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PMID: 28333151 Published · epublish English Journal Article

FTO is required for myogenesis by positively regulating mTOR-PGC-1α pathway-mediated mitochondria biogenesis.

Cell death & disease ·Vol. 8 ·No. 3 ·2017-00-23 ·Pages e2702

Wang X, Huang N, Yang M, Wei D, Tai H, Han X, Gong H, Zhou J, Qin J, Wei X, Chen H, Fang T, Xiao H

Abstract

Global germ line loss of fat mass- and obesity-associated (FTO) gene results in both the reduction of fat mass and lean mass in mice. The role of FTO in adipogenesis has been proposed, however, that in myogenesis has not. Skeletal muscle is the main component of body lean mass, so its connection with FTO physiologic significance need to be clarified. Here, we assessed the impact of FTO on murine skeletal muscle differentiation by in vitro and in vivo experiments. We found that FTO expression increased during myoblasts differentiation, while the silence of FTO inhibited the differentiation; in addition, skeletal muscle development was impaired in skeletal muscle FTO-deficient mice. Significantly, FTO-promoted myogenic differentiation was dependent on its m6A demethylase activity. Mechanically, we found that FTO downregulation suppressed mitochondria biogenesis and energy production, showing as the decreased mitochondria mass and mitochondrial DNA (mtDNA) content, the downregulated expression of mtDNA-encoding genes and peroxisome proliferator-activated receptor gamma coactivator 1 alpha (PGC-1α) gene, together with declined ATP level. Moreover, the involvement of mTOR-PGC-1α pathway in the connection between FTO and muscle differentiation is displayed, since the expression of FTO affected the activity of mTOR and rapamycin blocked FTO-induced PGC-1α transcription, along with the parallel alteration pattern of FTO expression and mTOR phosphorylation during myoblasts differentiation. Summarily, our findings provide the first evidence for the contribution of FTO for skeletal muscle differentiation and a new insight to study the physiologic significance of RNA methylation.

