4.7 Article

Glucose metabolism impacts the spatiotemporal onset and magnitude of HSC induction in vivo

Journal

BLOOD
Volume 121, Issue 13, Pages 2483-2493

Publisher

AMER SOC HEMATOLOGY
DOI: 10.1182/blood-2012-12-471201

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Funding

  1. Harvard Stem Cell Institute Blood Program
  2. National Institutes of Health National Institute of Diabetes and Digestive and Kidney Diseases (NIDDK) [5K01DK080226, 1R01DK090311]
  3. MRC [MC_U105663142, G0701932] Funding Source: UKRI
  4. Medical Research Council [MC_U105663142, G0701932] Funding Source: researchfish

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Many pathways regulating blood formation have been elucidated, yet how each coordinates with embryonic biophysiology to modulate the spatiotemporal production of hematopoietic stem cells (HSCs) is currently unresolved. Here, we report that glucose metabolism impacts the onset and magnitude of HSC induction in vivo. In zebrafish, transient elevations in physiological glucose levels elicited dose-dependent effects on HSC development, including enhanced runx1 expression and hematopoietic cluster formation in the aorta-gonad-mesonephros region; embryonic-to-adult transplantation studies confirmed glucose increased functional HSCs. Glucose uptake was required to mediate the enhancement in HSC development; likewise, metabolic inhibitors diminished nascent HSC production and reversed glucose-mediated effects on HSCs. Increased glucose metabolism preferentially impacted hematopoietic and vascular targets, as determined by gene expression analysis, through mitochondrial-derived reactive oxygen species (ROS)-mediated stimulation of hypoxia-inducible factor 1 alpha (hif1 alpha). Epistasis assays demonstrated that hif1 alpha regulates HSC formation in vivo and mediates the dose-dependent effects of glucose metabolism on the timing and magnitude of HSC production. We propose that this fundamental metabolic-sensing mechanism enables the embryo to respond to changes in environmental energy input and adjust hematopoietic output to maintain embryonic growth and ensure viability.

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