Single‐cell analysis of lymphatic endothelial cell fate specification and differentiation during zebrafish development

Author:

Grimm Lin123ORCID,Mason Elizabeth12ORCID,Yu Hujun12,Dudczig Stefanie12ORCID,Panara Virginia4ORCID,Chen Tyrone12ORCID,Bower Neil I3,Paterson Scott123,Rondon Galeano Maria12,Kobayashi Sakurako12ORCID,Senabouth Anne35ORCID,Lagendijk Anne K3ORCID,Powell Joseph3567,Smith Kelly A8,Okuda Kazuhide S12ORCID,Koltowska Katarzyna4ORCID,Hogan Benjamin M1238ORCID

Affiliation:

1. Organogenesis and Cancer Program Peter MacCallum Cancer Centre Melbourne VIC Australia

2. Sir Peter MacCallum Department of Oncology University of Melbourne Melbourne VIC Australia

3. Division of Genomics of Development and Disease, Institute for Molecular Bioscience The University of Queensland, St Lucia Brisbane QLD Australia

4. Department of Immunology, Genetics and Pathology Uppsala University Uppsala Sweden

5. Garvan Institute of Medical Research Sydney NSW Australia

6. School of Medical Sciences University of New South Wales, Kensington Sydney NSW Australia

7. Garvan‐Weizmann Centre for Cellular Genomics, Garvan Institute of Medical Research Sydney NSW Australia

8. Department of Anatomy and Physiology University of Melbourne Melbourne VIC Australia

Abstract

AbstractDuring development, the lymphatic vasculature forms as a second network derived chiefly from blood vessels. The transdifferentiation of embryonic venous endothelial cells (VECs) into lymphatic endothelial cells (LECs) is a key step in this process. Specification, differentiation and maintenance of LEC fate are all driven by the transcription factor Prox1, yet the downstream mechanisms remain to be elucidated. We here present a single‐cell transcriptomic atlas of lymphangiogenesis in zebrafish, revealing new markers and hallmarks of LEC differentiation over four developmental stages. We further profile single‐cell transcriptomic and chromatin accessibility changes in zygotic prox1a mutants that are undergoing a LEC‐VEC fate shift. Using maternal and zygotic prox1a/prox1b mutants, we determine the earliest transcriptomic changes directed by Prox1 during LEC specification. This work altogether reveals new downstream targets and regulatory regions of the genome controlled by Prox1 and presents evidence that Prox1 specifies LEC fate primarily by limiting blood vascular and haematopoietic fate. This extensive single‐cell resource provides new mechanistic insights into the enigmatic role of Prox1 and the control of LEC differentiation in development.

Funder

National Health and Medical Research Council

Publisher

Springer Science and Business Media LLC

Subject

General Immunology and Microbiology,General Biochemistry, Genetics and Molecular Biology,Molecular Biology,General Neuroscience

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