Literature DB >> 33712058

Mitochondria and metabolic transitions in cardiomyocytes: lessons from development for stem cell-derived cardiomyocytes.

Jessica C Garbern1,2, Richard T Lee3,4.   

Abstract

Current methods to differentiate cardiomyocytes from human pluripotent stem cells (PSCs) inadequately recapitulate complete development and result in PSC-derived cardiomyocytes (PSC-CMs) with an immature or fetal-like phenotype. Embryonic and fetal development are highly dynamic periods during which the developing embryo or fetus is exposed to changing nutrient, oxygen, and hormone levels until birth. It is becoming increasingly apparent that these metabolic changes initiate developmental processes to mature cardiomyocytes. Mitochondria are central to these changes, responding to these metabolic changes and transitioning from small, fragmented mitochondria to large organelles capable of producing enough ATP to support the contractile function of the heart. These changes in mitochondria may not simply be a response to cardiomyocyte maturation; the metabolic signals that occur throughout development may actually be central to the maturation process in cardiomyocytes. Here, we review methods to enhance maturation of PSC-CMs and highlight evidence from development indicating the key roles that mitochondria play during cardiomyocyte maturation. We evaluate metabolic transitions that occur during development and how these affect molecular nutrient sensors, discuss how regulation of nutrient sensing pathways affect mitochondrial dynamics and function, and explore how changes in mitochondrial function can affect metabolite production, the cell cycle, and epigenetics to influence maturation of cardiomyocytes.

Entities:  

Keywords:  Cardiomyocytes; Maturation; Metabolic regulation; Mitochondria; Stem cells

Year:  2021        PMID: 33712058      PMCID: PMC7953594          DOI: 10.1186/s13287-021-02252-6

Source DB:  PubMed          Journal:  Stem Cell Res Ther        ISSN: 1757-6512            Impact factor:   6.832


  293 in total

1.  Glucose induces apoptosis of cardiomyocytes via microRNA-1 and IGF-1.

Authors:  Xi-Yong Yu; Yao-Hua Song; Yong-Jian Geng; Qiu-Xiong Lin; Zhi-Xin Shan; Shu-Guang Lin; Yangxin Li
Journal:  Biochem Biophys Res Commun       Date:  2008-09-16       Impact factor: 3.575

Review 2.  MicroRNAs as regulators of mitochondrial function: role in cancer suppression.

Authors:  Marco Tomasetti; Jiri Neuzil; Lanfeng Dong
Journal:  Biochim Biophys Acta       Date:  2013-09-07

3.  Epigenetic regulation of cardiac myofibril gene expression during heart development.

Authors:  Weian Zhao; Lingjuan Liu; Bo Pan; Yang Xu; Jing Zhu; Changlong Nan; Xupei Huang; Jie Tian
Journal:  Cardiovasc Toxicol       Date:  2015-07       Impact factor: 3.231

4.  Parkin Regulates Programmed Necrosis and Myocardial Ischemia/Reperfusion Injury by Targeting Cyclophilin-D.

Authors:  Teng Sun; Wei Ding; Tao Xu; Xiang Ao; Tao Yu; Mengyang Li; Ying Liu; Xuejuan Zhang; Lin Hou; Jianxun Wang
Journal:  Antioxid Redox Signal       Date:  2019-09-26       Impact factor: 8.401

5.  AMPK signaling pathway is rapidly activated by T3 and regulates the cardiomyocyte growth.

Authors:  Ana Paula Cremasco Takano; Gabriela Placoná Diniz; Maria Luiza Morais Barreto-Chaves
Journal:  Mol Cell Endocrinol       Date:  2013-06-06       Impact factor: 4.102

6.  Cardiac malformation in neonatal mice lacking connexin43.

Authors:  A G Reaume; P A de Sousa; S Kulkarni; B L Langille; D Zhu; T C Davies; S C Juneja; G M Kidder; J Rossant
Journal:  Science       Date:  1995-03-24       Impact factor: 47.728

Review 7.  Long Noncoding RNAs: A New Regulatory Code in Metabolic Control.

Authors:  Xu-Yun Zhao; Jiandie D Lin
Journal:  Trends Biochem Sci       Date:  2015-10       Impact factor: 13.807

8.  Insulin stimulates mitochondrial fusion and function in cardiomyocytes via the Akt-mTOR-NFκB-Opa-1 signaling pathway.

Authors:  Valentina Parra; Hugo E Verdejo; Myriam Iglewski; Andrea Del Campo; Rodrigo Troncoso; Deborah Jones; Yi Zhu; Jovan Kuzmicic; Christian Pennanen; Camila Lopez-Crisosto; Fabián Jaña; Jorge Ferreira; Eduard Noguera; Mario Chiong; David A Bernlohr; Amira Klip; Joseph A Hill; Beverly A Rothermel; Evan Dale Abel; Antonio Zorzano; Sergio Lavandero
Journal:  Diabetes       Date:  2013-09-05       Impact factor: 9.461

9.  Distinct carbon sources affect structural and functional maturation of cardiomyocytes derived from human pluripotent stem cells.

