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电压与配体 II:环核苷酸门控通道固有柔性的结构见解。

Voltage vs. Ligand II: Structural insights of the intrinsic flexibility in cyclic nucleotide-gated channels.

机构信息

Facultad de Medicina, Departamento de Bioquímica, Universidad Nacional Autónoma de México, 04510 Mexico City, Mexico. Current address: Department of Biochemistry, University of Bayreuth , Bayreuth , Germany.

Laboratorio de Genómica de Enfermedades Cardiovasculares, Instituto Nacional de Medicina Genómica , Mexico City , Mexico.

出版信息

Channels (Austin). 2019 Dec;13(1):382-399. doi: 10.1080/19336950.2019.1666456.

Abstract

In the preceding article, we present a flexibility analysis of the voltage-gated ion channel (VGIC) superfamily. In this study, we describe in detail the flexibility profile of the voltage-sensor domain (VSD) and the pore domain (PD) concerning the evolution of 6TM ion channels. In particular, we highlight the role of flexibility in the emergence of CNG channels and describe a significant level of sequence similarity between the archetypical VSD and the TolQ proteins. A highly flexible S4-like segment exhibiting Lys instead Arg for these membrane proteins is reported. Sequence analysis indicates that, in addition to this S4-like segment, TolQ proteins also show similarity with specific motifs in S2 and S3 from typical V-sensors. Notably, S3 flexibility profiles from typical VSDs and S3-like in TolQ proteins are also similar. Interestingly, TolQ from early divergent prokaryotes are comparatively more flexible than those in modern counterparts or true V-sensors. Regarding the PD, we also found that 2TM K-channels in early prokaryotes are considerably more flexible than the ones in modern microbes, and such flexibility is comparable to the one present in CNG channels. Voltage dependence is mainly exhibited in prokaryotic CNG channels whose VSD is rigid whereas the eukaryotic CNG channels are considerably more flexible and poorly V-dependent. The implication of the flexibility present in CNG channels, their sensitivity to cyclic nucleotides and the cation selectivity are discussed. Finally, we generated a structural model of the putative cyclic nucleotide-modulated ion channel, which we coined here as AqK, from the thermophilic bacteria , one of the earliest diverging prokaryotes known. Overall, our analysis suggests that V-sensors in CNG-like channels were essentially rigid in early prokaryotes but raises the possibility that this module was probably part of a very flexible stator protein of the bacterial flagellum motor complex.

摘要

在上一篇文章中,我们对电压门控离子通道(VGIC)超家族进行了柔性分析。在本研究中,我们详细描述了电压传感器域(VSD)和孔域(PD)的柔性特征,涉及 6TM 离子通道的演化。特别是,我们强调了柔性在 CNG 通道出现中的作用,并描述了典型 VSD 和 TolQ 蛋白之间存在显著的序列相似性。报告了这些膜蛋白中具有 Lys 而不是 Arg 的高度柔性 S4 样片段。序列分析表明,除了这个 S4 样片段外,TolQ 蛋白还与典型 V 传感器的 S2 和 S3 中的特定基序具有相似性。值得注意的是,典型 VSD 的 S3 柔性图谱和 TolQ 蛋白中的 S3 样图谱也相似。有趣的是,早期分歧的原核生物中的 TolQ 比现代对应物或真正的 V 传感器更具柔性。关于 PD,我们还发现,早期原核生物中的 2TM K 通道比现代微生物中的通道更具柔性,并且这种柔性与 CNG 通道中的柔性相当。电压依赖性主要表现在原核 CNG 通道中,其 VSD 是刚性的,而真核 CNG 通道则更具柔性且对电压的依赖性较低。讨论了 CNG 通道中存在的柔性、它们对环核苷酸的敏感性以及阳离子选择性的意义。最后,我们从最早已知的早期分歧原核生物之一的嗜热细菌中生成了一个假定的环核苷酸调节离子通道的结构模型,我们在这里将其命名为 AqK。总体而言,我们的分析表明,早期原核生物中 CNG 样通道的 V 传感器基本上是刚性的,但这表明该模块可能是细菌鞭毛马达复合物中非常灵活的定子蛋白的一部分。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/0d9c/6768053/1e147f410e22/kchl-13-01-1666456-g001.jpg

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