Literature DB >> 28406333

Eat, breathe, ROS: controlling stem cell fate through metabolism.

Dieter A Kubli1, Mark A Sussman1.   

Abstract

INTRODUCTION: Research reveals cardiac regeneration exists at levels previously deemed unattainable. Clinical trials using stem cells demonstrate promising cardiomyogenic and regenerative potential but insufficient contractile recovery. Incomplete understanding of the biology of administered cells likely contributes to inconsistent patient outcomes. Metabolism is a core component of many well-characterized stem cell types, and metabolic changes fundamentally alter stem cell fate from self-renewal to lineage commitment, and vice versa. However, the metabolism of stem cells currently studied for cardiac regeneration remains incompletely understood. Areas covered: Key metabolic features of stem cells are reviewed and unique stem cell metabolic characteristics are discussed. Metabolic changes altering stem cell fate are considered from quiescence and self-renewal to lineage commitment. Key metabolic concepts are applied toward examining cardiac regeneration through stem cell-based approaches, and clinical implications of current cell therapies are evaluated to identify potential areas of improvement. Expert commentary: The metabolism and biology of stem cells used for cardiac therapy remain poorly characterized. A growing appreciation for the fundamental relationship between stem cell functionality and metabolic phenotype is developing. Future studies unraveling links between cardiac stem cell metabolism and regenerative potential may considerably improve treatment strategies and therapeutic outcomes.

Entities:  

Keywords:  Cardiac progenitor cell; differentiation; glycolysis; metabolism; mitochondria; pluripotency; reactive oxygen species; respiration; self-renewal; stem cell

Mesh:

Substances:

Year:  2017        PMID: 28406333      PMCID: PMC5704935          DOI: 10.1080/14779072.2017.1319278

Source DB:  PubMed          Journal:  Expert Rev Cardiovasc Ther        ISSN: 1477-9072


  110 in total

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Authors:  Philip E Boulais; Paul S Frenette
Journal:  Blood       Date:  2015-03-11       Impact factor: 22.113

2.  LIN28 Regulates Stem Cell Metabolism and Conversion to Primed Pluripotency.

Authors:  Jin Zhang; Sutheera Ratanasirintrawoot; Sriram Chandrasekaran; Zhaoting Wu; Scott B Ficarro; Chunxiao Yu; Christian A Ross; Davide Cacchiarelli; Qing Xia; Marc Seligson; Gen Shinoda; Wen Xie; Patrick Cahan; Longfei Wang; Shyh-Chang Ng; Supisara Tintara; Cole Trapnell; Tamer Onder; Yuin-Han Loh; Tarjei Mikkelsen; Piotr Sliz; Michael A Teitell; John M Asara; Jarrod A Marto; Hu Li; James J Collins; George Q Daley
Journal:  Cell Stem Cell       Date:  2016-06-16       Impact factor: 24.633

3.  Somatic oxidative bioenergetics transitions into pluripotency-dependent glycolysis to facilitate nuclear reprogramming.

Authors:  Clifford D L Folmes; Timothy J Nelson; Almudena Martinez-Fernandez; D Kent Arrell; Jelena Zlatkovic Lindor; Petras P Dzeja; Yasuhiro Ikeda; Carmen Perez-Terzic; Andre Terzic
Journal:  Cell Metab       Date:  2011-08-03       Impact factor: 27.287

4.  Glutamine Regulates Cardiac Progenitor Cell Metabolism and Proliferation.

Authors:  Joshua K Salabei; Pawel K Lorkiewicz; Candice R Holden; Qianhong Li; Kyung U Hong; Roberto Bolli; Aruni Bhatnagar; Bradford G Hill
Journal:  Stem Cells       Date:  2015-05-26       Impact factor: 6.277

5.  Hypoxic preconditioning enhances the benefit of cardiac progenitor cell therapy for treatment of myocardial infarction by inducing CXCR4 expression.

Authors:  Yao Liang Tang; Wuqiang Zhu; Min Cheng; Lijuan Chen; John Zhang; Tao Sun; Raj Kishore; M Ian Phillips; Douglas W Losordo; Gangjian Qin
Journal:  Circ Res       Date:  2009-04-30       Impact factor: 17.367

6.  A low level of reactive oxygen species selects for primitive hematopoietic stem cells that may reside in the low-oxygenic niche.

Authors:  Yoon-Young Jang; Saul J Sharkis
Journal:  Blood       Date:  2007-06-26       Impact factor: 22.113

7.  Metabolic plasticity in stem cell homeostasis and differentiation.

Authors:  Clifford D L Folmes; Petras P Dzeja; Timothy J Nelson; Andre Terzic
Journal:  Cell Stem Cell       Date:  2012-11-02       Impact factor: 24.633

8.  Mitochondrial DNA replication during differentiation of murine embryonic stem cells.

Authors:  Joao M Facucho-Oliveira; Jon Alderson; Emma C Spikings; Stuart Egginton; Justin C St John
Journal:  J Cell Sci       Date:  2007-10-30       Impact factor: 5.285

9.  Mitochondrial Membrane Potential Identifies Cells with Enhanced Stemness for Cellular Therapy.

Authors:  Madhusudhanan Sukumar; Jie Liu; Gautam U Mehta; Shashank J Patel; Rahul Roychoudhuri; Joseph G Crompton; Christopher A Klebanoff; Yun Ji; Peng Li; Zhiya Yu; Greg D Whitehill; David Clever; Robert L Eil; Douglas C Palmer; Suman Mitra; Mahadev Rao; Keyvan Keyvanfar; David S Schrump; Ena Wang; Francesco M Marincola; Luca Gattinoni; Warren J Leonard; Pawel Muranski; Toren Finkel; Nicholas P Restifo
Journal:  Cell Metab       Date:  2015-12-08       Impact factor: 27.287

10.  NADPH oxidase 4 regulates cardiomyocyte differentiation via redox activation of c-Jun protein and the cis-regulation of GATA-4 gene transcription.

Authors:  Thomas V A Murray; Ioannis Smyrnias; Ajay M Shah; Alison C Brewer
Journal:  J Biol Chem       Date:  2013-04-15       Impact factor: 5.157

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  2 in total

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Journal:  Int J Mol Sci       Date:  2020-10-10       Impact factor: 5.923

2.  Autophagy induction during stem cell activation plays a key role in salivary gland self-renewal.

Authors:  Idil Orhon; Cecilia Rocchi; Beatriz Villarejo-Zori; Paola Serrano Martinez; Mirjam Baanstra; Uilke Brouwer; Patricia Boya; Rob Coppes; Fulvio Reggiori
Journal:  Autophagy       Date:  2021-05-19       Impact factor: 16.016

  2 in total

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