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From the CoverPNAS Plus: Stochastic approach to the molecular counting problem in superresolution microscopy

机译:来自CoverPNAS Plus:超分辨率显微镜中分子计数问题的随机方法

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摘要

Superresolution imaging methods—now widely used to characterize biological structures below the diffraction limit—are poised to reveal in quantitative detail the stoichiometry of protein complexes in living cells. In practice, the photophysical properties of the fluorophores used as tags in superresolution methods have posed a severe theoretical challenge toward achieving this goal. Here we develop a stochastic approach to enumerate fluorophores in a diffraction-limited area measured by superresolution microscopy. The method is a generalization of aggregated Markov methods developed in the ion channel literature for studying gating dynamics. We show that the method accurately and precisely enumerates fluorophores in simulated data while simultaneously determining the kinetic rates that govern the stochastic photophysics of the fluorophores to improve the prediction’s accuracy. This stochastic method overcomes several critical limitations of temporal thresholding methods.
机译:超分辨率成像方法(现已广泛用于表征低于衍射极限的生物结构)已准备好定量地揭示活细胞中蛋白质复合物的化学计量。实际上,在超分辨率方法中用作标记的荧光团的光物理性质对实现该目标提出了严峻的理论挑战。在这里,我们开发了一种随机方法,可通过超分辨率显微镜在衍射极限区域内枚举荧光团。该方法是离子通道文献中开发的用于研究门控动力学的聚合马尔可夫方法的概括。我们证明了该方法可以准确,精确地枚举模拟数据中的荧光团,同时确定决定荧光团随机光物理现象的动力学速率,从而提高预测的准确性。这种随机方法克服了时间阈值方法的几个关键限制。

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