Nano Science and Technology Program, Hong Kong University of Science and Technology, Clear Water Bay, Kowloon, Hong Kong.
Department of Physics, Hong Kong University of Science and Technology, Clear Water Bay, Kowloon, Hong Kong.
Nat Commun. 2016 May 26;7:11701. doi: 10.1038/ncomms11701.
The Brownian motion of molecules at thermal equilibrium usually has a finite correlation time and will eventually be randomized after a long delay time, so that their displacement follows the Gaussian statistics. This is true even when the molecules have experienced a complex environment with a finite correlation time. Here, we report that the lateral motion of the acetylcholine receptors on live muscle cell membranes does not follow the Gaussian statistics for normal Brownian diffusion. From a careful analysis of a large volume of the protein trajectories obtained over a wide range of sampling rates and long durations, we find that the normalized histogram of the protein displacements shows an exponential tail, which is robust and universal for cells under different conditions. The experiment indicates that the observed non-Gaussian statistics and dynamic heterogeneity are inherently linked to the slow-active remodelling of the underlying cortical actin network.
分子在热平衡下的布朗运动通常具有有限的相关时间,并且在长时间延迟后最终会被随机化,从而使它们的位移遵循高斯统计。即使分子经历了具有有限相关时间的复杂环境,情况也是如此。在这里,我们报告说,活肌肉细胞膜上乙酰胆碱受体的横向运动不符合正常布朗扩散的高斯统计。通过对在广泛的采样率和长时间内获得的大量蛋白质轨迹进行仔细分析,我们发现蛋白质位移的归一化直方图显示出指数尾部,这对于不同条件下的细胞是稳健且普遍的。该实验表明,观察到的非高斯统计和动态异质性与基础皮质肌动蛋白网络的缓慢主动重塑内在相关。