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首页> 外文期刊>Biochimica et biophysica acta. Biomembranes >Identification and experimental verification of a novel family of bacterial cyclic nucleotide-gated (bCNG) ion channels.
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Identification and experimental verification of a novel family of bacterial cyclic nucleotide-gated (bCNG) ion channels.

机译:细菌环核苷酸门控(bCNG)离子通道的新型家族的鉴定和实验验证。

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Studies of bacterial ion channels have provided significant insights into the structure-function relationships of mechanosensitive and voltage-gated ion channels. However, to date, very few bacterial channels that respond to small molecules have been identified, cloned, and characterized. Here, we use bioinformatics to identify a novel family of bacterial cyclic nucleotide-gated (bCNG) ion channels containing a channel domain related by sequence homology to the mechanosensitive channel of small conductance (MscS). In this initial report, we clone selected members of this channel family, use electrophysiological measurements to verify their ability to directly gate in response to cyclic nucleotides, and use osmotic downshock to demonstrate their lack of mechanosensitivity. In addition to providing insight into bacterial physiology, these channels will provide researchers with a useful model system to investigate the role of ligand-gated ion channels (LGICs) in the signaling processes of higher organisms. The identification of these channels provides a foundation for structural and functional studies of LGICs that would be difficult to perform on mammalian channels. Moreover, the discovery of bCNG channels implies that bacteria have cyclic nucleotide-gated and cyclic nucleotide-modulated ion channels, which are analogous to the ion channels involved in eukaryotic secondary messenger signaling pathways.
机译:细菌离子通道的研究为机械敏感和电压门控离子通道的结构-功能关系提供了重要的见识。然而,迄今为止,已经鉴定,克隆和表征了对小分子有反应的细菌通道。在这里,我们使用生物信息学来鉴定细菌环核苷酸门控(bCNG)离子通道的新家族,该通道包含与序列同源性与小电导(MscS)的机械敏感通道相关的通道域。在这份初步报告中,我们克隆了该通道家族的选定成员,使用电生理学测量方法来验证其直接响应环状核苷酸的能力,并使用渗透性向下冲击来证明其缺乏机械敏感性。这些通道除了提供细菌生理学的信息外,还将为研究人员提供有用的模型系统,以研究配体门控离子通道(LGIC)在高等生物的信号传导过程中的作用。这些通道的鉴定为LGICs的结构和功能研究奠定了基础,而LGICs很难在哺乳动物通道上进行。此外,bCNG通道的发现暗示细菌具有环状核苷酸门控和环状核苷酸调节的离子通道,类似于真核二级信使信号通路中涉及的离子通道。

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