Blockage of AKAP12 accelerates angiotensin II (Ang II)-induced cardiac injury in mice by regulating the transforming growth factor β1 (TGF-β1) pathway

被引:17
|
作者
Li, Yong [1 ]
Yu, Qiu-Hua [2 ]
Chu, Ying [3 ]
Wu, Wei-Min [2 ]
Song, Jian-Xiang [4 ]
Zhu, Xiao-Bo [2 ]
Wang, Qiang [2 ]
机构
[1] Wujin Peoples Hosp Changzhou, Dept Cardiol, Changzhou 213017, Peoples R China
[2] Wujin Peoples Hosp Changzhou, Dept Cardiothorac, Changzhou 213017, Peoples R China
[3] Wujin Peoples Hosp Changzhou, Cent Lab, Changzhou 213017, Peoples R China
[4] Third Hosp Yancheng, Dept Cardiac Surg, Yancheng 224000, Peoples R China
关键词
AKAP12; Angiotensin II; Cardiac fibrosis; TGF-beta; 1; pathway; RENAL FIBROSIS; TGF-BETA; AUTOPHAGY; PROTEIN; SSECKS/GRAVIN/AKAP12; INFLAMMATION; HYPERTROPHY; DISSECTION; MECHANISMS; COMPLEXES;
D O I
10.1016/j.bbrc.2018.02.200
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
Hypertension is a multifactorial chronic inflammatory disease that leads to cardiac remodeling. A-kinase anchor protein 12 (AKAP12) is a scaffolding protein that has multiple functions in various biological events, including the regulation of vessel integrity and differentiation of neural barriers in blood. However, the role of AKAP12 in angiotensin II (Ang II)-induced cardiac injury remains unclear. In the present study, Ang II infusion reduced AKAP12 expressions in the hearts of wild-type (WT) mice, and AKAP12 knockout (KO) enhanced the infiltration of inflammatory cells. In addition, AKAP12 deletion accelerated Ang II-induced cardiac histologic alterations and dysfunction. Further, AKAP12(-/-) aggravated heart failure by promoting the inflammation, oxidative stress, cellular apoptosis, and autophagy induced by Ang II. Furthermore, AKAP12 KO elevated Ang II-induced cardiac fibrosis, as indicated by the following: (1) Masson trichrome staining showed that Ang II infusion markedly increased fibrotic areas of the WT mouse heart, which was greatly accelerated in AKAP12(-/-) mice; (2) immunohistochemistry analysis showed increased expression of transforming growth factor beta 1 (TGF-beta 1) and alpha-smooth muscle actin (alpha-SMA) in the AKAP12(-/-) mouse heart; (3) reverse transcription-quantitative real-time polymerase chain reaction (RT-qPCR) analysis showed increased expression of fibrosis-related molecules in the AKAP12-deficient mouse heart; and (4) Western blot analysis indicated significantly higher upregulation of p-SMAD2/3 in the AKAP12(-/-) mouse heart. In vitro, AKAP12 knockdown in HL-1 cells was responsible for TGF-beta 1-induced inflammation, the generation of reactive oxygen species (ROS), apoptosis, autophagy, and fibrosis. Furthermore, overexpression of AKAP12 reduced fibrosis triggered by TGF-beta 1 in cells. Overall, our study suggests that fibrosis induced by Ang II may be alleviated by AKAP12 expression through inactivation of the TGF-beta 1 pathway. (C) 2018 Published by Elsevier Inc.
引用
收藏
页码:128 / 135
页数:8
相关论文
共 50 条
  • [31] Angiotensin II stimulated expression of transforming growth factor-beta(1) in cardiac fibroblasts and myofibroblasts
    Campbell, SE
    Katwa, LC
    [J]. JOURNAL OF MOLECULAR AND CELLULAR CARDIOLOGY, 1997, 29 (07) : 1947 - 1958
  • [32] FOXF1 ameliorates angiotensin II-induced cardiac fibrosis in cardiac fibroblasts through inhibiting the TGF-β1/Smad3 signaling pathway
    Jin, Daoxin
    Han, Fangfang
    [J]. JOURNAL OF RECEPTORS AND SIGNAL TRANSDUCTION, 2020, 40 (06) : 493 - 500
  • [33] Overexpression of transforming growth factor (TGF) β1 type II receptor restores TGF-β1 sensitivity and signaling in human prostate cancer cells
    Guo, YP
    Kyprianou, N
    [J]. CELL GROWTH & DIFFERENTIATION, 1998, 9 (02): : 185 - 193
  • [34] Expression of transforming growth factor (TGF)-β1 and TGF-β type II receptor in preneoplastic lesions during chemical hepatocarcinogenesis of rats
    Park, DY
    Hwang, SY
    Suh, KS
    [J]. TOXICOLOGIC PATHOLOGY, 2001, 29 (05) : 541 - 549
  • [35] Tranilast inhibits angiotensin II-induced myocardial fibrosis through S100A11/transforming growth factor-β (TGF-β1)/Smad axis
    Chen, Youquan
    Huang, Ming
    Yan, Yi
    He, Dequan
    [J]. BIOENGINEERED, 2021, 12 (01) : 8447 - 8456
  • [36] Angiotensin II, transforming growth factor-β1 and repair in the infarcted heart
    Sun, YO
    Zhang, JQ
    Zhang, JK
    Ramires, FJA
    [J]. JOURNAL OF MOLECULAR AND CELLULAR CARDIOLOGY, 1998, 30 (08) : 1559 - 1569
  • [37] Cardiac Lineage Protein-1 (CLP-1) Regulates Cardiac Remodeling via Transcriptional Modulation of Diverse Hypertrophic and Fibrotic Responses and Angiotensin II-transforming Growth Factor β (TGF-β1) Signaling Axis
    Mascareno, Eduardo
    Galatioto, Josephine
    Rozenberg, Inna
    Salciccioli, Louis
    Kamran, Haroon
    Lazar, Jason M.
    Liu, Fang
    Pedrazzini, Thierry
    Siddiqui, M. A. Q.
    [J]. JOURNAL OF BIOLOGICAL CHEMISTRY, 2012, 287 (16) : 13084 - 13093
  • [38] Pharmacological manipulation of angiotensin II and transforming growth factor β-1 in mesothelial cells
    Goede, AC
    Sales, KM
    Khan, K
    Caplin, ME
    Winslet, MC
    [J]. GUT, 2004, 53 : A64 - A64
  • [39] Tubuloglomerular feedback (TGF) is decreased in COX-1 knockout mice after chronic angiotensin II (Ang II) infusion
    Araujo, Magali
    Welch, William J.
    [J]. FASEB JOURNAL, 2008, 22
  • [40] Loss of Fibulin-2 Prevents Angiotensin (Ang) II-Induced Cardiac Fibrosis not only by Attenuating Transforming Growth Factor (TGF)-β but also by Up-Regulating Myocardial Natriuretic Peptides in the Mouse Model
    Dong, Hailong
    Khan, Shaukat
    Wu, Jing
    Joyce, Jennifer
    Zhang, HangXiang
    Chu, Mon-Li
    Tsuda, Takeshi
    [J]. CIRCULATION, 2012, 126 (21)