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PMID: 19440340 Published · ppublish English Journal Article Research Support, Non-U.S. Gov't

miRNA in the regulation of skeletal muscle adaptation to acute endurance exercise in C57Bl/6J male mice.

PloS one ·Vol. 4 ·No. 5 ·2009-00-00 ·Pages e5610

Safdar A, Abadi A, Akhtar M, Hettinga BP, Tarnopolsky MA

Abstract

MicroRNAs (miRNAs) are evolutionarily conserved small non-coding RNA species involved in post-transcriptional gene regulation. In vitro studies have identified a small number of skeletal muscle-specific miRNAs which play a crucial role in myoblast proliferation and differentiation. In skeletal muscle, an acute bout of endurance exercise results in the up-regulation of transcriptional networks that regulate mitochondrial biogenesis, glucose and fatty acid metabolism, and skeletal muscle remodelling. The purpose of this study was to assess the expressional profile of targeted miRNA species following an acute bout of endurance exercise and to determine relationships with previously established endurance exercise responsive transcriptional networks. C57Bl/6J wild-type male mice (N = 7/group) were randomly assigned to either sedentary or forced-endurance exercise (treadmill run @ 15 m/min for 90 min) group. The endurance exercise group was sacrificed three hours following a single bout of exercise. The expression of miR- 181, 1, 133, 23, and 107, all of which have been predicted to regulate transcription factors and co-activators involved in the adaptive response to exercise, was measured in quadriceps femoris muscle. Endurance exercise significantly increased the expression of miR-181, miR-1, and miR-107 by 37%, 40%, and 56%, respectively, and reduced miR-23 expression by 84% (P<or=0.05 for all), with no change in miR-133. Importantly, decreased expression of miRNA-23, a putative negative regulator of PGC-1alpha was consistent with increased expression of PGC-1alpha mRNA and protein along with several downstream targets of PGC-1alpha including ALAS, CS, and cytochrome c mRNA. PDK4 protein content remains unaltered despite an increase in its putative negative regulator, miR-107, and PDK4 mRNA expression. mRNA expression of miRNA processing machinery (Drosha, Dicer, and DGCR8) remained unchanged. We conclude that miRNA-mediated post-transcriptional regulation is potentially involved in the complex regulatory networks that govern skeletal muscle adaptation to endurance exercise in C57Bl/6J male mice.

