n-烷基- mts试剂取代半胱氨酸修饰和保护定量GABA型a受体麻醉剂结合位点突变引起的位位变化。

IF 3.2 3区 医学 Q2 PHARMACOLOGY & PHARMACY
Molecular Pharmacology Pub Date : 2023-12-01 Epub Date: 2023-08-16 DOI:10.1124/molpharm.123.000719
Kieran Bhave, Stuart A Forman
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引用次数: 0

摘要

包括低温电镜(cro - em)在内的多种方法表明,麻醉剂依托咪酯和异丙酚通过在βM286和αL232侧链附近重叠的跨膜亚基间位点结合来调节α1β2/3γ2 GABAA受体。功能受体的高精度方法需要与低温电镜进行比较。我们之前使用n-烷基-甲乙硫磺酸(MTS)试剂和电生理对α1β 3m286c - γ 2l受体的取代半胱氨酸修饰和保护(SCAMP)来估计依托咪酯到β3M286的距离,精度接近1.3 Å。在这里,我们使用这种方法解决了另外三个目的:(i)在α 1l232 - β3γ 2l受体中测试了依托咪酯的SCAMP;(ii) α1L232W - β3M286C - γ 2l受体的研究评估α1L232W是否相对于β3M286C取代依托咪酯;(iii)比较异丙酚与依托咪酯的结果。通过n-癸基- mts将半胱氨酸取代受体暴露于甲基- mts后,使用电压钳电生理学来评估爪蟾卵母细胞的持续功能变化。当烷基- mts试剂阻断了持续效应的发展时,推测修饰的半胱氨酸侧链与结合麻醉剂重叠。在α 1l232c - β3γ 2l受体中,只有戊基- mts和己基- mts诱导的持续效应不受依托咪酯联合应用的影响,因此无法直接估计分子间距离。在α 1l232w - β 3m286c - γ 2l受体中,通过n-戊基- mts修饰,推断与结合依托咪酯侧链重叠,具有明确的切断和切断。与α1β3M286C - γ 2l的结果比较发现,α1L232W使最大侧链长度增加2.1 Å,使依托咪酯向β3M286C的方向位移约1.3 Å。异丙酚的结果与依托咪酯的结果基本一致。这些发现表明依托咪酯和异丙酚结合在α1L232的1 Å内,与低温电镜结构一致。意义声明:我们结合电生理学、半胱氨酸取代和功能性GABAA受体的n-烷基-甲乙硫磺酸修饰剂,能够精确估计β 3m286c侧链与跨膜β+/α-亚基间口袋结合的麻醉剂(依托咪酯和异丙酚)之间的距离。比较α1β3M286C - γ 2l和α1L232W - β3M286C - γ 2l受体的结果发现,α1L232W突变使两种麻醉剂都向β3M286C转移,表明这两种麻醉剂结合在功能受体α1L232侧链的1 Å处,这与非生理条件下获得的低温电镜结构一致。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Substituted Cysteine Modification and Protection with n-Alkyl-MTS Reagents Quantifies Steric Changes Induced by a Mutation in Anesthetic Binding Sites on GABA Type A Receptors.

Multiple approaches, including cryogenic electron microscopy (cryo-EM), indicate that the anesthetics etomidate and propofol modulate α1β2/3γ2 GABAA receptors by binding in overlapping transmembrane inter-subunit sites near βM286 and αL232 sidechains. High-precision approaches in functional receptors are needed for comparisons with cryo-EM. We previously used substituted cysteine modification and protection (SCAMP) with n-alkyl-methanethiosulfonate (MTS) reagents and electrophysiology in α1β3M286Cγ2L receptors to estimate the distance from etomidate to β3M286 with precision near 1.3 Å. Here, we address three more aims using this approach: (i) SCAMP with etomidate was tested in α1L232Cβ3γ2L receptors; (ii) studies in α1L232Wβ3M286Cγ2L receptors assessed whether α1L232W displaces etomidate relative to β3M286C; and (iii) results with propofol were compared with those with etomidate. Voltage-clamp electrophysiology in Xenopus oocytes was used to assess persistent functional changes after exposing cysteine-substituted receptors to methyl-MTS through n-decyl-MTS. Overlap of modified cysteine sidechains with bound anesthetic was inferred when anesthetic co-application with alkyl-MTS reagent blocked the development of persistent effects. In α1L232Cβ3γ2L receptors, only pentyl-MTS and hexyl-MTS induced persistent effects that were unaltered by etomidate co-application, precluding a direct estimate of intermolecular distance. In α1L232Wβ3M286Cγ2L receptors, sidechain overlap with bound etomidate was inferred for modifications with ethyl-MTS through n-pentyl-MTS, with unambiguous cut-on and cut-off. Comparison with results in α1β3M286Cγ2L reveals that α1L232W, which increases maximal sidechain length by 2.1 Å, displaces etomidate closer to β3M286C by about 1.3 Å. Propofol results largely mirrored those with etomidate. These findings indicate that both etomidate and propofol bind within 1 Å of α1L232, consistent with cryo-EM structures. SIGNIFICANCE STATEMENT: We combined electrophysiology, cysteine substitutions, and n-alkyl-methanethiosulfonate modifiers in functional GABAA receptors to enable precise estimates of the distance between β3M286C sidechains and anesthetics (etomidate and propofol) bound in transmembrane β+/α- inter-subunit pockets. Comparing results in α1β3M286Cγ2L and α1L232Wβ3M286Cγ2L receptors reveals that α1L232W mutations displace both anesthetics toward β3M286C, indicating that these anesthetics bind within 1 Å of the α1L232 sidechain in functional receptors, consistent with cryogenic electron microscopy structures derived under nonphysiologic conditions.

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来源期刊
Molecular Pharmacology
Molecular Pharmacology 医学-药学
CiteScore
7.20
自引率
2.80%
发文量
50
审稿时长
3-6 weeks
期刊介绍: Molecular Pharmacology publishes findings derived from the application of innovative structural biology, biochemistry, biophysics, physiology, genetics, and molecular biology to basic pharmacological problems that provide mechanistic insights that are broadly important for the fields of pharmacology and toxicology. Relevant topics include: Molecular Signaling / Mechanism of Drug Action Chemical Biology / Drug Discovery Structure of Drug-Receptor Complex Systems Analysis of Drug Action Drug Transport / Metabolism
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