Covalent linkage of bacterial voltage-gated sodium channels.

Q1 Biochemistry, Genetics and Molecular Biology
BMC Biophysics Pub Date : 2019-04-27 eCollection Date: 2019-01-01 DOI:10.1186/s13628-019-0049-5
Huaping Sun, Zeyu Zheng, Olena A Fedorenko, Stephen K Roberts
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引用次数: 4

Abstract

Background: Bacterial sodium channels are important models for understanding ion permeation and selectivity. However, their homotetrameric structure limits their use as models for understanding the more complex eukaryotic voltage-gated sodium channels (which have a pseudo-heterotetrameric structure formed from an oligomer composed of four domains). To bridge this gap we attempted to synthesise oligomers made from four covalently linked bacterial sodium channel monomers and thus resembling their eukaryotic counterparts.

Results: Western blot analyses revealed NaChBac oligomers to be inherently unstable whereas intact expression of NavMs oligomers was possible. Immunodectection using confocal microscopy and electrophysiological characterisation of NavMs tetramers confirmed plasma membrane localisation and equivalent functionality with wild type NavMs channels when expressed in human embryonic kidney cells.

Conclusion: This study has generated new tools for the investigation of eukaryotic channels. The successful covalent linkage of four bacterial Nav channel monomers should permit the introduction of radial asymmetry into the structure of bacterial Nav channels and enable the known structures of these channels to be used to gain unique insights into structure-function relationships of their eukaryotic counterparts.

Abstract Image

Abstract Image

Abstract Image

细菌电压门控钠通道的共价连锁。
背景:细菌钠离子通道是了解离子渗透和选择性的重要模型。然而,它们的同四聚体结构限制了它们作为理解更复杂的真核电压门控钠通道(具有由四个结构域组成的低聚物形成的伪异四聚体结构)模型的使用。为了弥补这一差距,我们试图合成由四个共价连接的细菌钠通道单体制成的低聚物,从而类似于真核生物的对应物。结果:Western blot分析显示NaChBac低聚物本身是不稳定的,而NavMs低聚物的完整表达是可能的。利用共聚焦显微镜和电生理表征对NavMs四聚体进行免疫检测,证实了野生型NavMs通道在人胚胎肾细胞中表达时的质膜定位和等效功能。结论:本研究为真核通道的研究提供了新的工具。四种细菌Nav通道单体的成功共价连接应该允许将径向不对称引入细菌Nav通道的结构中,并使这些通道的已知结构能够用于对其真核对应物的结构-功能关系获得独特的见解。
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来源期刊
BMC Biophysics
BMC Biophysics BIOPHYSICS-
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>12 weeks
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