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首页> 外文期刊>Microscopy and microanalysis: The official journal of Microscopy Society of America, Microbeam Analysis Society, Microscopical Society of Canada >Selection and tuning of a fast and simple phase-contrast microscopy image segmentation algorithm for measuring myoblast growth kinetics in an automated manner (Conference Paper)
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Selection and tuning of a fast and simple phase-contrast microscopy image segmentation algorithm for measuring myoblast growth kinetics in an automated manner (Conference Paper)

机译:选择和调整用于自动测量成肌细胞生长动力学的快速简单的相衬显微镜图像分割算法(会议论文)

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Acquiring and processing phase-contrast microscopy images in wide-field long-term live-cell imaging and high-throughput screening applications is still a challenge as the methodology and algorithms used must be fast, simple to use and tune, and as minimally intrusive as possible. In this paper, we developed a simple and fast algorithm to compute the cell-covered surface (degree of confluence) in phase-contrast microscopy images. This segmentation algorithm is based on a range filter of a specified size, a minimum range threshold, and a minimum object size threshold. These parameters were adjusted in order to maximize the F-measure function on a calibration set of 200 hand-segmented images, and its performance was compared with other algorithms proposed in the literature. A set of one million images from 37 myoblast cell cultures under different conditions were processed to obtain their cell-covered surface against time. The data were used to fit exponential and logistic models, and the analysis showed a linear relationship between the kinetic parameters and passage number and highlighted the effect of culture medium quality on cell growth kinetics. This algorithm could be used for real-time monitoring of cell cultures and for high-throughput screening experiments upon adequate tuning.
机译:在宽视野长期活细胞成像和高通量筛选应用中,获取和处理相衬显微镜图像仍然是一个挑战,因为所使用的方法和算法必须快速,易于使用和调整,并且干扰最小可能。在本文中,我们开发了一种简单快速的算法来计算相衬显微镜图像中的细胞覆盖表面(融合度)。该分段算法基于指定大小的范围过滤器,最小范围阈值和最小对象大小阈值。调整这些参数是为了在200张手分割图像的校准集上最大化F测量功能,并将其性能与文献中提出的其他算法进行比较。处理来自37种成肌细胞在不同条件下的一百万张图像,以获得其随时间变化覆盖的细胞表面。数据用于拟合指数模型和逻辑模型,分析显示动力学参数与传代次数之间存在线性关系,并强调了培养基质量对细胞生长动力学的影响。该算法可用于实时监测细胞培养物,并在适当调整后用于高通量筛选实验。

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