Literature DB >> 26981171

Human pluripotent stem cells: Towards therapeutic development for the treatment of lifestyle diseases.

Miwako Nishio1, Masako Nakahara1, Akira Yuo1, Kumiko Saeki1.   

Abstract

There are two types of human pluripotent stem cells: Embryonic stem cells (ESCs) and induced pluripotent stem cells (iPSCs), both of which launched themselves on clinical trials after having taken measures to overcome problems: Blocking rejections by immunosuppressants regarding ESCs and minimizing the risk of tumorigenicity by depleting exogenous gene components regarding iPSCs. It is generally assumed that clinical applications of human pluripotent stem cells should be limited to those cases where there are no alternative measures for treatments because of the risk in transplanting those cells to living bodies. Regarding lifestyle diseases, we have already several therapeutic options, and thus, development of human pluripotent stem cell-based therapeutics tends to be avoided. Nevertheless, human pluripotent stem cells can contribute to the development of new therapeutics in this field. As we will show, there is a case where only a short-term presence of human pluripotent stem-derived cells can exert long-term therapeutic effects even after they are rejected. In those cases, immunologically rejections of ESC- or allogenic iPSC-derived cells may produce beneficial outcomes by nullifying the risk of tumorigenesis without deterioration of therapeutic effects. Another utility of human pluripotent stem cells is the provision of an innovative tool for drug discovery that are otherwise unavailable. For example, clinical specimens of human classical brown adipocytes (BAs), which has been attracting a great deal of attention as a new target of drug discovery for the treatment of metabolic disorders, are unobtainable from living individuals due to scarcity, fragility and ethical problems. However, BA can easily be produced from human pluripotent stem cells. In this review, we will contemplate potential contribution of human pluripotent stem cells to therapeutic development for lifestyle diseases.

Entities:  

Keywords:  Arteriostenosis; Brown adipose tissue; Glucose intolerance; Human embryonic stem cells; Human induced pluripotent stem cells

Year:  2016        PMID: 26981171      PMCID: PMC4766251          DOI: 10.4252/wjsc.v8.i2.56

Source DB:  PubMed          Journal:  World J Stem Cells        ISSN: 1948-0210            Impact factor:   5.326


  32 in total

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Authors:  Jan Helge Solbakk; Laurie Zoloth
Journal:  Cell Stem Cell       Date:  2011-05-06       Impact factor: 24.633

2.  Beta-catenin activation is necessary and sufficient to specify the dorsal dermal fate in the mouse.

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Journal:  Dev Biol       Date:  2006-04-21       Impact factor: 3.582

3.  Brown adipose tissue regulates glucose homeostasis and insulin sensitivity.

Authors:  Kristin I Stanford; Roeland J W Middelbeek; Kristy L Townsend; Ding An; Eva B Nygaard; Kristen M Hitchcox; Kathleen R Markan; Kazuhiro Nakano; Michael F Hirshman; Yu-Hua Tseng; Laurie J Goodyear
Journal:  J Clin Invest       Date:  2012-12-10       Impact factor: 14.808

4.  Brown adipose tissue, whole-body energy expenditure, and thermogenesis in healthy adult men.

Authors:  Takeshi Yoneshiro; Sayuri Aita; Mami Matsushita; Toshimitsu Kameya; Kunihiro Nakada; Yuko Kawai; Masayuki Saito
Journal:  Obesity (Silver Spring)       Date:  2010-05-06       Impact factor: 5.002

5.  Brown adipose tissue activity controls triglyceride clearance.

Authors:  Alexander Bartelt; Oliver T Bruns; Rudolph Reimer; Heinz Hohenberg; Harald Ittrich; Kersten Peldschus; Michael G Kaul; Ulrich I Tromsdorf; Horst Weller; Christian Waurisch; Alexander Eychmüller; Philip L S M Gordts; Franz Rinninger; Karoline Bruegelmann; Barbara Freund; Peter Nielsen; Martin Merkel; Joerg Heeren
Journal:  Nat Med       Date:  2011-01-23       Impact factor: 53.440

6.  The innate immune system in host mice targets cells with allogenic mitochondrial DNA.

Authors:  Kaori Ishikawa; Noriko Toyama-Sorimachi; Kazuto Nakada; Mami Morimoto; Hirotake Imanishi; Mariko Yoshizaki; Shigemi Sasawatari; Mamoru Niikura; Keizo Takenaga; Hiromichi Yonekawa; Jun-Ichi Hayashi
Journal:  J Exp Med       Date:  2010-10-11       Impact factor: 14.307

7.  Cold-activated brown adipose tissue in healthy men.

Authors:  Wouter D van Marken Lichtenbelt; Joost W Vanhommerig; Nanda M Smulders; Jamie M A F L Drossaerts; Gerrit J Kemerink; Nicole D Bouvy; Patrick Schrauwen; G J Jaap Teule
Journal:  N Engl J Med       Date:  2009-04-09       Impact factor: 91.245

8.  Identification and importance of brown adipose tissue in adult humans.

Authors:  Aaron M Cypess; Sanaz Lehman; Gethin Williams; Ilan Tal; Dean Rodman; Allison B Goldfine; Frank C Kuo; Edwin L Palmer; Yu-Hua Tseng; Alessandro Doria; Gerald M Kolodny; C Ronald Kahn
Journal:  N Engl J Med       Date:  2009-04-09       Impact factor: 91.245

9.  Decreased brown fat markedly enhances susceptibility to diet-induced obesity, diabetes, and hyperlipidemia.

Authors:  A Hamann; J S Flier; B B Lowell
Journal:  Endocrinology       Date:  1996-01       Impact factor: 4.736

Review 10.  Anatomical locations of human brown adipose tissue: functional relevance and implications in obesity and type 2 diabetes.

Authors:  Harold Sacks; Michael E Symonds
Journal:  Diabetes       Date:  2013-06       Impact factor: 9.461

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  3 in total

Review 1.  Recent Progress in Stem Cell Modification for Cardiac Regeneration.

Authors:  Heiko Lemcke; Natalia Voronina; Gustav Steinhoff; Robert David
Journal:  Stem Cells Int       Date:  2018-01-16       Impact factor: 5.443

2.  Exogenous Cytokine-Free Differentiation of Human Pluripotent Stem Cells into Classical Brown Adipocytes.

Authors:  Masako Oka; Norihiko Kobayashi; Kazunori Matsumura; Miwako Nishio; Kumiko Saeki
Journal:  Cells       Date:  2019-04-24       Impact factor: 6.600

Review 3.  The Remaining Mysteries about Brown Adipose Tissues.

Authors:  Miwako Nishio; Kumiko Saeki
Journal:  Cells       Date:  2020-11-10       Impact factor: 6.600

  3 in total

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