-Inx8-11) having multiple splice variants, e.g., six for Homam-Inx8. Collectively, these data indicate that the innexin complement of the lobster nervous system in general, and the CG specifically, is likely significantly greater than previously reported, suggesting the possibility of expanded gap junction diversity and function in H. americanus.

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来源期刊
Invertebrate Neuroscience
Invertebrate Neuroscience NEUROSCIENCES-
自引率
0.00%
发文量
0
审稿时长
>12 weeks
期刊介绍: Invertebrate Neurosciences publishes peer-reviewed original articles, reviews and technical reports describing recent advances in the field of invertebrate neuroscience. The journal reports on research that exploits the simplicity and experimental tractability of the invertebrate preparations to underpin fundamental advances in neuroscience. Articles published in Invertebrate Neurosciences serve to highlight properties of signalling in the invertebrate nervous system that may be exploited in the field of antiparisitics, molluscicides and insecticides. Aspects of particular interest include: Functional analysis of the invertebrate nervous system; Molecular neuropharmacology and toxicology; Neurogenetics and genomics; Functional anatomy; Neurodevelopment; Neuronal networks; Molecular and cellular mechanisms of behavior and behavioural plasticity.
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