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1.
J Cell Sci ; 2024 Aug 14.
Article in English | MEDLINE | ID: mdl-39143856

ABSTRACT

Fluid shear stress (FSS) from blood flow, sensed by the vascular endothelial cells (ECs) that line all blood vessels, regulates vascular development during embryogenesis, controls adult vascular physiology and determines the location of atherosclerotic plaque formation. While a number of papers that reported a critical role for cell-cell adhesions or adhesion receptors in these processes, a recent publication challenged this paradigm, presenting evidence that ECs can very rapidly align in fluid flow as single cells without cell-cell contacts. To address this controversy, four independent laboratories assessed EC alignment in fluid flow across a range of EC cell types. These studies demonstrate a strict requirement for cell-cell contact in shear stress sensing over timescales consistent with previous literature and inconsistent with the newly published data.

2.
Arterioscler Thromb Vasc Biol ; 43(4): 547-561, 2023 04.
Article in English | MEDLINE | ID: mdl-36794585

ABSTRACT

BACKGROUND: Hemodynamic wall shear stress (WSS) exerted on the endothelium by flowing blood determines the spatial distribution of atherosclerotic lesions. Disturbed flow (DF) with a low WSS magnitude and reversing direction promotes atherosclerosis by regulating endothelial cell (EC) viability and function, whereas un-DF which is unidirectional and of high WSS magnitude is atheroprotective. Here, we study the role of EVA1A (eva-1 homolog A), a lysosome and endoplasmic reticulum-associated protein linked to autophagy and apoptosis, in WSS-regulated EC dysfunction. METHODS: The effect of WSS on EVA1A expression was studied using porcine and mouse aortas and cultured human ECs exposed to flow. EVA1A was silenced in vitro in human ECs and in vivo in zebrafish using siRNA (small interfering RNA) and morpholinos, respectively. RESULTS: EVA1A was induced by proatherogenic DF at both mRNA and protein levels. EVA1A silencing resulted in decreased EC apoptosis, permeability, and expression of inflammatory markers under DF. Assessment of autophagic flux using the autolysosome inhibitor, bafilomycin coupled to the autophagy markers LC3-II (microtubule-associated protein 1 light chain 3-II) and p62, revealed that EVA1A knockdown promotes autophagy when ECs are exposed to DF, but not un-DF . Blocking autophagic flux led to increased EC apoptosis in EVA1A-knockdown cells exposed to DF, suggesting that autophagy mediates the effects of DF on EC dysfunction. Mechanistically, EVA1A expression was regulated by flow direction via TWIST1 (twist basic helix-loop-helix transcription factor 1). In vivo, knockdown of EVA1A orthologue in zebrafish resulted in reduced EC apoptosis, confirming the proapoptotic role of EVA1A in the endothelium. CONCLUSIONS: We identified EVA1A as a novel flow-sensitive gene that mediates the effects of proatherogenic DF on EC dysfunction by regulating autophagy.


Subject(s)
Atherosclerosis , Zebrafish , Animals , Humans , Mice , Apoptosis , Atherosclerosis/pathology , Autophagy , Endothelium/metabolism , Swine , Zebrafish/genetics
3.
Sci Adv ; 8(35): eabo7958, 2022 09 02.
Article in English | MEDLINE | ID: mdl-36044575

ABSTRACT

Endothelial cell (EC) sensing of disturbed blood flow triggers atherosclerosis, a disease of arteries that causes heart attack and stroke, through poorly defined mechanisms. The Notch pathway plays a central role in blood vessel growth and homeostasis, but its potential role in sensing of disturbed flow has not been previously studied. Here, we show using porcine and murine arteries and cultured human coronary artery EC that disturbed flow activates the JAG1-NOTCH4 signaling pathway. Light-sheet imaging revealed enrichment of JAG1 and NOTCH4 in EC of atherosclerotic plaques, and EC-specific genetic deletion of Jag1 (Jag1ECKO) demonstrated that Jag1 promotes atherosclerosis at sites of disturbed flow. Mechanistically, single-cell RNA sequencing in Jag1ECKO mice demonstrated that Jag1 suppresses subsets of ECs that proliferate and migrate. We conclude that JAG1-NOTCH4 sensing of disturbed flow enhances atherosclerosis susceptibility by regulating EC heterogeneity and that therapeutic targeting of this pathway may treat atherosclerosis.


