CShaperApp: Segmenting and analyzing cellular morphologies of the developing Caenorhabditis elegans embryo

Author:

Cao Jianfeng12,Hu Lihan3,Guan Guoye4,Li Zelin12,Zhao Zhongying56,Tang Chao78,Yan Hong12

Affiliation:

1. Department of Electrical Engineering City University of Hong Kong Hong Kong China

2. Centre for Intelligent Multidimensional Data Analysis Limited Hong Kong China

3. College of Computer and Information Hohai University Nanjing China

4. Center for Quantitative Biology Peking University Beijing China

5. Department of Biology Hong Kong Baptist University Hong Kong China

6. State Key Laboratory of Environmental and Biological Analysis Hong Kong Baptist University Hong Kong China

7. Peking‐Tsinghua Center for Life Sciences Peking University Beijing China

8. School of Physics Peking University Beijing China

Abstract

AbstractCaenorhabditis elegans has been widely used as a model organism in developmental biology due to its invariant development. In this study, we developed a desktop software CShaperApp to segment fluorescence‐labeled images of cell membranes and analyze cellular morphologies interactively during C. elegans embryogenesis. Based on the previously proposed framework CShaper, CShaperApp empowers biologists to automatically and efficiently extract quantitative cellular morphological data with either an existing deep learning model or a fine‐tuned one adapted to their in‐house dataset. Experimental results show that it takes about 30 min to process a three‐dimensional time‐lapse (4D) dataset, which consists of 150 image stacks at a ∼1.5‐min interval and covers C. elegans embryogenesis from the 4‐cell to 350‐cell stages. The robustness of CShaperApp is also validated with the datasets from different laboratories. Furthermore, modularized implementation increases the flexibility in multi‐task applications and promotes its flexibility for future enhancements. As cell morphology over development has emerged as a focus of interest in developmental biology, CShaperApp is anticipated to pave the way for those studies by accelerating the high‐throughput generation of systems‐level quantitative data collection. The software can be freely downloaded from the website of Github (cao13jf/CShaperApp) and is executable on Windows, macOS, and Linux operating systems.

Funder

National Natural Science Foundation of China

Publisher

Wiley

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