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Automatic Segmentation of High-Throughput RNAi Fluorescent Cellular Images

机译:高通量RNAi荧光细胞图像的自动分割

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摘要

High-throughput genome-wide RNA interference (RNAi) screening is emerging as an essential tool to assist biologists in understanding complex cellular processes. The large number of images produced in each study make manual analysis intractable; hence, automatic cellular image analysis becomes an urgent need, where segmentation is the first and one of the most important steps. In this paper, a fully automatic method for segmentation of cells from genome-wide RNAi screening images is proposed. Nuclei are first extracted from the DNA channel by using a modified watershed algorithm. Cells are then extracted by modeling the interaction between them as well as combining both gradient and region information in the Actin and Rac channels. A new energy functional is formulated based on a novel interaction model for segmenting tightly clustered cells with significant intensity variance and specific phenotypes. The energy functional is minimized by using a multiphase level set method, which leads to a highly effective cell segmentation method. Promising experimental results demonstrate that automatic segmentation of high-throughput genome-wide multichannel screening can be achieved by using the proposed method, which may also be extended to other multichannel image segmentation problems.
机译:高通量全基因组RNA干扰(RNAi)筛查正在成为帮助生物学家了解复杂细胞过程的重要工具。每个研究产生的大量图像使手动分析变得棘手。因此,自动细胞图像分析成为迫切的需求,其中分割是第一步,也是最重要的步骤之一。在本文中,提出了一种从全基因组RNAi筛选图像中分割细胞的全自动方法。首先使用改进的分水岭算法从DNA通道中提取核。然后通过对细胞之间的相互作用进行建模以及在肌动蛋白和Rac通道中结合梯度和区域信息来提取细胞。基于新的相互作用模型制定了新的能量功能,用于分割具有明显强度变化和特定表型的紧密聚集的细胞。通过使用多相能级设置方法将能量功能最小化,这导致了高效的细胞分割方法。有希望的实验结果表明,使用该方法可以实现高通量全基因组多通道筛选的自动分割,该方法也可以扩展到其他多通道图像分割问题。

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