Literature DB >> 35588359

Single-cell transcriptome reveals insights into the development and function of the zebrafish ovary.

Michelle E Kossack1, Matthew E McFaul1, Yulong Liu1, Lana N Christensen1, Stefan Siebert1, Sydney R Wyatt1, Caramai N Kamei2, Samuel Horst1, Nayeli Arroyo1, Iain A Drummond2, Celina E Juliano1, Bruce W Draper1.   

Abstract

Zebrafish are an established research organism that has made many contributions to our understanding of vertebrate tissue and organ development, yet there are still significant gaps in our understanding of the genes that regulate gonad development, sex, and reproduction. Unlike the development of many organs, such as the brain and heart that form during the first few days of development, zebrafish gonads do not begin to form until the larval stage (≥5 days post-fertilization). Thus, forward genetic screens have identified very few genes required for gonad development. In addition, bulk RNA-sequencing studies that identify genes expressed in the gonads do not have the resolution necessary to define minor cell populations that may play significant roles in the development and function of these organs. To overcome these limitations, we have used single-cell RNA sequencing to determine the transcriptomes of cells isolated from juvenile zebrafish ovaries. This resulted in the profiles of 10,658 germ cells and 14,431 somatic cells. Our germ cell data represents all developmental stages from germline stem cells to early meiotic oocytes. Our somatic cell data represents all known somatic cell types, including follicle cells, theca cells, and ovarian stromal cells. Further analysis revealed an unexpected number of cell subpopulations within these broadly defined cell types. To further define their functional significance, we determined the location of these cell subpopulations within the ovary. Finally, we used gene knockout experiments to determine the roles of foxl2l and wnt9b for oocyte development and sex determination and/or differentiation, respectively. Our results reveal novel insights into zebrafish ovarian development and function, and the transcriptome profiles will provide a valuable resource for future studies.
© 2022, Liu et al.

Entities:  

Keywords:  Estrogen synthesis; developmental biology; foxl2l; germ cells; germline stem cells; ovary; sex determination; single-cell RNA sequencing; somatic gonad; wnt9b; zebrafish

Mesh:

Year:  2022        PMID: 35588359      PMCID: PMC9191896          DOI: 10.7554/eLife.76014

Source DB:  PubMed          Journal:  Elife        ISSN: 2050-084X            Impact factor:   8.713


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  1 in total

1.  Single-cell transcriptome reveals insights into the development and function of the zebrafish ovary.

Authors:  Michelle E Kossack; Matthew E McFaul; Yulong Liu; Lana N Christensen; Stefan Siebert; Sydney R Wyatt; Caramai N Kamei; Samuel Horst; Nayeli Arroyo; Iain A Drummond; Celina E Juliano; Bruce W Draper
Journal:  Elife       Date:  2022-05-19       Impact factor: 8.713

  1 in total

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