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利用荧光偏振显微镜检查AdiC转运蛋白的构象动力学。

Examination of conformational dynamics of AdiC transporter with fluorescence-polarization microscopy.

作者信息

Lewis John H, Zhou Yufeng, Lu Zhe

机构信息

Department of Physiology, Perelman School of Medicine, University of Pennsylvania, Philadelphia, PA, USA.

出版信息

J Gen Physiol. 2025 May 5;157(3). doi: 10.1085/jgp.202413709. Epub 2025 Feb 20.

DOI:10.1085/jgp.202413709
PMID:39976549
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC11841622/
Abstract

To understand the mechanism underlying the ability of individual AdiC molecules to transport arginine and agmatine, we used a recently developed high-resolution single-molecule fluorescence-polarization microscopy method to investigate conformation-specific changes in the emission polarization of a bifunctional fluorophore attached to an AdiC molecule. With this capability, we resolved AdiC's four conformations characterized by distinct spatial orientations in the absence or presence of the two substrates, and furthermore, each conformation's two energetic states, totaling 24 states. From the lifetimes of individual states and state-to-state transition probabilities, we determined 60 rate constants characterizing the transitions and 4 KD values characterizing the interactions of AdiC's two sides with arginine and agmatine, quantitatively defining a 24-state model. This model satisfactorily predicts the observed Michaelis-Menten behaviors of AdiC. With the acquired temporal information and existing structural information, we illustrated how to build an experiment-based integrative 4D model to capture and exhibit the complex spatiotemporal mechanisms underlying facilitated transport of substrates. However, inconsistent with what is expected from the prevailing hypothesis that AdiC is a 1:1 exchanger, all observed conformations transitioned among themselves with or without the presence of substrates. To corroborate this unexpected finding, we performed radioactive flux assays and found that the results are also incompatible with the hypothesis. As a technical advance, we showed that a monofunctional and the standard bifunctional fluorophore labels report comparable spatial orientation information defined in a local frame of reference. Here, the successful determination of the complex conformation-kinetic mechanism of AdiC demonstrates the unprecedented resolving power of the present microscopy method.

摘要

为了理解单个AdiC分子转运精氨酸和胍丁胺的潜在机制,我们使用了最近开发的高分辨率单分子荧光偏振显微镜方法,来研究连接到AdiC分子上的双功能荧光团发射偏振的构象特异性变化。借助这一能力,我们解析了AdiC在不存在或存在两种底物时以不同空间取向为特征的四种构象,此外,每种构象还有两种能量状态,共计24种状态。根据各个状态的寿命和状态间的跃迁概率,我们确定了表征跃迁的60个速率常数以及表征AdiC两侧与精氨酸和胍丁胺相互作用的4个KD值,从而定量定义了一个24状态模型。该模型令人满意地预测了观察到的AdiC的米氏行为。利用获取的时间信息和现有的结构信息,我们阐述了如何构建一个基于实验的综合四维模型,以捕捉和展示底物易化转运背后复杂的时空机制。然而,与普遍认为AdiC是1:1交换体的假设预期不符的是,所有观察到的构象在有或没有底物存在的情况下都能相互转变。为了证实这一意外发现,我们进行了放射性通量测定,结果也与该假设不相符。作为一项技术进展,我们表明单功能和标准双功能荧光团标记报告的是在局部参考系中定义的可比空间取向信息。在此,成功确定AdiC复杂的构象 - 动力学机制证明了当前显微镜方法前所未有的分辨能力。

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