Tsygankov Denis, Bilancia Colleen G, Vitriol Eric A, Hahn Klaus M, Peifer Mark, Elston Timothy C
Department of Pharmacology, 2 Department of Biology, and 3 Lineberger Comprehensive Cancer Center, University of North Carolina at Chapel Hill, Chapel Hill, NC 27599.
J Cell Biol. 2014 Feb 3;204(3):443-60. doi: 10.1083/jcb.201306067.
Cell biologists increasingly rely on computer-aided image analysis, allowing them to collect precise, unbiased quantitative results. However, despite great progress in image processing and computer vision, current computational approaches fail to address many key aspects of cell behavior, including the cell protrusions that guide cell migration and drive morphogenesis. We developed the open source MATLAB application CellGeo, a user-friendly computational platform to allow simultaneous, automated tracking and analysis of dynamic changes in cell shape, including protrusions ranging from filopodia to lamellipodia. Our method maps an arbitrary cell shape onto a tree graph that, unlike traditional skeletonization algorithms, preserves complex boundary features. CellGeo allows rigorous but flexible definition and accurate automated detection and tracking of geometric features of interest. We demonstrate CellGeo's utility by deriving new insights into (a) the roles of Diaphanous, Enabled, and Capping protein in regulating filopodia and lamellipodia dynamics in Drosophila melanogaster cells and (b) the dynamic properties of growth cones in catecholaminergic a-differentiated neuroblastoma cells.
细胞生物学家越来越依赖计算机辅助图像分析,这使他们能够收集精确、无偏差的定量结果。然而,尽管图像处理和计算机视觉取得了巨大进展,但当前的计算方法仍无法解决细胞行为的许多关键方面,包括引导细胞迁移和驱动形态发生的细胞突起。我们开发了开源的MATLAB应用程序CellGeo,这是一个用户友好的计算平台,可同时自动跟踪和分析细胞形状的动态变化,包括从丝状伪足到片状伪足的各种突起。我们的方法将任意细胞形状映射到树形图上,与传统的骨架化算法不同,该树形图保留了复杂的边界特征。CellGeo允许对感兴趣的几何特征进行严格但灵活的定义以及准确的自动检测和跟踪。我们通过对以下方面获得新见解来证明CellGeo的实用性:(a)在果蝇细胞中,Diaphanous、Enabled和封端蛋白在调节丝状伪足和片状伪足动力学中的作用;(b)儿茶酚胺能α分化神经母细胞瘤细胞中生长锥的动态特性。