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Automated reconstruction of whole-embryo cell lineages by learning from sparse annotations

By: Contributor(s): Publication details: Nature Publishing Group US, 2022-09-05.Subject(s): Genre/Form: Online resources: Summary: We present a method to automatically identify and track nuclei in time-lapse microscopy recordings of entire developing embryos. The method combines deep learning and global optimization. On a mouse dataset, it reconstructs 75.8% of cell lineages spanning 1 h, as compared to 31.8% for the competing method. Our approach improves understanding of where and when cell fate decisions are made in developing embryos, tissues, and organs.
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/pmc/articles/PMC7614077/

/pubmed/36065022

We present a method to automatically identify and track nuclei in time-lapse microscopy recordings of entire developing embryos. The method combines deep learning and global optimization. On a mouse dataset, it reconstructs 75.8% of cell lineages spanning 1 h, as compared to 31.8% for the competing method. Our approach improves understanding of where and when cell fate decisions are made in developing embryos, tissues, and organs.

© The Author(s) 2022

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