Literature DB >> 34463740

Developmental single-cell transcriptomics in the Lytechinus variegatus sea urchin embryo.

Abdull J Massri1, Laura Greenstreet2, Anton Afanassiev2, Alejandro Berrio1, Gregory A Wray1, Geoffrey Schiebinger2, David R McClay1.   

Abstract

Using scRNA-seq coupled with computational approaches, we studied transcriptional changes in cell states of sea urchin embryos during development to the larval stage. Eighteen closely spaced time points were taken during the first 24 h of development of Lytechinus variegatus (Lv). Developmental trajectories were constructed using Waddington-OT, a computational approach to 'stitch' together developmental time points. Skeletogenic and primordial germ cell trajectories diverged early in cleavage. Ectodermal progenitors were distinct from other lineages by the 6th cleavage, although a small percentage of ectoderm cells briefly co-expressed endoderm markers that indicated an early ecto-endoderm cell state, likely in cells originating from the equatorial region of the egg. Endomesoderm cells also originated at the 6th cleavage and this state persisted for more than two cleavages, then diverged into distinct endoderm and mesoderm fates asynchronously, with some cells retaining an intermediate specification status until gastrulation. Seventy-nine out of 80 genes (99%) examined, and included in published developmental gene regulatory networks (dGRNs), are present in the Lv-scRNA-seq dataset and are expressed in the correct lineages in which the dGRN circuits operate.
© 2021. Published by The Company of Biologists Ltd.

Entities:  

Keywords:  Cell lineage; Gene regulatory networks; Sea urchin embryo; scRNA-seq

Mesh:

Year:  2021        PMID: 34463740      PMCID: PMC8502253          DOI: 10.1242/dev.198614

Source DB:  PubMed          Journal:  Development        ISSN: 0950-1991            Impact factor:   6.862


  85 in total

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  6 in total

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