Authors:  Cláudia Correia; Alexey Koshkin; Patrícia Duarte; Dongjian Hu; Ana Teixeira; Ibrahim Domian; Margarida Serra; Paula M Alves
Journal:  Sci Rep       Date:  2017-08-17       Impact factor: 4.379

Review 10.  Coordinated Modulation of Energy Metabolism and Inflammation by Branched-Chain Amino Acids and Fatty Acids.

Authors:  Zhenhong Ye; Siyu Wang; Chunmei Zhang; Yue Zhao
Journal:  Front Endocrinol (Lausanne)       Date:  2020-09-08       Impact factor: 5.555

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  11 in total

1.  Bisphenol-A Mediated Impaired DRP1-GFER Axis and Cognition Restored by PGC-1α Upregulation Through Nicotinamide in the Rat Brain Hippocampus.

Authors:  Shweta Goyal; Saurabh Tiwari; Brashket Seth; Ankit Tandon; Rajnish Kumar Chaturvedi
Journal:  Mol Neurobiol       Date:  2022-05-25       Impact factor: 5.682

Review 2.  Energy Metabolism on Mitochondrial Maturation and Its Effects on Cardiomyocyte Cell Fate.

Authors:  Kaya L Persad; Gary D Lopaschuk
Journal:  Front Cell Dev Biol       Date:  2022-07-05

3.  Developing chicken cardiac muscle mitochondria are resistant to variations in incubation oxygen levels.

Authors:  Vanessa J Starr; Edward M Dzialowski
Journal:  Curr Res Physiol       Date:  2022-03-17

Review 4.  Challenges and innovation: Disease modeling using human-induced pluripotent stem cell-derived cardiomyocytes.

Authors:  Louise Reilly; Saba Munawar; Jianhua Zhang; Wendy C Crone; Lee L Eckhardt
Journal:  Front Cardiovasc Med       Date:  2022-08-12

5.  In Vitro Toxicological Profile of Labetalol-Folic Acid/Folate Co-Administration in H9c2(2-1) and HepaRG Cells.

Authors:  Robert Rednic; Iasmina Marcovici; Razvan Dragoi; Iulia Pinzaru; Cristina Adriana Dehelean; Mirela Tomescu; Diana Aurora Arnautu; Marius Craina; Adrian Gluhovschi; Mihaela Valcovici; Aniko Manea
Journal:  Medicina (Kaunas)       Date:  2022-06-10       Impact factor: 2.948

Review 6.  Estrogen signaling as a bridge between the nucleus and mitochondria in cardiovascular diseases.

Authors:  Emanuel Guajardo-Correa; Juan Francisco Silva-Agüero; Ximena Calle; Mario Chiong; Mauricio Henríquez; Gerardo García-Rivas; Mauricio Latorre; Valentina Parra
Journal:  Front Cell Dev Biol       Date:  2022-09-14

7.  Mitochondrial energy metabolic transcriptome profiles during cardiac differentiation from mouse and human pluripotent stem cells.

Authors:  Sung Woo Cho; Hyoung Kyu Kim; Ji Hee Sung; Yeseul Kim; Jae Ho Kim; Jin Han
Journal:  Korean J Physiol Pharmacol       Date:  2022-09-01       Impact factor: 1.718

Review 8.  Targeting Epigenetic Regulation of Cardiomyocytes through Development for Therapeutic Cardiac Regeneration after Heart Failure.

Authors:  Lindsay Kraus
Journal:  Int J Mol Sci       Date:  2022-10-06       Impact factor: 6.208

9.  Inhibition of mitochondrial respiration has fundamentally different effects on proliferation, cell survival and stress response in immature versus differentiated cardiomyocyte cell lines.

Authors:  Bent Grün; Michaela Tirre; Simon Pyschny; Vijay Singh; Hans-Gerd Kehl; Christian Jux; Jörg-Detlef Drenckhahn
Journal:  Front Cell Dev Biol       Date:  2022-09-23

10.  Development of appropriate fatty acid formulations to raise the contractility of constructed myocardial tissues.

Authors:  Azumi Yoshida; Waki Sekine; Jun Homma; Hidekazu Sekine; Yu Yamasaki Itoyama; Daisuke Sasaki; Katsuhisa Matsuura; Eiji Kobayashi; Tatsuya Shimizu
Journal:  Regen Ther       Date:  2022-09-29       Impact factor: 3.651

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