Computational and experimental approaches to quantify protein binding interactions under confinement

合作性 受体-配体动力学 费斯特共振能量转移 动力学 动力学蒙特卡罗方法 生物物理学 蒙特卡罗方法 化学 分子 合作约束 分子结合 结合位点 化学物理 纳米技术 荧光 材料科学 物理 生物 生物化学 统计 有机化学 量子力学 数学
作者
Deborah Leckband,Daniel K. Schwartz,Yinghao Wu
出处
期刊:Biophysical Journal [Elsevier]
卷期号:123 (4): 424-434 被引量:1
标识
DOI:10.1016/j.bpj.2024.01.018
摘要

Crowded environments and confinement alter the interactions of adhesion proteins confined to membranes or narrow, crowded gaps at adhesive contacts. Experimental approaches and theoretical frameworks were developed to quantify protein binding constants in these environments. However, recent predictions and the complexity of some protein interactions proved challenging to address with prior experimental or theoretical approaches. This perspective highlights new methods developed by these authors that address these challenges. Specifically, single-molecule fluorescence resonance energy transfer and single-molecule tracking measurements were developed to directly image the binding/unbinding rates of membrane-tethered cadherins. Results identified predicted cis (lateral) interactions, which control cadherin clustering on membranes but were not detected in solution. Kinetic Monte Carlo simulations, based on a realistic model of cis cadherin interactions, were developed to extract binding/unbinding rate constants from heterogeneous single-molecule data. The extension of single-molecule fluorescence measurements to cis and trans (adhesive) cadherin interactions at membrane junctions identified unexpected cooperativity between cis and trans binding that appears to enhance intercellular binding kinetics. Comparisons of intercellular binding kinetics, kinetic Monte Carlo simulations, and single-molecule fluorescence data suggest a strategy to bridge protein binding kinetics across length scales. Although cadherin is the focus of these studies, the approaches can be extended to other intercellular adhesion proteins.

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