Cortistatin exerts antiproliferation and antimigration effects in vascular smooth muscle cells stimulated by Ang II through suppressing ERK1/2, p38 MAPK, JNK and ERK5 signaling pathways

被引:34
|
作者
Wang, Ying [1 ]
Zhang, Xin [1 ]
Gao, Lei [1 ]
Li, Jihe [1 ]
Chen, Wenjia [1 ]
Chi, Jinyu [1 ]
Zhang, Xiaohui [1 ]
Fu, Yu [1 ]
Zhao, Meng [1 ]
Liu, Na [1 ]
Li, Yang [1 ]
Xu, Yang [1 ]
Yang, Kelaier [2 ]
Yin, Xinhua [1 ]
Liu, Yue [1 ]
机构
[1] Harbin Med Univ, Affiliated Hosp 1, Dept Cardiol, 23 YouZheng St, Harbin 150001, Heilongjiang, Peoples R China
[2] Harbin Med Univ, Affiliated Hosp 1, Dept Endocrine, Harbin, Heilongjiang, Peoples R China
基金
中国国家自然科学基金;
关键词
Cortistatin (CST); angiotensin II (Ang II); vascular smooth muscle cells (VSMCs); proliferation; migration; mitogen-activated protein kinases (MAPK); ANGIOTENSIN-II; PROLIFERATION; PROTEIN; KINASE; ACTIVATION; MIGRATION; AKT;
D O I
10.21037/atm.2019.09.45
中图分类号
R73 [肿瘤学];
学科分类号
100214 ;
摘要
Background: Vascular remodeling, that contributes to cardiovascular diseases such as hypertension develops by anomalous proliferation and migration of vascular smooth muscle cells (VSMCs). Cortistatin (CST), a newly discovered biological peptide, has been acknowledged for its protective effects against cardiovascular diseases. Whether CST has an inhibitory regulation role in angiotensin II (Ang II)-induced proliferation and migration of VSMCs and what molecular mechanisms may participate in the CST inhibition process are still unknown. Methods: VSMCs were divided into control group, Ang II (10(-7 )M) group, Ang II + PD98059 (5x10(-5) M) group, Ang II + SB203580 (10(-5) M) group, Ang II + SP600125 (10(-5) M) group, Ang II + XMD17-109 (10(-6) M) group, Ang II + CST (10(-8) M) group and Ang II + CST (10(-7) M) group. Cell proliferation was detected by western blotting and cell counting kit-8 (CCK8) analysis. Migration of VSMCs was measured by Transwell assay. Results: Compared with control group, Ang II upregulated the expression levels of proliferating cell nuclear antigen (PCNA) and osteopontin (OPN) and downregulated that of a-smooth muscle actin (alpha-SMA), increased the proliferation rate as shown by CCK8 and VSMC migration as shown by Transwell assay in cultured VSMCs of the Ang II group. Meanwhile, in Ang II-cultured VSMCs, we found activation of extracellular signal-regulated kinase (ERK) 1/2, p38 MAP kinase (p38 MAPK), c-Jun N-terminal kinase (JNK), and ERK5 pathways by western blotting at different time points. However, the proliferation and migration stimulated by Ang II were partly reversed by drug inhibitors of the four pathways, namely, PD98059, SB203580, SP600125 and XMD17-109. When Ang II-stimulated VSMCs were cultured with CST pretreatment, we found that proliferation and migration were greatly suppressed as well as that the ERK1/2, p38 MAPK, JNK and ERK5 pathways were deactivated by CST. Conclusions: The accumulated data suggest that CST may play a protective role in Ang II-promoted proliferation and migration of VSMCs via inhibiting the mitogen-activated protein kinase (MAPK) family pathways, providing a new orientation of CST in protecting against cardiovascular diseases.
