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Image correlation spectroscopy of randomly distributed disks

机译:随机分布盘的图像相关光谱

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摘要

Image correlation spectroscopy (ICS) has been widely used to quantify spatiotemporal distributions of fluorescently labelled cell membrane proteins and receptors. When the membrane proteins are randomly distributed, ICS may be used to estimate protein densities, provided the proteins behave as point-like objects. At high protein area fraction, however, even randomly placed proteins cannot obey Poisson statistics, because of excluded area. The difficulty can arise if the protein effective area is quite large, or if proteins form large complexes or aggregate into clusters. In these cases, there is a need to determine the correct form of the intensity correlation function for hard disks in two dimensions, including the excluded area effects. We present an approximate but highly accurate algorithm for the computation of this correlation function. The correlation function was verified using test images of randomly distributed hard disks of uniform intensity convolved with the microscope point spread function. This algorithm can be readily modified to compute exact intensity correlation functions for any probe geometry, interaction potential, and fluorophore distribution; we show how to apply it to describe a random distribution of large proteins labeled with a single fluorophore.
机译:图像相关光谱法(ICS)已被广泛用于量化荧光标记的细胞膜蛋白和受体的时空分布。当膜蛋白随机分布时,如果蛋白表现为点状物体,则可以使用ICS估算蛋白密度。但是,在高蛋白质面积分数下,由于排除了面积,即使是随机放置的蛋白质也无法服从泊松统计。如果蛋白质有效面积很大,或者蛋白质形成大的复合物或聚集成簇,就会出现困难。在这些情况下,需要确定二维形式的硬盘强度相关函数的正确形式,包括排除的面积效应。我们提出了一种近似但高度准确的算法来计算此相关函数。使用具有均匀强度的随机分布硬盘的测试图像与显微镜点扩散函数进行卷积来验证相关函数。可以轻松修改此算法,以针对任何探针几何形状,相互作用电势和荧光团分布计算精确的强度相关函数;我们展示了如何应用它来描述用单个荧光团标记的大蛋白的随机分布。

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