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Accurate cell segmentation in microscopy images using membrane patterns

机译:使用膜片模式在显微镜图像中进行准确的细胞分割

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Motivation: Identifying cells in an image (cell segmentation) is essential for quantitative single-cell biology via optical microscopy. Although a plethora of segmentation methods exists, accurate segmentation is challenging and usually requires problem-specific tailoring of algorithms. In addition, most current segmentation algorithms rely on a few basic approaches that use the gradient field of the image to detect cell boundaries. However, many microscopy protocols can generate images with characteristic intensity profiles at the cell membrane. This has not yet been algorithmically exploited to establish more general segmentation methods. Results: We present an automatic cell segmentation method that decodes the information across the cell membrane and guarantees optimal detection of the cell boundaries on a per-cell basis. Graph cuts account for the information of the cell boundaries through directional cross-correlations, and they automatically incorporate spatial constraints. The method accurately segments images of various cell types grown in dense cultures that are acquired with different microscopy techniques. In quantitative benchmarks and comparisons with established methods on synthetic and real images, we demonstrate significantly improved segmentation performance despite cell-shape irregularity, cell-to-cell variability and image noise. As a proof of concept, we monitor the internalization of green fluorescent protein-tagged plasma membrane transporters in single yeast cells.
机译:动机:通过光学显微镜识别图像中的细胞(细胞分割)对于定量单细胞生物学至关重要。尽管存在大量的分割方法,但准确的分割仍具有挑战性,通常需要对问题进行特定的算法定制。此外,大多数当前的分割算法都依赖于一些基本方法,这些方法使用图像的梯度场来检测细胞边界。然而,许多显微术方案可以在细胞膜上产生具有特征强度分布的图像。尚未在算法上利用它来建立更通用的分割方法。结果:我们提出了一种自动细胞分割方法,该方法可对整个细胞膜上的信息进行解码,并确保在每个细胞的基础上对细胞边界进行最佳检测。图形分割通过方向互相关考虑了单元边界的信息,并且它们自动合并了空间约束。该方法可以准确地分割在密集培养物中生长的各种细胞类型的图像,这些图像是通过不同的显微镜技术获得的。在定量基准和与合成和真实图像上已建立方法的比较中,我们证明了尽管细胞形状不规则,细胞与细胞之间的可变性和图像噪声,分割性能也得到了显着改善。作为概念的证明,我们监视单个酵母细胞中绿色荧光蛋白标记的质膜转运蛋白的内在化。

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