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A Computational Approach to Detect Gap Junction Plaques and Associate Them with Cells in Fluorescent Images

机译:一种检测间隙连接斑块并将其与荧光图像中的细胞相关联的计算方法

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摘要

Intercellular signaling is a fundamental requirement for complex biological system function and survival. Communication between adjoining cells is largely achieved via gap junction channels made up of multiple subunits of connexin proteins, each with unique selectivity and regulatory properties. Intercellular communication via gap junction channels facilitates transmission of an array of cellular signals, including ions, macromolecules, and metabolites that coordinate physiological processes throughout tissues and entire organisms. Although current methods used to quantify connexin expression rely on number or area density measurements in a field of view, they lack cellular assignment, distance measurement capabilities (both within the cell and to extracellular structures), and complete automation. We devised an automated computational approach built on a contour expansion algorithm platform that allows connexin protein detection and assignment to specific cells within complex tissues. In addition, parallel implementation of the contour expansion algorithm allows for high-throughput analysis as the complexity of the biological sample increases. This method does not depend specifically on connexin identification and can be applied more widely to the analysis of numerous immunocytochemical markers as well as to identify particles within tissues such as nanoparticles, gene delivery vehicles, or even cellular fragments such as exosomes or microparticles.
机译:细胞间信号传导是复杂生物系统功能和生存的基本要求。相邻细胞之间的通讯主要是通过间隙连接通道实现的,该通道由连接蛋白的多个亚基组成,每个亚基具有独特的选择性和调节特性。通过间隙连接通道的细胞间通讯促进了一系列细胞信号的传输,包括协调整个组织和整个生物体生理过程的离子,大分子和代谢产物。尽管当前用于量化连接蛋白表达的方法依赖于视野中的数量或面积密度测量,但它们缺乏细胞分配,距离测量功能(既在细胞内又在细胞外结构)以及完全自动化。我们设计了一种基于轮廓扩展算法平台的自动计算方法,该方法允许连接蛋白检测和分配给复杂组织内的特定细胞。此外,随着生物样品的复杂性增加,轮廓扩展算法的并行实现允许进行高通量分析。该方法不特别依赖于连接蛋白的鉴定,并且可以更广泛地应用于多种免疫细胞化学标记物的分析,以及鉴定组织内的颗粒,例如纳米颗粒,基因传递载体,甚至细胞片段,例如外来体或微粒。

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