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Biology subjects

Coon, B. G.

Publications and source records attributed to Coon, B. G..

4 recordsLinked to original sources

A transcriptional code controlling fluid shear stress-induced gene expression

The formation and health of the vascular system is dependent on fluid shear stress (FSS), a hemodynamic force exerted onto endothelium by flowing blood. FSS strongly induces the endothelial expression of Kruppel-like factor 2 (KLF2), an atheroprotective TF essential for vascular development and homeostasis. Despite its early and crucial role in the cascade of cardiovascular events triggered by FSS, the transcriptional mechanisms by which FSS regulates KLF2 expression remain unclear, although they are known to involve the widely expressed MEF2 proteins. Here, we identified and characterized two FSS-dependent enhancers for KLF2 which collectively recapitulate endogenous endothelial KLF2 expression, and determined the TFs contributing to their regulation. This analysis identified an essential and precisely spaced MEF2-TBP double motif also shared by the FSS-sensitive KLF2 promoter. MEF-TBP double motifs are extremely rare across the genome but were also found within regulatory elements of three other FSS-induced KLF genes, including KLF4. Although normally part of the basal transcriptional machinery, TBP specifically bound all KLF elements at the MEF-TBP double motifs in a FSS-dependent manner. Collectively, this work demonstrates a specific and targetable requirement for combined MEF2-TBP binding during FSS-induced gene activation. Significance statementBlood flow induces a force known as fluid shear stress (FSS) which is required for vascular development and for the health of the mature arterial system. One of the first endothelial responses to FSS is the induction of Kruppel-like transcription factors (KLFs). However, the mechanisms by which FSS activates KLF gene expression are incompletely understood. In this paper, we characterized all regulatory elements involved in driving FSS-induced expression of KLF2. This identified an essential MEF2-TBP double motif that was extremely rare across the genome, yet found within regulatory elements for multiple FSS-responsive KLF genes including KLF2 and KLF4. This MEF2- and TBP-bound motif therefore enables blood flow to specifically activate the cascade of cardiovascular responses necessary for atheroprotective gene expression.

developmental biology↗

Endothelial RIPK3 minimizes organotypic inflammation and vascular permeability in ischemia-reperfusion injury

Recent studies have revealed a link between endothelial receptor-interacting protein kinase 3 (RIPK3) and vascular integrity. During mouse embryonic development, hypoxia can trigger elevated endothelial RIPK3 that contributes to lethal vascular rupture. However, it is unknown whether RIPK3 regulate endothelial barrier function in adult vasculature under hypoxic injury conditions such as ischemia-reperfusion (I/R) injury. Here we performed inducible genetic deletion of endothelial Ripk3 (RipkiECKO) in mice, which led to elevated vascular permeability in the small intestine and multiple distal organs after intestinal I/R injury. Mechanistically, this vascular permeability correlated with increased endothelial secretion of IL-6 and organ-specific expression of VCAM-1 and ICAM-1 adhesion molecules. Circulating monocyte depletion with clodronate liposomes reduced permeability in organs with elevated adhesion molecules, highlighting the contribution of monocyte adhesion and extravasation to RipkiECKO barrier dysfunction. These results elucidate mechanisms by which RIPK3 regulates endothelial inflammation to minimize vascular permeability in I/R injury. GRAPHICAL ABSTRACT O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=185 SRC="FIGDIR/small/625188v1_ufig1.gif" ALT="Figure 1"> View larger version (37K): org.highwire.dtl.DTLVardef@1b3ef3forg.highwire.dtl.DTLVardef@201e47org.highwire.dtl.DTLVardef@a402e0org.highwire.dtl.DTLVardef@1b8f5cb_HPS_FORMAT_FIGEXP M_FIG C_FIG

pathology↗

VEGF counteracts shear stress-determined arterial fate specification during capillary remodeling.

Postnatal vascular morphogenesis is a dynamic process that initially involves angiogenesis to form the capillary bed, followed by its partial remodeling into arteries. Vascular endothelial growth factor A (VEGF hereafter), the primary inducer of angiogenesis, is also implicated in arterial specification in developmental contexts. However, it is unclear why arterial patterning is spatiotemporally segregated from angiogenesis, while postnatal arterial specification in animal models with blocked VEGF signaling remains unstudied. Here, we report that VEGF does not induce arterial fate in the capillaries, instead serving as a physiological brake to attenuate fluid shear stress (FSS)-driven capillary-to-arterial cell fate transition. Mouse models with disrupted VEGF signaling reveal impaired angiogenesis but intact and ectopic arterialization. Mechanistically, mechanosensitive transcription factor Sox17 determines the FSS-arterial program, while VEGF suppresses Sox17 transcription activity at arterial promoters and enhancers sites. Angiogenic signaling, while essential for the initial capillary morphogenesis, inhibits arterial specification, thereby protecting the capillary bed from premature arterialization driven by flow. These findings establish a new paradigm in which precise spatiotemporal coordination of environmental stimuli orchestrates angiogenesis, arterial patterning and capillary maintenance during vascular morphogenesis.

developmental biology↗

Gamma protocadherins in vascular endothelial cells inhibit Klf2/4 to promote atherosclerosis

Atherosclerotic cardiovascular disease (ASCVD) is the leading cause of mortality worldwide1. Laminar shear stress (LSS) from blood flow in straight regions of arteries protects against ASCVD by upregulating the Klf2/4 anti-inflammatory program in endothelial cells (ECs)2-8. Conversely, disturbed shear stress (DSS) at curves or branches predisposes these regions to plaque formation9,10. We previously reported a whole genome CRISPR knockout screen11 that identified novel inducers of Klf2/4. Here we report suppressors of Klf2/4 and characterize one candidate, protocadherin gamma A9 (Pcdhga9), a member of the clustered protocadherin gene family12. Pcdhg deletion increases Klf2/4 levels in vitro and in vivo and suppresses inflammatory activation of ECs. Pcdhg suppresses Klf2/4 by inhibiting the Notch pathway via physical interaction of cleaved Notch1 intracellular domain (NICD Val1744) with nuclear Pcdhg C-terminal constant domain (CCD). Pcdhg inhibition by EC knockout (KO) or blocking antibody protects from atherosclerosis. Pcdhg is elevated in the arteries of human atherosclerosis. This study identifies a novel fundamental mechanism of EC resilience and therapeutic target for treating inflammatory vascular disease.

cell biology↗