PGC-1a Is a Master Regulator of Mitochondrial Lifecycle and ROS Stress Response

被引:143
作者
Abu Shelbayeh, Othman [1 ]
Arroum, Tasnim [1 ,2 ]
Morris, Silke [1 ]
Busch, Karin B. [1 ]
机构
[1] Univ Munster, Inst Integrat Cell Biol & Physiol, Schlosspl 5, D-48149 Munster, Germany
[2] Wayne State Univ, Mol Med & Genet, Detroit, MI 48202 USA
关键词
PGC-1; alpha; ROS defense; mitonuclear communication; mitochondrial life cycle; PROLIFERATOR-ACTIVATED-RECEPTOR; GAMMA COACTIVATOR 1-ALPHA; NUCLEAR RESPIRATORY FACTORS; SKELETAL-MUSCLE; TRANSCRIPTION FACTOR; OXIDATIVE STRESS; PGC-1-ALPHA ISOFORM; MESSENGER-RNA; INDUCIBLE COACTIVATOR; METABOLIC REGULATOR;
D O I
10.3390/antiox12051075
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
Mitochondria play a major role in ROS production and defense during their life cycle. The transcriptional activator PGC-1a is a key player in the homeostasis of energy metabolism and is therefore closely linked to mitochondrial function. PGC-1a responds to environmental and intracellular conditions and is regulated by SIRT1/3, TFAM, and AMPK, which are also important regulators of mitochondrial biogenesis and function. In this review, we highlight the functions and regulatory mechanisms of PGC-1a within this framework, with a focus on its involvement in the mitochondrial lifecycle and ROS metabolism. As an example, we show the role of PGC-1a in ROS scavenging under inflammatory conditions. Interestingly, PGC-1a and the stress response factor NF-?B, which regulates the immune response, are reciprocally regulated. During inflammation, NF-?B reduces PGC-1a expression and activity. Low PGC-1a activity leads to the downregulation of antioxidant target genes resulting in oxidative stress. Additionally, low PGC-1a levels and concomitant oxidative stress promote NF-?B activity, which exacerbates the inflammatory response.
引用
收藏
页数:24
相关论文
共 206 条
  • [21] microRNA-122 as a regulator of mitochondrial metabolic gene network in hepatocellular carcinoma
    Burchard, Julja
    Zhang, Chunsheng
    Liu, Angela M.
    Poon, Ronnie T. P.
    Lee, Nikki P. Y.
    Wong, Kwong-Fai
    Sham, Pak C.
    Lam, Brian Y.
    Ferguson, Mark D.
    Tokiwa, George
    Smith, Ryan
    Leeson, Brendan
    Beard, Rebecca
    Lamb, John R.
    Lim, Lee
    Mao, Mao
    Dai, Hongyue
    Luk, John M.
    [J]. MOLECULAR SYSTEMS BIOLOGY, 2010, 6
  • [22] Mitochondrial uncoupling, ROS generation and cardioprotection
    Cadenas, Susana
    [J]. BIOCHIMICA ET BIOPHYSICA ACTA-BIOENERGETICS, 2018, 1859 (09): : 940 - 950
  • [23] SUMO-specific Protease 1 Regulates Mitochondrial Biogenesis through PGC-1α
    Cai, Rong
    Yu, Tingting
    Huang, Chao
    Xia, Xuefeng
    Liu, Xiaobing
    Gu, Jianmin
    Xue, Song
    Yeh, Edward T. H.
    Cheng, Jinke
    [J]. JOURNAL OF BIOLOGICAL CHEMISTRY, 2012, 287 (53) : 44464 - 44470
  • [24] Interdependence of AMPK and SIRT1 for Metabolic Adaptation to Fasting and Exercise in Skeletal Muscle
    Canto, Carles
    Jiang, Lake Q.
    Deshmukh, Atul S.
    Mataki, Chikage
    Coste, Agnes
    Lagouge, Marie
    Zierath, Juleen R.
    Auwerx, Johan
    [J]. CELL METABOLISM, 2010, 11 (03) : 213 - 219
  • [25] PGC-1α, SIRT1 and AMPK, an energy sensing network that controls energy expenditure
    Canto, Carles
    Auwerx, Johan
    [J]. CURRENT OPINION IN LIPIDOLOGY, 2009, 20 (02) : 98 - 105
  • [26] Low Concentrations of Metformin Suppress Glucose Production in Hepatocytes through AMP-activated Protein Kinase (AMPK)
    Cao, Jia
    Meng, Shumei
    Chang, Evan
    Beckwith-Fickas, Katherine
    Xiong, Lishou
    Cole, Robert N.
    Radovick, Sally
    Wondisford, Fredric E.
    He, Ling
    [J]. JOURNAL OF BIOLOGICAL CHEMISTRY, 2014, 289 (30) : 20435 - 20446
  • [27] How is mitochondrial biogenesis affected in mitochondrial disease?
    Chabi, B
    Adhihetty, PJ
    Ljubicic, V
    Hood, DA
    [J]. MEDICINE AND SCIENCE IN SPORTS AND EXERCISE, 2005, 37 (12) : 2102 - 2110
  • [28] PGC-1α in Disease: Recent Renal Insights into a Versatile Metabolic Regulator
    Chambers, Joseph M.
    Wingert, Rebecca A.
    [J]. CELLS, 2020, 9 (10)
  • [29] Chambers Kari T, 2011, J Biol Chem, V286, P11155, DOI 10.1074/jbc.M110.217349
  • [30] Rapamycin Ameliorates Kidney Fibrosis by Inhibiting the Activation of mTOR Signaling in Interstitial Macrophages and Myofibroblasts
    Chen, Guochun
    Chen, Huihui
    Wang, Chang
    Peng, Youming
    Sun, Lin
    Liu, Hong
    Liu, Fuyou
    [J]. PLOS ONE, 2012, 7 (03):