GsMTx4: Mechanism of Inhibiting Mechanosensitive Ion Channels
作者:, Thomas M. Suchyna
摘要:Abstract GsMTx4 is a spider venom peptide that inhibits cationic mechanosensitive channels (MSCs). It has six lysine residues that have been proposed to affect membrane binding. We synthesized six analogs with single lysine-to-glutamate substitutions and tested them against Piezo1 channels in outside-out patches and independently measured lipid binding. Four analogs had ∼20% lower efficacy than the wild-type (WT) peptide. The equilibrium constants calculated from the rates of inhibition and washout did not correlate with the changes in inhibition. The lipid association strength of the WT GsMTx4 and the analogs was determined by tryptophan autofluorescence quenching and isothermal calorimetry with membrane vesicles and showed no significant differences in binding energy. Tryptophan fluorescence-quenching assays showed that both WT and analog peptides bound superficially near the lipid-water interface, although analogs penetrated deeper. Peptide-lipid association, as a function of lipid surface pressure, was investigated in Langmuir monolayers. The peptides occupied a large fraction of the expanded monolayer area, but that fraction was reduced by peptide expulsion as the pressure approached the monolayer-bilayer equivalence pressure. Analogs with compromised efficacy had pressure-area isotherms with steeper slopes in this region, suggesting tighter peptide association. The pressure-dependent redistribution of peptide between “deep” and “shallow” binding modes was supported by molecular dynamics (MD) simulations of the peptide-monolayer system under different area constraints. These data suggest a model placing GsMTx4 at the membrane surface, where it is stabilized by the lysines, and occupying a small fraction of the surface area in unstressed membranes. When applied tension reduces lateral pressure in the lipids, the peptides penetrate deeper acting as “area reservoirs” leading to partial relaxation of the outer monolayer, thereby reducing the effective magnitude of stimulus acting on the MSC gate.
关键词:
论文方向:[{"id":13,"name":"细胞生物学"},{"id":19,"name":"生物物理学"}]
发表期刊:Biophysical Journal Volume 112, Issue 1
发表时间:Tue Jan 10 00:00:00 CST 2017
数字识别码:10.1016/j.bpj.2016.11.013
是否作者本人: 否
版权及免责声明:
本网站所有论文文件均系用户自行上传或提供,本网站对其内容准确性及合法性概不负责,亦不承担任何法律责任。论文版权归原作者及原出处所有。
如您发现网站其他用户上传的论文有侵犯您的姓名权、隐私权、著作权或其他合法权益现象的,请及时与本网站联系并附加相关权利证明文件,以便本网站及时作出处理,维护您的合法权益。
本网站拥有对此声明的最终解释权。
{replyUser1} 回复 {replyUser2}:{content}