Abstract
AbstractNeural progenitor cells within the cerebral cortex undergo a characteristic switch between symmetric self-renewing cell divisions early in development and asymmetric neurogenic divisions later. Yet, the mechanisms controlling this transition remain unclear. Previous work has shown that early but not late neural progenitor cells (NPCs) endogenously express the autism-linked transcription factor Foxp1, and both loss and gain of Foxp1 function can alter NPC activity and fate choices. Here, we show that premature loss of Foxp1 upregulates transcriptional programs regulating angiogenesis, glycolysis, and cellular responses to hypoxia. These changes coincide with a premature destabilization of HIF-1α, an elevation in HIF-1α target genes, including Vegfa in NPCs, and precocious vascular network development. In vitro experiments demonstrate that stabilization of HIF-1α in Foxp1-deficient NPCs rescues the premature differentiation phenotype and restores NPC maintenance. Our data indicate that the endogenous decline in Foxp1 expression activates the HIF-1α transcriptional program leading to changes in the tissue environment adjacent to NPCs, which, in turn, might alter their self-renewal and neurogenic capacities.
Funder
American Epilepsy Society
Brain and Spine Research Institute, Weill Cornell Medicine/New York Presbyterian hospital
Glut1 Deficiency Foundation
HHS | NIH | National Institute of Neurological Disorders and Stroke
American Heart Association
Rose Hills Foundation
California Institute for Regenerative Medicine
NIH
NIH/NCI
HHS | NIH | Eunice Kennedy Shriver National Institute of Child Health and Human Development
UCLA Broad Stem Cell Research Center
Publisher
Springer Science and Business Media LLC