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新的度量标准揭示了秀丽隐杆线虫发育中的新结构和未被重视的异质性。

Novel metrics reveal new structure and unappreciated heterogeneity in Caenorhabditis elegans development.

机构信息

Department of Molecular, Cell and Developmental Biology, University of California, Los Angeles, California, United States of America.

Department of Integrative Biology and Physiology, University of California, Los Angeles, California, United States of America.

出版信息

PLoS Comput Biol. 2023 Dec 19;19(12):e1011733. doi: 10.1371/journal.pcbi.1011733. eCollection 2023 Dec.

Abstract

High throughput experimental approaches are increasingly allowing for the quantitative description of cellular and organismal phenotypes. Distilling these large volumes of complex data into meaningful measures that can drive biological insight remains a central challenge. In the quantitative study of development, for instance, one can resolve phenotypic measures for single cells onto their lineage history, enabling joint consideration of heritable signals and cell fate decisions. Most attempts to analyze this type of data, however, discard much of the information content contained within lineage trees. In this work we introduce a generalized metric, which we term the branch edit distance, that allows us to compare any two embryos based on phenotypic measurements in individual cells. This approach aligns those phenotypic measurements to the underlying lineage tree, providing a flexible and intuitive framework for quantitative comparisons between, for instance, Wild-Type (WT) and mutant developmental programs. We apply this novel metric to data on cell-cycle timing from over 1300 WT and RNAi-treated Caenorhabditis elegans embryos. Our new metric revealed surprising heterogeneity within this data set, including subtle batch effects in WT embryos and dramatic variability in RNAi-induced developmental phenotypes, all of which had been missed in previous analyses. Further investigation of these results suggests a novel, quantitative link between pathways that govern cell fate decisions and pathways that pattern cell cycle timing in the early embryo. Our work demonstrates that the branch edit distance we propose, and similar metrics like it, have the potential to revolutionize our quantitative understanding of organismal phenotype.

摘要

高通量实验方法越来越能够定量描述细胞和生物体的表型。将这些大量复杂的数据转化为有意义的度量标准,以推动生物学洞察力的发展仍然是一个核心挑战。例如,在发育的定量研究中,可以将单个细胞的表型度量值解析到它们的谱系历史上,从而可以共同考虑遗传信号和细胞命运决定。然而,大多数分析这种类型数据的尝试都丢弃了谱系树中包含的大部分信息内容。在这项工作中,我们引入了一种广义度量标准,我们称之为分支编辑距离,它允许我们根据单个细胞中的表型测量值来比较任何两个胚胎。这种方法将这些表型测量值与基础的谱系树对齐,为 WT 和突变发育程序之间的定量比较提供了灵活直观的框架。我们将这种新的度量标准应用于超过 1300 个 WT 和 RNAi 处理的秀丽隐杆线虫胚胎的细胞周期计时数据。我们的新度量标准揭示了该数据集内令人惊讶的异质性,包括 WT 胚胎中的微妙批次效应和 RNAi 诱导的发育表型的巨大可变性,所有这些在以前的分析中都被忽略了。对这些结果的进一步研究表明,在早期胚胎中决定细胞命运的途径和调节细胞周期计时的途径之间存在一种新颖的、定量的联系。我们的工作表明,我们提出的分支编辑距离,以及类似的度量标准,有可能彻底改变我们对生物体表型的定量理解。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/94be/10763962/6167a6d06095/pcbi.1011733.g001.jpg

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