Literature DB >> 28935506

Endothelial specific SIRT3 deletion impairs glycolysis and angiogenesis and causes diastolic dysfunction.

Xiaochen He1, Heng Zeng1, Sean T Chen2, Richard J Roman1, Judy L Aschner3, Sean Didion1, Jian-Xiong Chen4.   

Abstract

Endothelial glycolysis plays a critical role in the regulation of angiogenesis. We investigated the role of Sirtuin 3 (SIRT3) on endothelial cell (EC) glycolytic metabolism, angiogenesis, and diastolic function. Our aim was to test the hypothesis that loss of SIRT3 in ECs impairs endothelial glycolytic metabolism and angiogenesis and contributes to myocardial capillary rarefaction and the development of diastolic dysfunction. Using SIRT3 deficient ECs, SIRT3 was found to regulate a metabolic switch between mitochondrial respiration and glycolysis. SIRT3 knockout (KO)-ECs exhibited higher mitochondrial respiration and reactive oxygen species (ROS) formation. SIRT3 knockout (KO)-ECs exhibited a reduction in the expression of glycolytic enzyme, PFKFB3, and a fall in glycolysis and angiogenesis. Blockade of PFKFB3 reduced glycolysis and downregulated expression of VEGF and Angiopoietin-1 (Ang-1) in ECs. Deletion of SIRT3 in ECs also impaired hypoxia-induced expression of HIF-2α, VEGF, and Ang-1, as well as reduced angiogenesis. In vivo, endothelial-specific SIRT3 KO (ECKO) mice exhibited a myocardial capillary rarefaction together with a reduced coronary flow reserve (CFR) and diastolic dysfunction. Histologic study further demonstrated that knockout of SIRT3 in ECs significantly increased perivascular fibrosis in the coronary artery. These results implicate a role of SIRT3 in modulating endothelial function and cardiac function. Ablation of SIRT3 leads to impairment of EC glycolytic metabolism and angiogenic signaling, which may contribute to coronary microvascular rarefaction and diastolic dysfunction in SIRT3 ECKO mice.
Copyright © 2017 Elsevier Ltd. All rights reserved.

Entities:  

Keywords:  Coronary microvascular dysfunction; Diastolic dysfunction; Metabolic reprogram; PFKFB3; SIRT3

Mesh:

Substances:

Year:  2017        PMID: 28935506      PMCID: PMC5647246          DOI: 10.1016/j.yjmcc.2017.09.007

Source DB:  PubMed          Journal:  J Mol Cell Cardiol        ISSN: 0022-2828            Impact factor:   5.000


  44 in total

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2.  Role of PFKFB3-driven glycolysis in vessel sprouting.

Authors:  Katrien De Bock; Maria Georgiadou; Sandra Schoors; Anna Kuchnio; Brian W Wong; Anna Rita Cantelmo; Annelies Quaegebeur; Bart Ghesquière; Sandra Cauwenberghs; Guy Eelen; Li-Kun Phng; Inge Betz; Bieke Tembuyser; Katleen Brepoels; Jonathan Welti; Ilse Geudens; Inmaculada Segura; Bert Cruys; Franscesco Bifari; Ilaria Decimo; Raquel Blanco; Sabine Wyns; Jeroen Vangindertael; Susana Rocha; Russel T Collins; Sebastian Munck; Dirk Daelemans; Hiromi Imamura; Roland Devlieger; Mark Rider; Paul P Van Veldhoven; Frans Schuit; Ramon Bartrons; Johan Hofkens; Peter Fraisl; Sucheta Telang; Ralph J Deberardinis; Luc Schoonjans; Stefan Vinckier; Jason Chesney; Holger Gerhardt; Mieke Dewerchin; Peter Carmeliet
Journal:  Cell       Date:  2013-08-01       Impact factor: 41.582

3.  Incidence and epidemiology of new onset heart failure with preserved vs. reduced ejection fraction in a community-based cohort: 11-year follow-up of PREVEND.

Authors:  Frank P Brouwers; Rudolf A de Boer; Pim van der Harst; Adriaan A Voors; Ron T Gansevoort; Stephan J Bakker; Hans L Hillege; Dirk J van Veldhuisen; Wiek H van Gilst
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Review 4.  Heart failure with preserved ejection fraction in the elderly: scope of the problem.

