Mitochondrial Oxidative Stress Corrupts Coronary Collateral Growth by Activating Adenosine Monophosphate Activated Kinase- Signaling

被引:27
|
作者
Pung, Yuh Fen [1 ]
Sam, Wai Johnn [1 ]
Stevanov, Kelly [1 ]
Enrick, Molly [1 ]
Chen, Chwen-Lih [1 ]
Kolz, Christopher [1 ]
Thakker, Prashanth [1 ]
Hardwick, James P. [1 ]
Chen, Yeong-Renn [1 ]
Dyck, Jason R. B. [2 ]
Yin, Liya [1 ]
Chilian, William M. [1 ]
机构
[1] Northeastern Ohio Univ Coll Med & Pharm, Dept Integrat Med Sci, Rootstown, OH 44272 USA
[2] Univ Alberta, Dept Pediat, Fac Med & Dent, Cardiovasc Res Ctr, Edmonton, AB, Canada
基金
美国国家科学基金会;
关键词
collateral circulation; coronary circulation; mitochondria; reactive oxygen species; PROTEIN-KINASE; METABOLIC SYNDROME; ENDOTHELIAL DYSFUNCTION; MORPHOMETRIC-ANALYSIS; HYDROGEN-PEROXIDE; HYPERTROPHY; RATS; MECHANISMS; HEALTH; OXYGEN;
D O I
10.1161/ATVBAHA.113.301591
中图分类号
R5 [内科学];
学科分类号
1002 ; 100201 ;
摘要
Objective Our goal was to determine the mechanism by which mitochondrial oxidative stress impairs collateral growth in the heart. Approach and Results Rats were treated with rotenone (mitochondrial complex I inhibitor that increases reactive oxygen species production) or sham-treated with vehicle and subjected to repetitive ischemia protocol for 10 days to induce coronary collateral growth. In control rats, repetitive ischemia increased flow to the collateral-dependent zone; however, rotenone treatment prevented this increase suggesting that mitochondrial oxidative stress compromises coronary collateral growth. In addition, rotenone also attenuated mitochondrial complex I activity and led to excessive mitochondrial aggregation. To further understand the mechanistic pathway(s) involved, human coronary artery endothelial cells were treated with 50 ng/mL vascular endothelial growth factor, 1 mu mol/L rotenone, and rotenone/vascular endothelial growth factor for 48 hours. Vascular endothelial growth factor induced robust tube formation; however, rotenone completely inhibited this effect (P<0.05 rotenone versus vascular endothelial growth factor treatment). Inhibition of tube formation by rotenone was also associated with significant increase in mitochondrial superoxide generation. Immunoblot analyses of human coronary artery endothelial cells with rotenone treatment showed significant activation of adenosine monophosphate activated kinase (AMPK)- and inhibition of mammalian target of rapamycin and p70 ribosomal S6 kinase. Activation of AMPK- suggested impairments in energy production, which was reflected by decrease in O-2 consumption and bioenergetic reserve capacity of cultured cells. Knockdown of AMPK- (siRNA) also preserved tube formation during rotenone, suggesting the negative effects were mediated by the activation of AMPK-. Conversely, expression of a constitutively active AMPK- blocked tube formation. Conclusions We conclude that activation of AMPK- during mitochondrial oxidative stress inhibits mammalian target of rapamycin signaling, which impairs phenotypic switching necessary for the growth of blood vessels.