引用
收藏
页数:10
相关论文
共 50 条
  • [31] Artemisinin Attenuates Isoproterenol-induced Cardiac Hypertrophy via the ERK1/2 and p38 MAPK Signaling Pathways
    Song, Renxing
    Xiong, Chunming
    Bai, Juncai
    Bai, Zhenzhou
    Liu, Wei
    CURRENT MOLECULAR PHARMACOLOGY, 2024, 17
  • [32] Tanshinone IIA inhibits AGEs-induced proliferation and migration of cultured vascular smooth muscle cells by suppressing ERK1/2 MAPK signaling
    Lu, Ming
    Luo, Ying
    Hu, Pengfei
    Dou, Liping
    Huang, Shuwei
    IRANIAN JOURNAL OF BASIC MEDICAL SCIENCES, 2018, 21 (01) : 83 - 88
  • [33] Adiponectin regulates proliferation and differentiation of chicken skeletal muscle satellite cells via ERK1/2 and p38 signaling pathways
    Guo, Liping
    Jin, Kaiming
    Sun, Qi
    Zhang, Chenchao
    Chen, Xiongyong
    Geng, Zhaoyu
    POULTRY SCIENCE, 2025, 104 (02)
  • [34] BMP4 Increases Canonical Transient Receptor Potential Protein Expression by Activating p38 MAPK and ERK1/2 Signaling Pathways in Pulmonary Arterial Smooth Muscle Cells
    Li, Xiaoyan
    Lu, Wenju
    Fu, Xin
    Zhang, Yi
    Yang, Kai
    Zhong, Nanshan
    Ran, Pixin
    Wang, Jian
    AMERICAN JOURNAL OF RESPIRATORY CELL AND MOLECULAR BIOLOGY, 2013, 49 (02) : 212 - 220
  • [35] LDL INCREASES VASCULAR ETB2 RECEPTOR EXPRESSION VIA ACTIVATION OF ERK1/2 AND P38 MAPK PATHWAYS
    Zhang, Y.
    Zheng, J. -P.
    Zhang, W.
    Edvinsson, L.
    Xu, C. -B.
    ATHEROSCLEROSIS SUPPLEMENTS, 2010, 11 (02) : 94 - 95
  • [36] DGCR5 Promotes Gallbladder Cancer by Sponging MiR-3619-5p via MEK/ERK1/2 and JNK/p38 MAPK Pathways
    Liu, Shilei
    Chu, Bingfeng
    Cai, Chen
    Wu, Xiangsong
    Yao, Wenyan
    Wu, Ziyou
    Yang, Ziyi
    Li, Fengnan
    Liu, Yingbin
    Dong, Ping
    Gong, Wei
    JOURNAL OF CANCER, 2020, 11 (18): : 5466 - 5477
  • [37] Connexin 43 promotes ossification of the posterior longitudinal ligament through activation of the ERK1/2 and p38 MAPK pathways
    Dechun Chen
    Yang Liu
    Haisong Yang
    Deyu Chen
    Xiaoling Zhang
    Julio C. Fermandes
    Yu Chen
    Cell and Tissue Research, 2016, 363 : 765 - 773
  • [38] p38 kinase is a negative regulator of angiotensin II signal transduction in vascular smooth muscle cells -: Effects on Na+/H+ exchange and ERK1/2
    Kusuhara, M
    Takahashi, E
    Peterson, TE
    Abe, J
    Ishida, M
    Han, J
    Ulevitch, R
    Berk, BC
    CIRCULATION RESEARCH, 1998, 83 (08) : 824 - 831
  • [39] Connexin 43 promotes ossification of the posterior longitudinal ligament through activation of the ERK1/2 and p38 MAPK pathways
    Chen, Dechun
    Liu, Yang
    Yang, Haisong
    Chen, Deyu
    Zhang, Xiaoling
    Fermandes, Julio C.
    Chen, Yu
    CELL AND TISSUE RESEARCH, 2016, 363 (03) : 765 - 773
  • [40] MCP-1 Stimulates MMP-9 Expression via ERK 1/2 and p38 MAPK Signaling Pathways in Human Aortic Smooth Muscle Cells
    Yang, Ci-Qiu
    Li, Wen
    Li, Song-Qi
    Li, Jie
    Li, Yu-Wen
    Kong, Shu-Xin
    Liu, Rui-Ming
    Wang, Shen-Ming
    Lv, Wei-Ming
    CELLULAR PHYSIOLOGY AND BIOCHEMISTRY, 2014, 34 (02) : 266 - 276