Late fetal hematopoietic failure results from ZBTB11 deficiency despite abundant HSC specification

Author:

Cao Huimin12,Naik Shalin H.345ORCID,Amann-Zalcenstein Daniela456ORCID,Hickey Peter456ORCID,Salim Agus78ORCID,Cao Benjamin12ORCID,Nilsson Susan K.12,Keightley M. Cristina1910ORCID,Lieschke Graham J.1ORCID

Affiliation:

1. 1Australian Regenerative Medicine Institute, Monash University, Clayton, VIC, Australia

2. 2Biomedical Manufacturing, Commonwealth Scientific and Industrial Research Organisation, Clayton, VIC, Australia

3. 3Department of Immunology, The Walter and Eliza Hall Institute of Medical Research, Parkville, VIC, Australia

4. 4Single Cell Open Research Endeavour, The Walter and Eliza Hall Institute of Medical Research, Parkville, VIC, Australia

5. 5Department of Medical Biology, University of Melbourne, Parkville, VIC, Australia

6. 6Advanced Genomics Facility, Advanced Technology and Biology Division, The Walter and Eliza Hall Institute of Medical Research, Parkville, VIC, Australia

7. 7Mathematics and Statistics, La Trobe University, Bundoora, VIC, Australia

8. 8Melbourne School of Population and Global Health, School of Mathematics and Statistics, University of Melbourne, Parkville, VIC, Australia

9. 9La Trobe Institute for Molecular Science, La Trobe University, Bundoora, VIC, Australia

10. 10Rural Clinical Sciences, La Trobe Rural Health School, Bendigo, VIC, Australia

Abstract

Abstract Hematopoiesis produces diverse blood cell lineages to meet the basal needs and sudden demands of injury or infection. A rapid response to such challenges requires the expansion of specific lineages and a prompt return to balanced steady-state levels, necessitating tightly coordinated regulation. Previously we identified a requirement for the zinc finger and broad complex, tramtrak, bric-a-brac domain–containing 11 (ZBTB11) transcription factor in definitive hematopoiesis using a forward genetic screen for zebrafish myeloid mutants. To understand its relevance to mammalian systems, we extended these studies to mice. When Zbtb11 was deleted in the hematopoietic compartment, embryos died at embryonic day (E) 18.5 with hematopoietic failure. Zbtb11 hematopoietic knockout (Zbtb11hKO) hematopoietic stem cells (HSCs) were overabundantly specified from E14.5 to E17.5 compared with those in controls. Overspecification was accompanied by loss of stemness, inability to differentiate into committed progenitors and mature lineages in the fetal liver, failure to seed fetal bone marrow, and total hematopoietic failure. The Zbtb11hKO HSCs did not proliferate in vitro and were constrained in cell cycle progression, demonstrating the cell-intrinsic role of Zbtb11 in proliferation and cell cycle regulation in mammalian HSCs. Single-cell RNA sequencing analysis identified that Zbtb11-deficient HSCs were underrepresented in an erythroid-primed subpopulation and showed downregulation of oxidative phosphorylation pathways and dysregulation of genes associated with the hematopoietic niche. We identified a cell-intrinsic requirement for Zbtb11-mediated gene regulatory networks in sustaining a pool of maturation-capable HSCs and progenitor cells.

Publisher

American Society of Hematology

Subject

Hematology

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