首页> 美国卫生研究院文献>Biophysical Journal >Mapping the Energy and Diffusion Landscapes of Membrane Proteins at the Cell Surface Using High-Density Single-Molecule Imaging and Bayesian Inference: Application to the Multiscale Dynamics of Glycine Receptors in the Neuronal Membrane
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Mapping the Energy and Diffusion Landscapes of Membrane Proteins at the Cell Surface Using High-Density Single-Molecule Imaging and Bayesian Inference: Application to the Multiscale Dynamics of Glycine Receptors in the Neuronal Membrane

机译:使用高密度单分子成像和贝叶斯推断在细胞表面绘制膜蛋白的能量和扩散态势:在神经元膜中甘氨酸受体的多尺度动力学中的应用

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摘要

Protein mobility is conventionally analyzed in terms of an effective diffusion. Yet, this description often fails to properly distinguish and evaluate the physical parameters (such as the membrane friction) and the biochemical interactions governing the motion. Here, we present a method combining high-density single-molecule imaging and statistical inference to separately map the diffusion and energy landscapes of membrane proteins across the cell surface at ∼100 nm resolution (with acquisition of a few minutes). Upon applying these analytical tools to glycine neurotransmitter receptors at inhibitory synapses, we find that gephyrin scaffolds act as shallow energy traps (∼3 kBT) for glycine neurotransmitter receptors, with a depth modulated by the biochemical properties of the receptor-gephyrin interaction loop. In turn, the inferred maps can be used to simulate the dynamics of proteins in the membrane, from the level of individual receptors to that of the population, and thereby, to model the stochastic fluctuations of physiological parameters (such as the number of receptors at synapses). Overall, our approach provides a powerful and comprehensive framework with which to analyze biochemical interactions in living cells and to decipher the multiscale dynamics of biomolecules in complex cellular environments.
机译:通常根据有效扩散来分析蛋白质迁移率。然而,该描述经常不能正确地区分和评估控制运动的物理参数(例如膜摩擦力)和生化相互作用。在这里,我们提出一种结合高密度单分子成像和统计推断的方法,以约100 nm的分辨率(采集数分钟)分别绘制膜蛋白在细胞表面的扩散和能量分布图。将这些分析工具应用于抑制性突触中的甘氨酸神经递质受体后,我们发现gephyrin支架充当甘氨酸神经递质受体的浅能陷阱(约3 kBT),其深度受受体-gephyrin相互作用环的生化特性调节。反过来,推断的图谱可用于模拟膜中蛋白质的动力学,从单个受体的水平到种群的水平,从而模拟生理参数的随机波动(例如受体的数量)。突触)。总体而言,我们的方法提供了一个强大而全面的框架,可用来分析活细胞中的生化相互作用并破译复杂细胞环境中生物分子的多尺度动力学。

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