MeSH Terms
Adenosine Triphosphate/metabolism Alpha-Ketoglutarate-Dependent Dioxygenase FTO/metabolism Animals Biosynthetic Pathways/physiology Cell Differentiation/physiology Cells, Cultured DNA, Mitochondrial/metabolism Down-Regulation/physiology Female Mice, Inbred C57BL Mice, Knockout Mitochondria/metabolism,physiology Muscle Development/physiology Muscle, Skeletal/metabolism,physiology Myoblasts/metabolism,physiology PPAR gamma/metabolism Peroxisome Proliferator-Activated Receptor Gamma Coactivator 1-alpha/metabolism Phosphorylation/physiology Pregnancy Signal Transduction/physiology TOR Serine-Threonine Kinases/metabolism Transcription, Genetic/physiology
Chemicals
DNA, Mitochondrial PPAR gamma Peroxisome Proliferator-Activated Receptor Gamma Coactivator 1-alpha Ppargc1a protein, mouse Adenosine Triphosphate FTO protein, mouse Alpha-Ketoglutarate-Dependent Dioxygenase FTO mTOR protein, mouse TOR Serine-Threonine Kinases
Authors & Affiliations
13 authors, click to expand affiliations / ORCID
Wang Xiaobo
Lab for Aging Research, Center of Gerontology and Geriatrics, State Key Laboratory of Biotherapy, West China Hospital, Sichuan University and Collaborative Innovation Center, Chengdu 610041, China.
Huang Ning
Lab for Aging Research, Center of Gerontology and Geriatrics, State Key Laboratory of Biotherapy, West China Hospital, Sichuan University and Collaborative Innovation Center, Chengdu 610041, China.
Yang Min
Lab for Aging Research, Center of Gerontology and Geriatrics, State Key Laboratory of Biotherapy, West China Hospital, Sichuan University and Collaborative Innovation Center, Chengdu 610041, China.
Wei Dandan
Lab for Aging Research, Center of Gerontology and Geriatrics, State Key Laboratory of Biotherapy, West China Hospital, Sichuan University and Collaborative Innovation Center, Chengdu 610041, China.
Tai Haoran
Lab for Aging Research, Center of Gerontology and Geriatrics, State Key Laboratory of Biotherapy, West China Hospital, Sichuan University and Collaborative Innovation Center, Chengdu 610041, China.
Han Xiaojuan
Lab for Aging Research, Center of Gerontology and Geriatrics, State Key Laboratory of Biotherapy, West China Hospital, Sichuan University and Collaborative Innovation Center, Chengdu 610041, China.
Gong Hui
Lab for Aging Research, Center of Gerontology and Geriatrics, State Key Laboratory of Biotherapy, West China Hospital, Sichuan University and Collaborative Innovation Center, Chengdu 610041, China.
Zhou Jiao
Lab for Aging Research, Center of Gerontology and Geriatrics, State Key Laboratory of Biotherapy, West China Hospital, Sichuan University and Collaborative Innovation Center, Chengdu 610041, China.
Qin Jianqiong
Lab for Aging Research, Center of Gerontology and Geriatrics, State Key Laboratory of Biotherapy, West China Hospital, Sichuan University and Collaborative Innovation Center, Chengdu 610041, China.
Wei Xiawei
Lab for Aging Research, Center of Gerontology and Geriatrics, State Key Laboratory of Biotherapy, West China Hospital, Sichuan University and Collaborative Innovation Center, Chengdu 610041, China.
Chen Honghan
Lab for Aging Research, Center of Gerontology and Geriatrics, State Key Laboratory of Biotherapy, West China Hospital, Sichuan University and Collaborative Innovation Center, Chengdu 610041, China.
Fang Tingting
Lab for Aging Research, Center of Gerontology and Geriatrics, State Key Laboratory of Biotherapy, West China Hospital, Sichuan University and Collaborative Innovation Center, Chengdu 610041, China.
Xiao Hengyi
Lab for Aging Research, Center of Gerontology and Geriatrics, State Key Laboratory of Biotherapy, West China Hospital, Sichuan University and Collaborative Innovation Center, Chengdu 610041, China.
References (42)
42 references, click to expand
  1. FTO-dependent demethylation of N6-methyladenosine regulates mRNA splicing and is required for adipogenesis.
    Cell Res. 2014 Dec;24(12 ):1403-19 PMID: 25412662
  2. Retrograde Ca2+ signaling in C2C12 skeletal myocytes in response to mitochondrial genetic and metabolic stress: a novel mode of inter-organelle crosstalk.
    EMBO J. 1999 Feb 1;18(3):522-33 PMID: 9927412
  3. Isolation of a slowly adhering cell fraction containing stem cells from murine skeletal muscle by the preplate technique.
    Nat Protoc. 2008;3(9):1501-9 PMID: 18772878
  4. Muscles, exercise and obesity: skeletal muscle as a secretory organ.
    Nat Rev Endocrinol. 2012 Apr 03;8(8):457-65 PMID: 22473333
  5. Variation in FTO contributes to childhood obesity and severe adult obesity.
    Nat Genet. 2007 Jun;39(6):724-6 PMID: 17496892
  6. Satellite cells, the engines of muscle repair.
    Nat Rev Mol Cell Biol. 2011 Dec 21;13(2):127-33 PMID: 22186952
  7. Genome-wide association scan shows genetic variants in the FTO gene are associated with obesity-related traits.
    PLoS Genet. 2007 Jul;3(7):e115 PMID: 17658951
  8. Early hypothalamic FTO overexpression in response to maternal obesity--potential contribution to postweaning hyperphagia.
    PLoS One. 2011;6(9):e25261 PMID: 21980407
  9. Development of cell-active N6-methyladenosine RNA demethylase FTO inhibitor.
    J Am Chem Soc. 2012 Oct 31;134(43):17963-71 PMID: 23045983