引用
收藏
页码:1911 / 1919
页数:9
相关论文
共 50 条
  • [21] Antineuroinflammatory effects of lycopene via activation of adenosine monophosphate-activated protein kinase-α1/heme oxygenase-1 pathways
    Lin, Hsiao-Yun
    Huang, Bor-Ren
    Yeh, Wei-Lan
    Lee, Chih-Hao
    Huang, Shiang-Suo
    Lai, Chih-Ho
    Lin, Ho
    Lu, Dah-Yuu
    NEUROBIOLOGY OF AGING, 2014, 35 (01) : 191 - 202
  • [22] INHIBITION OF THE EGF-ACTIVATED MAP KINASE SIGNALING PATHWAY BY ADENOSINE-3',5'-MONOPHOSPHATE
    WU, J
    DENT, P
    JELINEK, T
    WOLFMAN, A
    WEBER, MJ
    STURGILL, TW
    SCIENCE, 1993, 262 (5136) : 1065 - 1069
  • [23] Mitochondrial DNA deletions induce the adenosine monophosphate-activated protein kinase energy stress pathway and result in decreased secretion of some proteins
    Prigione, Alessandro
    Cortopassi, Gino
    AGING CELL, 2007, 6 (05): : 619 - 630
  • [24] Growth and Development Symposium: Adenosine monophosphate-activated protein kinase and mitochondria in Rendement Napole pig growth
    Scheffler, T. L.
    Gerrard, D. E.
    JOURNAL OF ANIMAL SCIENCE, 2016, 94 (09) : 3601 - 3612
  • [25] Vanillic acid alleviates palmitic acid-induced oxidative stress in human umbilical vein endothelial cells via Adenosine Monophosphate-Activated Protein Kinase signaling pathway
    Ma, Wen-Fang
    Duan, Xu-Chang
    Han, Lin
    Zhang, Ling-Ling
    Meng, Xue-Mei
    Li, Yun-Long
    Wang, Min
    JOURNAL OF FOOD BIOCHEMISTRY, 2019, 43 (07)
  • [26] Thyroid hormone activates adenosine 5'-monophosphate-activated protein kinase via intracellular calcium mobilization and activation of Calcium/Calmodulin-Dependent protein kinase kinase-β
    Yamauchi, Masako
    Kambe, Fukushi
    Cao, Xia
    Lu, Xiuli
    Kozaki, Yasuko
    Oiso, Yutaka
    Seo, Hisao
    MOLECULAR ENDOCRINOLOGY, 2008, 22 (04) : 893 - 903
  • [27] Activating Adenosine Monophosphate-Activated Protein Kinase Mediates Fibroblast Growth Factor 1 Protection From Nonalcoholic Fatty Liver Disease in Mice
    Lin, Qian
    Huang, Zhifeng
    Cai, Genxiang
    Fan, Xia
    Yan, Xiaoqing
    Liu, Zhengshuai
    Zhao, Zehua
    Li, Jingya
    Li, Jia
    Shi, Hongxue
    Kong, Maiying
    Zheng, Ming-Hua
    Conklin, Daniel J.
    Epstein, Paul N.
    Wintergerst, Kupper A.
    Mohammadi, Moosa
    Cai, Lu
    Li, Xiaokun
    Li, Yu
    Tan, Yi
    HEPATOLOGY, 2021, 73 (06) : 2206 - 2222
  • [28] Effects of ischemic preconditioning on mitochondrial and metabolic neruoprotection: 5 ' adenosine monophosphate-activated protein kinase and sirtuins
    Jackson, Charles W.
    Escobar, Iris
    Xu, Jing
    Perez-Pinzon, Miguel A.
    BRAIN CIRCULATION, 2018, 4 (02) : 54 - 61
  • [29] Effects of cold stress on growth performance, serum biochemistry, intestinal barrier molecules, and adenosine monophosphate-activated protein kinase in broilers
    Zhou, H. J.
    Kong, L. L.
    Zhu, L. X.
    Hu, X. Y.
    Busye, J.
    Song, Z. G.
    ANIMAL, 2021, 15 (03)
  • [30] Liver adenosine monophosphate-activated kinase-α2 catalytic subunit is a key target for the control of hepatic glucose production by adiponectin and leptin but not insulin
    Andreelli, F
    Foretz, M
    Knauf, C
    Cani, PD
    Perrin, C
    Iglesias, MA
    Pillot, B
    Bado, A
    Tronche, F
    Mithieux, G
    Vaulont, S
    Burcelin, R
    Viollet, B
    ENDOCRINOLOGY, 2006, 147 (05) : 2432 - 2441