Subject(s)
Atherosclerosis , Jagged-1 Protein , Plaque, Atherosclerotic , Receptor, Notch4 , Animals , Atherosclerosis/genetics , Atherosclerosis/metabolism , Coronary Vessels/metabolism , Endothelial Cells/metabolism , Humans , Jagged-1 Protein/genetics , Jagged-1 Protein/metabolism , Mice , Plaque, Atherosclerotic/metabolism , Receptor, Notch4/genetics , Receptor, Notch4/metabolism , Signal Transduction , Swine
5.
Cardiovasc Res ; 116(7): 1300-1310, 2020 06 01.
Article in English | MEDLINE | ID: mdl-31504243

ABSTRACT

AIMS: Atherosclerosis develops near branches and bends of arteries that are exposed to disturbed blood flow which exerts low wall shear stress (WSS). These mechanical conditions alter endothelial cells (EC) by priming them for inflammation and by inducing turnover. Homeobox (Hox) genes are developmental genes involved in the patterning of embryos along their anterior-posterior and proximal-distal axes. Here we identified Hox genes that are regulated by WSS and investigated their functions in adult arteries. METHODS AND RESULTS: EC were isolated from inner (low WSS) and outer (high WSS) regions of the porcine aorta and the expression of Hox genes was analysed by quantitative real-time PCR. Several Hox genes (HoxA10, HoxB4, HoxB7, HoxB9, HoxD8, HoxD9) were significantly enriched at the low WSS compared to the high WSS region. Similarly, studies of cultured human umbilical vein EC (HUVEC) or porcine aortic EC revealed that the expression of multiple Hox genes (HoxA10, HoxB9, HoxD8, HoxD9) was enhanced under low (4 dyn/cm2) compared to high (13 dyn/cm2) WSS conditions. Gene silencing studies identified Hox genes (HoxB9, HoxD8, HoxD9) that are positive regulators of inflammatory molecule expression in EC exposed to low WSS, and others (HoxB9, HoxB7, HoxB4) that regulated EC turnover. We subsequently focused on HoxB9 because it was strongly up-regulated by low WSS and, uniquely, was a driver of both inflammation and proliferation. At a mechanistic level, we demonstrate using cultured EC and murine models that bone morphogenic protein 4 (BMP4) is an upstream regulator of HoxB9 which elicits inflammation via induction of numerous inflammatory mediators including TNF and downstream NF-κB activation. Moreover, the BMP4-HoxB9-TNF pathway was potentiated by hypercholesterolaemic conditions. CONCLUSIONS: Low WSS induces multiple Hox genes that control the activation state and turnover of EC. Notably, low WSS activates a BMP4-HoxB9-TNF signalling pathway to initiate focal arterial inflammation, thereby demonstrating integration of the BMP and Hox systems in vascular pathophysiology.


Subject(s)
Aorta, Thoracic/metabolism , Aortic Diseases/metabolism , Atherosclerosis/metabolism , Bone Morphogenetic Protein 4/metabolism , Homeodomain Proteins/metabolism , Human Umbilical Vein Endothelial Cells/metabolism , Inflammation/metabolism , Plaque, Atherosclerotic , Animals , Aorta, Thoracic/pathology , Aorta, Thoracic/physiopathology , Aortic Diseases/genetics , Aortic Diseases/pathology , Aortic Diseases/physiopathology , Atherosclerosis/genetics , Atherosclerosis/pathology , Atherosclerosis/physiopathology , Bone Morphogenetic Protein 4/genetics , Cells, Cultured , Disease Models, Animal , Homeodomain Proteins/genetics , Human Umbilical Vein Endothelial Cells/pathology , Humans , Inflammation/genetics , Inflammation/pathology , Inflammation/physiopathology , Mice, Inbred C57BL , Mice, Knockout, ApoE , Regional Blood Flow , Signal Transduction , Stress, Mechanical , Sus scrofa , Tumor Necrosis Factor-alpha/genetics , Tumor Necrosis Factor-alpha/metabolism
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