Authors:  Bharathi Upadhya; George E Taffet; Che Ping Cheng; Dalane W Kitzman
Journal:  J Mol Cell Cardiol       Date:  2015-03-06       Impact factor: 5.000

5.  Global cardiovascular reserve dysfunction in heart failure with preserved ejection fraction.

Authors:  Barry A Borlaug; Thomas P Olson; Carolyn S P Lam; Kelly S Flood; Amir Lerman; Bruce D Johnson; Margaret M Redfield
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Authors:  Kristin E Dittenhafer-Reed; Alicia L Richards; Jing Fan; Michael J Smallegan; Alireza Fotuhi Siahpirani; Zachary A Kemmerer; Tomas A Prolla; Sushmita Roy; Joshua J Coon; John M Denu
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7.  Disruption of Ang-1/Tie-2 signaling contributes to the impaired myocardial vascular maturation and angiogenesis in type II diabetic mice.

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8.  High-fat diet induces cardiac remodelling and dysfunction: assessment of the role played by SIRT3 loss.

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Journal:  J Cell Mol Med       Date:  2015-03-17       Impact factor: 5.310

Review 9.  Principles of targeting endothelial cell metabolism to treat angiogenesis and endothelial cell dysfunction in disease.

Authors:  Jermaine Goveia; Peter Stapor; Peter Carmeliet
Journal:  EMBO Mol Med       Date:  2014-09       Impact factor: 12.137

10.  SIRT3 regulates cell proliferation and apoptosis related to energy metabolism in non-small cell lung cancer cells through deacetylation of NMNAT2.

Authors:  Hongqi Li; Zhiqiang Feng; Weizhang Wu; Jing Li; Jinqian Zhang; Tingyi Xia
Journal:  Int J Oncol       Date:  2013-09-16       Impact factor: 5.650

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  31 in total

Review 1.  Sirtuin 3, Endothelial Metabolic Reprogramming, and Heart Failure With Preserved Ejection Fraction.

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Review 2.  Emerging role of SIRT3 in endothelial metabolism, angiogenesis, and cardiovascular disease.

Authors:  Xiaochen He; Heng Zeng; Jian-Xiong Chen
Journal:  J Cell Physiol       Date:  2018-08-21       Impact factor: 6.384

Review 3.  Novel roles of immunometabolism and nonmyocyte metabolism in cardiac remodeling and injury.

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Journal:  Am J Physiol Regul Integr Comp Physiol       Date:  2020-09-02       Impact factor: 3.619

4.  Inhibition of prolyl hydroxylases alters cell metabolism and reverses pre-existing diastolic dysfunction in mice.

Authors:  Xiaochen He; Heng Zeng; Richard J Roman; Jian-Xiong Chen
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Review 5.  Endothelial-cell-mediated mechanism of coronary microvascular dysfunction leading to heart failure with preserved ejection fraction.

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Journal:  Heart Fail Rev       Date:  2022-03-09       Impact factor: 4.214

6.  Knockout of TIGAR enhances myocardial phosphofructokinase activity and preserves diastolic function in heart failure.

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7.  Capillaries as a Therapeutic Target for Heart Failure.

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8.  Sirtuin 3 Alleviates Diabetic Cardiomyopathy by Regulating TIGAR and Cardiomyocyte Metabolism.

Authors:  Lanfang Li; Heng Zeng; Xiaochen He; Jian-Xiong Chen
Journal:  J Am Heart Assoc       Date:  2021-02-15       Impact factor: 5.501

Review 9.  Interplay Between Reactive Oxygen/Reactive Nitrogen Species and Metabolism in Vascular Biology and Disease.

Authors:  Masuko Ushio-Fukai; Dipankar Ash; Sheela Nagarkoti; Eric J Belin de Chantemèle; David J R Fulton; Tohru Fukai
Journal:  Antioxid Redox Signal       Date:  2021-06-01       Impact factor: 7.468

Review 10.  Cellular and molecular pathobiology of heart failure with preserved ejection fraction.

Authors:  Sumita Mishra; David A Kass
Journal:  Nat Rev Cardiol       Date:  2021-01-11       Impact factor: 49.421

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