  10. N6-methyladenosine in nuclear RNA is a major substrate of the obesity-associated FTO.
    Nat Chem Biol. 2011 Oct 16;7(12 ):885-7 PMID: 22002720
  11. Chloramphenicol, an inhibitor of mitochondrial protein synthesis, inhibits myoblast fusion and myotube differentiation.
    Folia Histochem Cytobiol. 1993;31(1):9-13 PMID: 8500631
  12. Satellite cells and the muscle stem cell niche.
    Physiol Rev. 2013 Jan;93(1):23-67 PMID: 23303905
  13. FTO effect on energy demand versus food intake.
    Nature. 2010 Apr 1;464(7289):E1; discussion E2 PMID: 20360686
  14. mTOR signaling at a glance.
    J Cell Sci. 2009 Oct 15;122(Pt 20):3589-94 PMID: 19812304
  15. Role for the obesity-related FTO gene in the cellular sensing of amino acids.
    Proc Natl Acad Sci U S A. 2013 Feb 12;110(7):2557-62 PMID: 23359686
  16. Muscle stem cells in development, regeneration, and disease.
    Genes Dev. 2006 Jul 1;20(13):1692-708 PMID: 16818602
  17. Adiponectin and AdipoR1 regulate PGC-1alpha and mitochondria by Ca(2+) and AMPK/SIRT1.
    Nature. 2010 Apr 29;464(7293):1313-9 PMID: 20357764
  18. A common variant in the FTO gene is associated with body mass index and predisposes to childhood and adult obesity.
    Science. 2007 May 11;316(5826):889-94 PMID: 17434869
  19. AMP-activated protein kinase (AMPK) action in skeletal muscle via direct phosphorylation of PGC-1alpha.
    Proc Natl Acad Sci U S A. 2007 Jul 17;104(29):12017-22 PMID: 17609368
  20. A tetracycline-inducible and skeletal muscle-specific Cre recombinase transgenic mouse.
    Dev Neurobiol. 2009 May;69(6):401-6 PMID: 19263419
  21. Inactivation of the Fto gene protects from obesity.
    Nature. 2009 Apr 16;458(7240):894-8 PMID: 19234441
  22. FTO influences adipogenesis by regulating mitotic clonal expansion.
    Nat Commun. 2015 Apr 17;6:6792 PMID: 25881961
  23. Crystal structure of the FTO protein reveals basis for its substrate specificity.
    Nature. 2010 Apr 22;464(7292):1205-9 PMID: 20376003
  24. mTOR controls mitochondrial oxidative function through a YY1-PGC-1alpha transcriptional complex.
    Nature. 2007 Nov 29;450(7170):736-40 PMID: 18046414
  25. GCN5 acetyltransferase complex controls glucose metabolism through transcriptional repression of PGC-1alpha.
    Cell Metab. 2006 Jun;3(6):429-38 PMID: 16753578
  26. Mitochondrial activity is involved in the regulation of myoblast differentiation through myogenin expression and activity of myogenic factors.
    J Biol Chem. 2000 Jan 28;275(4):2733-44 PMID: 10644737
  27. A genome-wide association study of type 2 diabetes in Finns detects multiple susceptibility variants.
    Science. 2007 Jun 1;316(5829):1341-5 PMID: 17463248
  28. Mitochondrial activity regulates myoblast differentiation by control of c-Myc expression.
    J Cell Physiol. 2006 Apr;207(1):75-86 PMID: 16261590
  29. Mitochondria as a potential regulator of myogenesis.
    ScientificWorldJournal. 2013;2013:593267 PMID: 23431256
  30. Akt/PKB regulates hepatic metabolism by directly inhibiting PGC-1alpha transcription coactivator.
    Nature. 2007 Jun 21;447(7147):1012-6 PMID: 17554339
  31. The metabolic syndrome: role of skeletal muscle metabolism.
    Ann Med. 2006;38(6):389-402 PMID: 17008303
  32. The Demethylase Activity of FTO (Fat Mass and Obesity Associated Protein) Is Required for Preadipocyte Differentiation.
    PLoS One. 2015 Jul 28;10 (7):e0133788 PMID: 26218273
  33. Cytokine stimulation of energy expenditure through p38 MAP kinase activation of PPARgamma coactivator-1.
    Mol Cell. 2001 Nov;8(5):971-82 PMID: 11741533
  34. Adult onset global loss of the fto gene alters body composition and metabolism in the mouse.
    PLoS Genet. 2013;9(1):e1003166 PMID: 23300482
  35. Mechanisms controlling mitochondrial biogenesis and respiration through the thermogenic coactivator PGC-1.
    Cell. 1999 Jul 9;98 (1):115-24 PMID: 10412986
  36. Oxidative demethylation of 3-methylthymine and 3-methyluracil in single-stranded DNA and RNA by mouse and human FTO.
    FEBS Lett. 2008 Oct 15;582(23-24):3313-9 PMID: 18775698
  37. The obesity-associated FTO gene encodes a 2-oxoglutarate-dependent nucleic acid demethylase.
    Science. 2007 Nov 30;318(5855):1469-72 PMID: 17991826
  38. Mitochondrial dynamics in the central regulation of metabolism.
    Nat Rev Endocrinol. 2014 Nov;10(11):650-8 PMID: 25200564
  39. The fat mass and obesity associated gene FTO functions in the brain to regulate postnatal growth in mice.
    PLoS One. 2010 Nov 16;5(11):e14005 PMID: 21103374
  40. Overexpression of Fto leads to increased food intake and results in obesity.
    Nat Genet. 2010 Dec;42(12 ):1086-92 PMID: 21076408
  41. Myogenin, a factor regulating myogenesis, has a domain homologous to MyoD.
    Cell. 1989 Feb 24;56(4):607-17 PMID: 2537150
  42. Type 2 diabetes: principles of pathogenesis and therapy.
    Lancet. 2005 Apr 9-15;365(9467):1333-46 PMID: 15823385
Article Info
Journal
Cell death & disease
Abbr.
Cell Death Dis
ISSN
2041-4889
Published
2017-00-23
Epub
2017-00-23
Pages
e2702
Language
English
Region
England
NLM ID
101524092
PMCID
PMC5386528
Subset
IM
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