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Citations to this article

c-Abl regulates YAPY357 phosphorylation to activate endothelial atherogenic responses to disturbed flow
Bochuan Li, … , Yi Zhu, Ding Ai
Bochuan Li, … , Yi Zhu, Ding Ai
Published January 10, 2019
Citation Information: J Clin Invest. 2019;129(3):1167-1179. https://doi.org/10.1172/JCI122440.
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Research Article Vascular biology Article has an altmetric score of 2

c-Abl regulates YAPY357 phosphorylation to activate endothelial atherogenic responses to disturbed flow

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Abstract

Local flow patterns determine the uneven distribution of atherosclerotic lesions. This research aims to elucidate the mechanism of regulation of nuclear translocation of Yes-associated protein (YAP) under oscillatory shear stress (OSS) in the atheroprone phenotype of endothelial cells (ECs). We report here that OSS led to tyrosine phosphorylation and strong, continuous nuclear translocation of YAP in ECs that is dependent on integrin α5β1 activation. YAP overexpression in ECs blunted the anti-atheroprone effect of an integrin α5β1–blocking peptide (ATN161) in Apoe–/– mice. Activation of integrin α5β1 induced tyrosine, but not serine, phosphorylation of YAP in ECs. Blockage of integrin α5β1 with ATN161 abolished the phosphorylation of YAP at Y357 induced by OSS. Mechanistic studies showed that c-Abl inhibitor attenuated the integrin α5β1–induced YAP tyrosine phosphorylation. Furthermore, the phosphorylation of c-Abl and YAPY357 was significantly increased in ECs in atherosclerotic vessels of mice and in human plaques versus normal vessels. Finally, bosutinib, a tyrosine kinase inhibitor, markedly reduced the level of YAPY357 and the development of atherosclerosis in Apoe–/– mice. The c-Abl/YAPY357 pathway serves as a mechanism for the activation of integrin α5β1 and the atherogenic phenotype of ECs in response to OSS, and provides a potential therapeutic strategy for atherogenesis.

Authors

Bochuan Li, Jinlong He, Huizhen Lv, Yajin Liu, Xue Lv, Chenghu Zhang, Yi Zhu, Ding Ai

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Total citations by year

Year: 2025 2024 2023 2022 2021 2020 2019 Total
Citations: 11 11 19 10 12 7 4 74
Citation information
This citation data is accumulated from CrossRef, which receives citation information from participating publishers, including this journal. Not all publishers participate in CrossRef, so this information is not comprehensive. Additionally, data may not reflect the most current citations to this article, and the data may differ from citation information available from other sources (for example, Google Scholar, Web of Science, and Scopus).

Citations to this article in year 2023 (19)

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Yes-Associated Protein and Transcriptional Coactivator with PDZ-Binding Motif in Cardiovascular Diseases.
Li R, Huang W
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Sun Y, Gao Y, Zhou L, Lu Y, Zong Y, Zhu H, Tang Y, Zheng F, Sun Y, Li Y
2023
YAP-galectin-3 signaling mediates endothelial dysfunction in angiotensin II-induced hypertension in mice.
Pang ZD, Sun X, Bai RY, Han MZ, Zhang YJ, Wu W, Zhang Y, Lai BC, Zhang Y, Wang Y, Du XJ, Deng XL
Cellular and molecular life sciences : CMLS 2023
3-Phosphoinositide-dependent kinase 1 drives acquired resistance to osimertinib
Meraz IM, Majidi M, Fang B, Meng F, Gao L, Shao R, Song R, Li F, Lissanu Y, Chen H, Ha MJ, Wang Q, Wang J, Shpall E, Jung SY, Haderk F, Gui P, Riess JW, Olivas V, Bivona TG, Roth JA
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Thioridazine protects against disturbed flow-induced atherosclerosis by inhibiting RhoA/YAP-mediated endothelial inflammation.
Jiang MC, Ding HY, Huang YH, Cheng CK, Lau CW, Xia Y, Yao XQ, Wang L, Huang Y
Acta Pharmacologica Sinica 2023
Flow-induced reprogramming of endothelial cells in atherosclerosis.
Tamargo IA, Baek KI, Kim Y, Park C, Jo H
Nature reviews. Cardiology 2023
Plexin D1 mediates disturbed flow-induced M1 macrophage polarization in atherosclerosis
Zhang S, Zhang Y, Zhang P, Wei Z, Ma M, Wang W, Tong W, Tian F, Hui H, Tian J, Chen Y
Heliyon 2023
Endothelial mechanobiology in atherosclerosis.
Wang X, Shen Y, Shang M, Liu X, Munn LL
Cardiovascular Research 2023
Activation of Piezo1 promotes osteogenic differentiation of aortic valve interstitial cell through YAP-dependent glutaminolysis
Zhong G, Su S, Li J, Zhao H, Hu D, Chen J, Li S, Lin Y, Wen L, Lin X, Xian G, Xu D, Zeng Q
Science Advances 2023
YAP at the Crossroads of Biomechanics and Drug Resistance in Human Cancer.
Huang M, Wang H, Mackey C, Chung MC, Guan J, Zheng G, Roy A, Xie M, Vulpe C, Tang X
International journal of molecular sciences 2023
DNMT1 mediates the disturbed flow-induced endothelial to mesenchymal transition through disrupting β-alanine and carnosine homeostasis
Zhao J, Zhao C, Yang F, Jiang Z, Zhu J, Yao W, Pang W, Zhou J
Theranostics 2023
YAP nuclear translocation promotes anabolic activity in human articular chondrocytes
Cui Y, Miao MZ, Wang M, Su QP, Qiu K, Arbeeva L, Chubinskaya S, Diekman BO, Loeser RF
Osteoarthritis and Cartilage 2023
Impact of Low Shear Stress Preconditioning on Endothelial Cell Traction and Alignment in Response to High Shear Stress
Chandurkar MK, Mittal N, Royer-Weeden SP, Lehmann SD, Han SJ
2023
Modulation of the hippo-YAP pathway by cyclic stretch in rat type 2 alveolar epithelial cells—a proof-of-concept study
Ran X, Müller S, Brunssen C, Huhle R, Scharffenberg M, Schnabel C, Koch T, Gama de Abreu M, Morawietz H, Ferreira JM, Wittenstein J
Frontiers in physiology 2023
Nuclear mechanosensing of the aortic endothelium in health and disease
Mannion AJ, Holmgren L
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Myeloid SENP3 deficiency protects mice from diet and age-induced obesity via regulation of YAP1 SUMOylation.
Jiang Y, Liang M, Chen L, Wang J, Huang Y, Huo H, Xiao D, Hu Y, Wang Z, Ji Q, Li Y, Cai Z, He B
Cellular and molecular life sciences : CMLS 2023

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