Search engine for discovering works of Art, research articles, and books related to Art and Culture
ShareThis
Javascript must be enabled to continue!

Piezo1‐Mediated Mechanotransduction Contributes to Disturbed Flow‐Induced Atherosclerotic Endothelial Inflammation

View through CrossRef
Background Disturbed flow generates oscillatory shear stress (OSS), which in turn leads to endothelial inflammation and atherosclerosis. Piezo1, a biomechanical force sensor, plays a crucial role in the cardiovascular system. However, the specific role of Piezo1 in atherosclerosis remains to be fully elucidated. Methods and Results We detected the expression of Piezo1 in atherosclerotic mice and endothelial cells from regions with disturbed blood flow. The pharmacological inhibitor Piezo1 inhibitor (GsMTx4) was used to evaluate the impact of Piezo1 on plaque progression and endothelial inflammation. We examined Piezo1's direct response to OSS in vitro and its effects on endothelial inflammation. Furthermore, mechanistic studies were conducted to explore the potential molecular cascade through which Piezo1 mediates endothelial inflammation in response to OSS. Our findings revealed the upregulation of Piezo1 in apoE−/− (apolipoprotein E) atherosclerotic mice, which is associated with disturbed flow. Treatment with GsMTx4 not only delayed plaque progression but also mitigated endothelial inflammation in both chronic and disturbed flow‐induced atherosclerosis. Piezo1 was shown to facilitate calcium ions (Ca 2 + ) influx in response to OSS, thereby activating endothelial inflammation. This inflammatory response was attenuated in the absence of Piezo1. Additionally, we identified that under OSS, Piezo1 activates the Ca 2 + /CaM/CaMKII (calmodulin/calmodulin‐dependent protein kinases Ⅱ) pathways, which subsequently stimulate downstream kinases FAK (focal adhesion kinase) and Src. This leads to the activation of the OSS‐sensitive YAP (yes‐associated protein), ultimately triggering endothelial inflammation. Conclusions Our study highlights the key role of Piezo1 in atherosclerotic endothelial inflammation, proposing the Piezo1–Ca 2+ /CaM/CaMKII‐FAK/Src‐YAP axis as a previously unknown endothelial mechanotransduction pathway. Piezo1 is expected to become a potential therapeutic target for atherosclerosis and cardiovascular diseases.
Title: Piezo1‐Mediated Mechanotransduction Contributes to Disturbed Flow‐Induced Atherosclerotic Endothelial Inflammation
Description:
Background Disturbed flow generates oscillatory shear stress (OSS), which in turn leads to endothelial inflammation and atherosclerosis.
Piezo1, a biomechanical force sensor, plays a crucial role in the cardiovascular system.
However, the specific role of Piezo1 in atherosclerosis remains to be fully elucidated.
Methods and Results We detected the expression of Piezo1 in atherosclerotic mice and endothelial cells from regions with disturbed blood flow.
The pharmacological inhibitor Piezo1 inhibitor (GsMTx4) was used to evaluate the impact of Piezo1 on plaque progression and endothelial inflammation.
We examined Piezo1's direct response to OSS in vitro and its effects on endothelial inflammation.
Furthermore, mechanistic studies were conducted to explore the potential molecular cascade through which Piezo1 mediates endothelial inflammation in response to OSS.
Our findings revealed the upregulation of Piezo1 in apoE−/− (apolipoprotein E) atherosclerotic mice, which is associated with disturbed flow.
Treatment with GsMTx4 not only delayed plaque progression but also mitigated endothelial inflammation in both chronic and disturbed flow‐induced atherosclerosis.
Piezo1 was shown to facilitate calcium ions (Ca 2 + ) influx in response to OSS, thereby activating endothelial inflammation.
This inflammatory response was attenuated in the absence of Piezo1.
Additionally, we identified that under OSS, Piezo1 activates the Ca 2 + /CaM/CaMKII (calmodulin/calmodulin‐dependent protein kinases Ⅱ) pathways, which subsequently stimulate downstream kinases FAK (focal adhesion kinase) and Src.
This leads to the activation of the OSS‐sensitive YAP (yes‐associated protein), ultimately triggering endothelial inflammation.
Conclusions Our study highlights the key role of Piezo1 in atherosclerotic endothelial inflammation, proposing the Piezo1–Ca 2+ /CaM/CaMKII‐FAK/Src‐YAP axis as a previously unknown endothelial mechanotransduction pathway.
Piezo1 is expected to become a potential therapeutic target for atherosclerosis and cardiovascular diseases.

Related Results

Abstract TMP16: Mechanoreceptor Dysregulation Found In Human Intracerebral Aneurysms
Abstract TMP16: Mechanoreceptor Dysregulation Found In Human Intracerebral Aneurysms
Introduction: About 500,000 people worldwide die annually from ruptured intracranial aneurysms (IA). The pathophysiology of aneurysm formation is largely unknown. Piezo...
Adherent cell remodeling on micropatterns is modulated by Piezo1 channels
Adherent cell remodeling on micropatterns is modulated by Piezo1 channels
AbstractAdherent cells utilize local environmental cues to make decisions on their growth and movement. We have previously shown that HEK293 cells grown on the fibronectin stripe p...
Ion channel Piezo1 activation promotes aerobic glycolysis in macrophages
Ion channel Piezo1 activation promotes aerobic glycolysis in macrophages
Altered microenvironmental stiffness is a hallmark of inflammation. It is sensed by the mechanically activated cation channel Piezo1 in macrophages to induce subsequent immune resp...
PIEZO1 Drives Trophoblast Fusion and Placental Development
PIEZO1 Drives Trophoblast Fusion and Placental Development
AbstractPIEZO1, a mechanosensor1,2in endothelial cells, plays a critical role in fetal vascular development during embryogenesis3,4. However, its expression and function in placent...
Roles of Mechanosensitive Channel Piezo1 in Wound Healing and Scar Formation
Roles of Mechanosensitive Channel Piezo1 in Wound Healing and Scar Formation
The ability to heal one’s wounds is perhaps one of the most fundamental and critical of physiologic processes. This coordinated and closely regulated sequential biological process ...
Breast Cancer Susceptibility Gene 2 Deficiency Exacerbates Angiotensin‐II‐induced Endothelial Dysfunction and Apoptosis
Breast Cancer Susceptibility Gene 2 Deficiency Exacerbates Angiotensin‐II‐induced Endothelial Dysfunction and Apoptosis
BackgroundGerm‐line mutations in the tumour suppressor genes BRCA1 and BRCA2 (BReast CAncer susceptibility genes 1 & 2) predispose carriers to breast cancer. BRCA1 and BRCA2 he...
Mechanotransduction at the Plasma Membrane-Cytoskeleton Interface
Mechanotransduction at the Plasma Membrane-Cytoskeleton Interface
Mechanical cues are crucial for survival, adaptation, and normal homeostasis in virtually every cell type. The transduction of mechanical messages into intracellular biochemical me...
Stimulation of Piezo1 by mechanical signals promotes bone anabolism
Stimulation of Piezo1 by mechanical signals promotes bone anabolism
Mechanical loading, such as caused by exercise, stimulates bone formation by osteoblasts and increases bone strength, but the mechanisms are poorly understood. Osteocytes reside in...

Back to Top