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卷积神经网络能高精度地分割酵母显微镜图像。

A convolutional neural network segments yeast microscopy images with high accuracy.

机构信息

Laboratory of the Physics of Biological Systems, Institute of Physics, École polytechnique fédérale de Lausanne (EPFL), Lausanne, Switzerland.

Institute of Bioengineering, School of Life Sciences, École polytechnique fédérale de Lausanne (EPFL), Lausanne, Switzerland.

出版信息

Nat Commun. 2020 Nov 12;11(1):5723. doi: 10.1038/s41467-020-19557-4.

Abstract

The identification of cell borders ('segmentation') in microscopy images constitutes a bottleneck for large-scale experiments. For the model organism Saccharomyces cerevisiae, current segmentation methods face challenges when cells bud, crowd, or exhibit irregular features. We present a convolutional neural network (CNN) named YeaZ, the underlying training set of high-quality segmented yeast images (>10 000 cells) including mutants, stressed cells, and time courses, as well as a graphical user interface and a web application ( www.quantsysbio.com/data-and-software ) to efficiently employ, test, and expand the system. A key feature is a cell-cell boundary test which avoids the need for fluorescent markers. Our CNN is highly accurate, including for buds, and outperforms existing methods on benchmark images, indicating it transfers well to other conditions. To demonstrate how efficient large-scale image processing uncovers new biology, we analyze the geometries of ≈2200 wild-type and cyclin mutant cells and find that morphogenesis control occurs unexpectedly early and gradually.

摘要

在显微镜图像中识别细胞边界(“分割”)是大规模实验的一个瓶颈。对于模式生物酿酒酵母,当前的分割方法在细胞出芽、拥挤或表现出不规则特征时面临挑战。我们提出了一个名为 YeaZ 的卷积神经网络(CNN),其基础训练集是高质量分割的酵母图像(>10000 个细胞),包括突变体、应激细胞和时程图像,以及一个图形用户界面和一个网络应用程序(www.quantsysbio.com/data-and-software),以有效地使用、测试和扩展系统。一个关键特征是细胞-细胞边界测试,它避免了对荧光标记的需求。我们的 CNN 非常准确,包括出芽细胞,并且在基准图像上优于现有方法,表明它可以很好地转移到其他条件下。为了展示高效的大规模图像处理如何揭示新的生物学,我们分析了约 2200 个野生型和细胞周期蛋白突变体细胞的几何形状,发现形态发生控制出乎意料地很早就开始了,并逐渐进行。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/473a/7665014/5163ab0a1a2d/41467_2020_19557_Fig1_HTML.jpg

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