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Stimulation of vascular smooth muscle cell proliferation by stiff matrix via the IKCa channel‐dependent Ca2+ signaling.

Authors :
Jia, Xiaoling
Yang, Qingmao
Gao, Chao
Chen, Xinlan
Li, Yanan
Su, Hao
Zheng, Yufan
Zhang, Shuwen
Wang, Ziyu
Wang, Haikun
Jiang, Lin‐Hua
Sun, Yan
Fan, Yubo
Source :
Journal of Cellular Physiology. Oct2021, Vol. 236 Issue 10, p6897-6906. 10p.
Publication Year :
2021

Abstract

Vascular stiffening, an early and common characteristic of cardiovascular diseases (CVDs), stimulates vascular smooth muscle cell (VSMC) proliferation which reciprocally accelerates the progression of CVDs. However, the mechanisms by which extracellular matrix stiffness accompanying vascular stiffening regulates VSMC proliferation remain largely unknown. In the present study, we examined the role of the intermediate‐conductance Ca2+‐activated K+ (IKCa) channel in the matrix stiffness regulation of VSMC proliferation by growing A7r5 cells on soft and stiff polydimethylsiloxane substrates with stiffness close to these of arteries under physiological and pathological conditions, respectively. Stiff substrates stimulated cell proliferation and upregulated the expression of the IKCa channel. Stiff substrate‐induced cell proliferation was suppressed by pharmacological inhibition using TRAM34, an IKCa channel blocker, or genetic depletion of the IKCa channel. In addition, stiff substrate‐induced cell proliferation was also suppressed by reducing extracellular Ca2+ concentration using EGTA or intracellular Ca2+ concentration using BAPTA‐AM. Moreover, stiff substrate induced activation of extracellular signal‐regulated kinases (ERKs), which was inhibited by treatment with TRAM34 or BAPTA‐AM. Stiff substrate‐induced cell proliferation was suppressed by treatment with PD98059, an ERK inhibitor. Taken together, these results show that substrates with pathologically relevant stiffness upregulate the IKCa channel expression to enhance intracellular Ca2+ signaling and subsequent activation of the ERK signal pathway to drive cell proliferation. These findings provide a novel mechanism by which vascular stiffening regulates VSMC function. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
00219541
Volume :
236
Issue :
10
Database :
Academic Search Index
Journal :
Journal of Cellular Physiology
Publication Type :
Academic Journal
Accession number :
152096233
Full Text :
https://doi.org/10.1002/jcp.30349