Singh Mrityunjay, Indurthi Dinesh C, Mittal Lovika, Auerbach Anthony, Asthana Shailendra
Computational Biophysics and CADD Group, Computational and Mathematical Biology Center,Translational Health Science and Technology Institute, Faridabad, India.
Department of Physiology and Biophysics, University at Buffalo, State University of New York, Buffalo, United States.
Elife. 2024 Dec 18;13:RP92418. doi: 10.7554/eLife.92418.
Agonists enhance receptor activity by providing net-favorable binding energy to active over resting conformations, with efficiency (η) linking binding energy to gating. Previously, we showed that in nicotinic receptors, η-values are grouped into five structural pairs, correlating efficacy and affinity within each class, uniting binding with allosteric activation (Indurthi and Auerbach, 2023). Here, we use molecular dynamics (MD) simulations to investigate the low-to-high affinity transition (L→H) at the Torpedo α-δ nicotinic acetylcholine receptor neurotransmitter site. Using four agonists spanning three η-classes, the simulations reveal the structural basis of the L→H transition where: the agonist pivots around its cationic center ('flip'), loop C undergoes staged downward displacement ('flop'), and a compact, stable high-affinity pocket forms ('fix'). The η derived from binding energies calculated in silico matched exact values measured experimentally in vitro. Intermediate states of the orthosteric site during receptor activation are apparent only in simulations, but could potentially be observed experimentally via time-resolved structural studies.
激动剂通过为活性构象提供比静息构象更有利的净结合能来增强受体活性,效率(η)将结合能与门控联系起来。此前,我们表明在烟碱型受体中,η值分为五个结构对,在每个类别中关联效力和亲和力,将结合与变构激活联系起来(因杜尔蒂和奥尔巴赫,2023年)。在此,我们使用分子动力学(MD)模拟来研究电鳐α-δ烟碱型乙酰胆碱受体神经递质位点的低亲和力到高亲和力转变(L→H)。使用跨越三个η类别的四种激动剂,模拟揭示了L→H转变的结构基础,即:激动剂围绕其阳离子中心旋转(“翻转”),C环经历阶段性向下位移(“耷拉”),并形成一个紧凑、稳定的高亲和力口袋(“固定”)。通过计算机模拟计算出的结合能得出的η与体外实验测量的精确值相匹配。在受体激活过程中,正构位点的中间状态仅在模拟中可见,但可能通过时间分辨结构研究在实验中观察到。