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Automated detection of intercellular signaling in astrocyte networks using the converging squares algorithm

机译:使用收敛平方算法自动检测星形胶质细胞网络中的细胞间信号

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摘要

Intercellular calcium waves in central nervous system astrocyte networks underline the principle mechanism of cell signaling in astrocyte syncsytiums, which putatively contribute to the modulation of neuronal signaling and metabolic regulation. In support of carrying out systems level analyses of astrocyte networks, we have optimized and validated the converging squares image segmentation algorithm to automatically detect the relative spatial locations of all cells in a visible network as a preliminary step towards analyzing the dynamics of astrocyte intracellular calcium transients, which are the signals that mediate intercellular calcium waves. We used the temporal derivatives of pixel intensities as the data source for the algorithm. The method works by converging progressively smaller squares until the signal peak is reached. It is robust to noise and performs comparably to manual cell signal identification, but is much faster and efficient. This is the first reported application of this algorithm to glial networks that we are aware of.
机译:中枢神经系统星形胶质细胞网络中的细胞间钙波突显了星形胶质细胞合胞中细胞信号转导的原理机制,这可能有助于调节神经元信号转导和代谢调节。为了支持进行星形胶质细胞网络的系统级分析,我们优化并验证了会聚正方形图像分割算法,以自动检测可见网络中所有细胞的相对空间位置,以此作为分析星形胶质细胞细胞内钙瞬变动力学的第一步,它们是介导细胞间钙波的信号。我们使用像素强度的时间导数作为算法的数据源。该方法通过逐渐收敛较小的正方形直到达到信号峰值来起作用。它具有强大的抗噪能力,可与手动细胞信号识别相比,但速度更快且效率更高。这是该算法在神经胶质网络中的首次报道应用。

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