A PKM2 signature in the failing heart

被引:78
|
作者
Rees, Meredith L. [1 ]
Subramaniam, Janani [1 ]
Li, Yuanteng [1 ]
Hamilton, Dale J. [2 ]
Frazier, O. Howard [3 ]
Taegtmeyer, Heinrich [1 ,3 ]
机构
[1] Univ Texas Houston, Sch Med, Dept Internal Med, Div Cardiol, Houston, TX 77030 USA
[2] Houston Methodist Res Inst, Dept Med, Div Endocrinol, Bioenerget Lab, Houston, TX 77030 USA
[3] Texas Heart Inst, Baylor St Lukes Med Ctr, CHI St Lukes Hlth, Houston, TX 77225 USA
基金
美国国家卫生研究院;
关键词
Heart failure; Sunitinib; Fetal gene program; Glycolysis; PKM2; Hif1; alpha; PYRUVATE-KINASE M2; FETAL GENE PROGRAM; EXPRESSION; CANCER; METABOLISM; MECHANISMS; REMISSION; ISOFORM; THERAPY; FAILURE;
D O I
10.1016/j.bbrc.2015.02.122
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
A salient feature of the failing heart is metabolic remodeling towards predominant glucose metabolism and activation of the fetal gene program. Sunitinib is a multitargeted receptor tyrosine kinase inhibitor used for the treatment of highly vascularized tumors. In diabetic patients, sunitinib significantly decreases blood glucose. However, a considerable proportion of sunitinib-treated patients develop cardiac dysfunction or failure. We asked whether sunitinib treatment results in shift towards glycolysis in the heart. Glucose uptake by the heart was increased fivefold in mice treated with sunitinib. Transcript analysis by qPCR revealed an induction of genes associated with glycolysis and reactivation of the fetal gene program. Additionally, we observed a shift in the enzyme pyruvate kinase from the adult M1 (PKM1) isoform to the fetal M2 (PKM2) isoform, a hallmark of the Warburg Effect. This novel observation led us to examine whether a similar shift occurs in human heart failure. Examination of tissue from patients with heart failure similarly displayed an induction of PKM2. Moreover, this phenomenon was partially reversed following mechanical unloading. We propose that pyruvate kinase isoform switching represents a novel feature of the fetal gene program in the failing heart. Published by Elsevier Inc.
引用
收藏
页码:430 / 436
页数:7
相关论文
共 50 条
  • [31] The Complex Effects of PKM2 and PKM2:IP3R Disruption on Intracellular Ca2+ Handling and Cellular Functions
    Lemos, Fernanda O.
    de Ridder, Ian
    Bootman, Martin D.
    Bultynck, Geert
    Parys, Jan B.
    CELLS, 2023, 12 (21)
  • [32] Overexpressed PKM2 promotes macrophage phagocytosis and atherosclerosis
    Xiaochen Gai
    Fangming Liu
    Yuting Wu
    Baohui Zhang
    Bufu Tang
    Kezhuo Shang
    Lianmei Wang
    Haihong Zhang
    Yixin Chen
    Shuhui Yang
    Weiwei Deng
    Peng Li
    Jing Wang
    Hongbing Zhang
    Animal Models and Experimental Medicine, 2023, 6 (02) : 92 - 102
  • [33] Lack of Evidence for PKM2 Protein Kinase Activity
    Hosios, Aaron M.
    Fiske, Brian P.
    Gui, Dan Y.
    Vander Heiden, Matthew G.
    MOLECULAR CELL, 2015, 59 (05) : 850 - 857
  • [34] Research progress on the role of PKM2 in the immune response
    Liu, Chunyan
    Liu, Chenchen
    Fu, Rong
    FRONTIERS IN IMMUNOLOGY, 2022, 13
  • [35] Urinary PKM2 in muscle invasive bladder cancer
    Matye, David
    Leak, Juliann
    Abbott, Erika
    Woolbright, Benjamin
    Taylor, John
    CANCER RESEARCH, 2024, 84 (06)
  • [36] The multifaceted regulation and functions of PKM2 in tumor progression
    Li, Zongwei
    Yang, Peng
    Li, Zhuoyu
    BIOCHIMICA ET BIOPHYSICA ACTA-REVIEWS ON CANCER, 2014, 1846 (02): : 285 - 296
  • [37] Please Keep Me 2uned to PKM2
    McKnight, Steven L.
    MOLECULAR CELL, 2014, 53 (05) : 683 - 684
  • [38] PKM2 Is Essential for Bladder Cancer Growth and Maintenance
    Xia, Yong
    Wang, Xing
    Liu, Yan
    Shapiro, Ellen
    Lepor, Herbert
    Tang, Moon-shong
    Sun, Tung-Tien
    Wu, Xue-Ru
    CANCER RESEARCH, 2022, 82 (04) : 571 - 585
  • [39] Targeting neutrophil PKM2 for stroke treatment Comment
    Flick, Matthew J.
    BLOOD, 2022, 139 (08) : 1131 - 1132
  • [40] PKM2 and the Tricky Balance of Growth and Energy in Cancer
    Macintyre, Andrew N.
    Rathmell, Jeffrey C.
    MOLECULAR CELL, 2011, 42 (06) : 713 - 714