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TRP 通道中疏水性门控残基的鉴定与特性分析。

Identification and characterization of hydrophobic gate residues in TRP channels.

机构信息

Institute of Biomedical and Pharmaceutical Sciences, Key Laboratory of Fermentation Engineering of Ministry of Education, College of Bioengineering, Hubei University of Technology, Wuhan, China.

Membrane Protein Disease Research Group, Department of Physiology, Faculty of Medicine and Dentistry, University of Alberta, Edmonton, Alberta, Canada.

出版信息

FASEB J. 2018 Feb;32(2):639-653. doi: 10.1096/fj.201700599RR. Epub 2018 Jan 4.

Abstract

Transient receptor potential (TRP) channels, subdivided into 6 subfamilies in mammals, have essential roles in sensory physiology. They respond to remarkably diverse stimuli, comprising thermal, chemical, and mechanical modalities, through opening or closing of channel gates. In this study, we systematically substituted the hydrophobic residues within the distal fragment of pore-lining helix S6 with hydrophilic residues and, based on Xenopus oocyte and mammalian cell electrophysiology and a hydrophobic gate theory, identified hydrophobic gates in TRPV6/V5/V4/C4/M8. We found that channel activity drastically increased when TRPV6 or TRPV5, but not any of their adjacent residues, was substituted with hydrophilic residues. Channel activity strongly correlated with the hydrophilicity of the residues at those sites, suggesting that consecutive hydrophobic residues TRPV6 and TRPV5 form a double-residue gate in each channel. By the same strategy, we identified a hydrophobic single-residue gate in TRPV4, TRPC4, and TRPM8. In support of the hydrophobic gate theory, hydrophilic substitution at the gate site, which removes the hydrophobic gate seal, substantially increased the activity of TRP channels in low-activity states but had little effect on the function of activated channels. The double-residue gate channels were more sensitive to small changes in the gate's hydrophobicity or size than single-residue gate channels. The unconventional double-reside gating mechanism in TRP channels may have been evolved to respond especially to physiologic stimuli that trigger relatively small gate conformational changes.-Zheng, W., Hu, R., Cai, R., Hofmann, L., Hu, Q., Fatehi, M., Long, W., Kong, T., Tang, J., Light, P., Flockerzi, V., Cao, Y., Chen, X.-Z. Identification and characterization of hydrophobic gate residues in TRP channels.

摘要

瞬时受体电位 (TRP) 通道在哺乳动物中分为 6 个亚家族,它们在感觉生理学中具有重要作用。它们通过通道门的打开或关闭,对包括热、化学和机械模态在内的各种刺激做出反应。在这项研究中,我们系统地用亲水残基替代了孔衬螺旋 S6 远端片段中的疏水性残基,并基于非洲爪蟾卵母细胞和哺乳动物细胞电生理学以及疏水门理论,在 TRPV6/V5/V4/C4/M8 中鉴定了疏水门。我们发现,当 TRPV6 或 TRPV5(但不是它们的任何相邻残基)被亲水残基取代时,通道活性会急剧增加。通道活性与这些位点残基的亲水性强烈相关,表明 TRPV6 和 TRPV5 的连续疏水性残基在每个通道中形成双残基门。通过相同的策略,我们在 TRPV4、TRPC4 和 TRPM8 中鉴定了一个疏水单残基门。支持疏水门理论,在门位点进行亲水取代会去除疏水门密封,从而大大增加低活性状态下 TRP 通道的活性,但对激活通道的功能几乎没有影响。双残基门通道对门的疏水性或大小的微小变化比单残基门通道更敏感。TRP 通道中这种非传统的双残基门控机制可能是为了对触发相对较小门构象变化的生理刺激做出特别反应而进化而来的。-郑伟,胡睿,蔡睿,霍夫曼,胡强,法特希,孟文,龙婉,孔涛,唐敬,莱特,弗洛克里,曹玉玺,陈学新。TRP 通道中疏水性门控残基的鉴定和特性。

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