Endothelial MEKK3-KLF2/4 signaling integrates inflammatory and hemodynamic signals during definitive hematopoiesis

Author:

Yang Yiqing1,Mumau Melanie2ORCID,Tober Joanna2,Zhu Qin345ORCID,Bennett Laura2ORCID,Hong Courtney1,Sung Derek1ORCID,Keller Thomas1ORCID,Uzun Yasin34ORCID,Gao Peng34ORCID,Shewale Swapnil1,Chen Mei1,Yang Jisheng1,Chen Xiaowen1,Thomas Steven A.6,Tan Kai34ORCID,Speck Nancy A.2ORCID,Kahn Mark L.1

Affiliation:

1. Department of Medicine and Cardiovascular Institute,

2. Department of Cell and Developmental Biology and Abramson Family Cancer Research Institute,

3. Department of Pediatrics,

4. Department of Cell Biology and Genetics,

5. Genomics and Computational Biology Graduate Group, and

6. Department of Pharmacology, University of Pennsylvania, Philadelphia, PA

Abstract

Abstract The hematopoietic stem cells (HSCs) that produce blood for the lifetime of an animal arise from RUNX1+ hemogenic endothelial cells (HECs) in the embryonic vasculature through a process of endothelial-to-hematopoietic transition (EHT). Studies have identified inflammatory mediators and fluid shear forces as critical environmental stimuli for EHT, raising the question of how such diverse inputs are integrated to drive HEC specification. Endothelial cell MEKK3-KLF2/4 signaling can be activated by both fluid shear forces and inflammatory mediators, and it plays roles in cardiovascular development and disease that have been linked to both stimuli. Here we demonstrate that MEKK3 and KLF2/4 are required in endothelial cells for the specification of RUNX1+ HECs in both the yolk sac and dorsal aorta of the mouse embryo and for their transition to intraaortic hematopoietic cluster (IAHC) cells. The inflammatory mediators lipopolysaccharide and interferon-γ increase RUNX1+ HECs in an MEKK3-dependent manner. Maternal administration of catecholamines that stimulate embryo cardiac function and accelerate yolk sac vascular remodeling increases EHT by wild-type but not MEKK3-deficient endothelium. These findings identify MEKK-KLF2/4 signaling as an essential pathway for EHT and provide a molecular basis for the integration of diverse environmental inputs, such as inflammatory mediators and hemodynamic forces, during definitive hematopoiesis.

Publisher

American Society of Hematology

Subject

Cell Biology,Hematology,Immunology,Biochemistry

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