MeSH Terms
Animals Electrophoresis, Polyacrylamide Gel Gene Expression Regulation/genetics,physiology Male Mice Mice, Inbred C57BL MicroRNAs/genetics,physiology Muscle, Skeletal/metabolism Peroxisome Proliferator-Activated Receptor Gamma Coactivator 1-alpha Physical Conditioning, Animal/physiology Protein Serine-Threonine Kinases/genetics Pyruvate Dehydrogenase Acetyl-Transferring Kinase Trans-Activators/metabolism Transcription Factors
Chemicals
MicroRNAs Pdk4 protein, mouse Peroxisome Proliferator-Activated Receptor Gamma Coactivator 1-alpha Ppargc1a protein, mouse Pyruvate Dehydrogenase Acetyl-Transferring Kinase Trans-Activators Transcription Factors Protein Serine-Threonine Kinases
Authors & Affiliations
5 authors, click to expand affiliations / ORCID
Safdar Adeel
Department of Kinesiology, McMaster University, Hamilton, Ontario, Canada.
Abadi Arkan
Akhtar Mahmood
Hettinga Bart P
Tarnopolsky Mark A
References (62)
62 references, click to expand
  1. Endurance exercise as a countermeasure for aging.
    Diabetes. 2008 Nov;57(11):2933-42 PMID: 18716044
  2. Adaptations of skeletal muscle to exercise: rapid increase in the transcriptional coactivator PGC-1.
    FASEB J. 2002 Dec;16(14):1879-86 PMID: 12468452
  3. Divergent effects of exercise on metabolic and mitogenic signaling pathways in human skeletal muscle.
    FASEB J. 1998 Oct;12(13):1379-89 PMID: 9761781
  4. Skeletal muscle overexpression of nuclear respiratory factor 1 increases glucose transport capacity.
    FASEB J. 2003 Sep;17(12):1666-73 PMID: 12958173
  5. Thia fatty acids, metabolism and metabolic effects.
    Biochim Biophys Acta. 1997 Jan 21;1344(2):115-31 PMID: 9030189
  6. MicroRNAs: regulators of oncogenesis and stemness.
    BMC Med. 2008 Jun 24;6:15 PMID: 18577221
  7. The role of microRNA-1 and microRNA-133 in skeletal muscle proliferation and differentiation.
    Nat Genet. 2006 Feb;38(2):228-33 PMID: 16380711
  8. Mesodermally expressed Drosophila microRNA-1 is regulated by Twist and is required in muscles during larval growth.
    Genes Dev. 2005 Oct 1;19(19):2343-54 PMID: 16166373
  9. Muscle contractile activity increases fatty acid metabolism and transport and FAT/CD36.
    Am J Physiol. 1999 Apr;276(4):E642-9 PMID: 10198299
  10. Effect of sex differences on human MEF2 regulation during endurance exercise.
    Am J Physiol Endocrinol Metab. 2008 Feb;294(2):E408-15 PMID: 18042665
  11. Analysis of global mRNA expression in human skeletal muscle during recovery from endurance exercise.
    FASEB J. 2005 Sep;19(11):1498-500 PMID: 15985525
  12. The expression of microRNA miR-107 decreases early in Alzheimer's disease and may accelerate disease progression through regulation of beta-site amyloid precursor protein-cleaving enzyme 1.
    J Neurosci. 2008 Jan 30;28(5):1213-23 PMID: 18234899
  13. MicroRNAs in organogenesis and disease.
    Curr Mol Med. 2008 Dec;8(8):698-710 PMID: 19075669
  14. Using systems biology to define the essential biological networks responsible for adaptation to endurance exercise training.
    Biochem Soc Trans. 2007 Nov;35(Pt 5):1306-9 PMID: 17956337
  15. The microRNA miR-181 targets the homeobox protein Hox-A11 during mammalian myoblast differentiation.
    Nat Cell Biol. 2006 Mar;8(3):278-84 PMID: 16489342
  16. PPARalpha controls the intracellular coenzyme A concentration via regulation of PANK1alpha gene expression.
    J Lipid Res. 2004 Jan;45(1):17-31 PMID: 14523052
  17. Exercise plus behavioral management in patients with Alzheimer disease: a randomized controlled trial.
    JAMA. 2003 Oct 15;290(15):2015-22 PMID: 14559955
  18. Control of gene expression and mitochondrial biogenesis in the muscular adaptation to endurance exercise.
    Essays Biochem. 2006;42:13-29 PMID: 17144877
  19. Exercise-induced mitochondrial biogenesis begins before the increase in muscle PGC-1alpha expression.
    J Biol Chem. 2007 Jan 5;282(1):194-9 PMID: 17099248
  20. PGC-1alpha protects skeletal muscle from atrophy by suppressing FoxO3 action and atrophy-specific gene transcription.
    Proc Natl Acad Sci U S A. 2006 Oct 31;103(44):16260-5 PMID: 17053067
  21. Transcriptional regulation of gene expression in human skeletal muscle during recovery from exercise.
    Am J Physiol Endocrinol Metab. 2000 Oct;279(4):E806-14 PMID: 11001762
  22. Recent advances in mechanisms regulating glucose oxidation at the level of the pyruvate dehydrogenase complex by PDKs.
    Am J Physiol Endocrinol Metab. 2003 May;284(5):E855-62 PMID: 12676647
  23. Mechanisms controlling mitochondrial biogenesis and respiration through the thermogenic coactivator PGC-1.
    Cell. 1999 Jul 9;98(1):115-24 PMID: 10412986
  24. The muscle-specific ubiquitin ligase atrogin-1/MAFbx mediates statin-induced muscle toxicity.
    J Clin Invest. 2007 Dec;117(12):3940-51 PMID: 17992259
  25. Distinct expression of muscle-specific microRNAs (myomirs) in brown adipocytes.
    J Cell Physiol. 2009 Feb;218(2):444-9 PMID: 18937285
  26. Energizing miRNA research: a review of the role of miRNAs in lipid metabolism, with a prediction that miR-103/107 regulates human metabolic pathways.
    Mol Genet Metab. 2007 Jul;91(3):209-17 PMID: 17521938
  27. Exercise is associated with reduced risk for incident dementia among persons 65 years of age and older.
    Ann Intern Med. 2006 Jan 17;144(2):73-81 PMID: 16418406
  28. Muscle fiber type comparison of PDH kinase activity and isoform expression in fed and fasted rats.
    Am J Physiol Regul Integr Comp Physiol. 2001 Mar;280(3):R661-8 PMID: 11171643
  29. Distinctive patterns of microRNA expression in primary muscular disorders.
    Proc Natl Acad Sci U S A. 2007 Oct 23;104(43):17016-21 PMID: 17942673
  30. Activation of PPARgamma coactivator-1 through transcription factor docking.
    Science. 1999 Nov 12;286(5443):1368-71 PMID: 10558993
  31. Signalling mechanisms in skeletal muscle: role in substrate selection and muscle adaptation.
    Essays Biochem. 2006;42:1-12 PMID: 17144876
  32. Significance of skeletal muscle oxidative enzyme enhancement with endurance training.
    Clin Physiol. 1982 Feb;2(1):1-12 PMID: 7201906
  33. How do microRNAs regulate gene expression?
    Sci STKE. 2007 Jan 02;2007(367):re1 PMID: 17200520
  34. The C. elegans heterochronic gene lin-4 encodes small RNAs with antisense complementarity to lin-14.
    Cell. 1993 Dec 3;75(5):843-54 PMID: 8252621
  35. microRNAs and the regulation of glucose and lipid metabolism.
    Diabetes Obes Metab. 2007 Nov;9 Suppl 2:67-73 PMID: 17919180
  36. How do microRNAs regulate gene expression?
    Biochem Soc Trans. 2008 Dec;36(Pt 6):1224-31 PMID: 19021530
  37. Influence of pre-exercise muscle glycogen content on exercise-induced transcriptional regulation of metabolic genes.
    J Physiol. 2002 May 15;541(Pt 1):261-71 PMID: 12015434
  38. Transcriptional co-activator PGC-1 alpha drives the formation of slow-twitch muscle fibres.
    Nature. 2002 Aug 15;418(6899):797-801 PMID: 12181572
  39. PGC-1alpha regulates the neuromuscular junction program and ameliorates Duchenne muscular dystrophy.
    Genes Dev. 2007 Apr 1;21(7):770-83 PMID: 17403779
  40. Biochemical adaptations to endurance exercise in muscle.
    Annu Rev Physiol. 1976;38:273-91 PMID: 130825
  41. Reduced disability and mortality among aging runners: a 21-year longitudinal study.
    Arch Intern Med. 2008 Aug 11;168(15):1638-46 PMID: 18695077
  42. The molecular bases of training adaptation.
    Sports Med. 2007;37(9):737-63 PMID: 17722947
  43. Muscling through the microRNA world.
    Exp Biol Med (Maywood). 2008 Feb;233(2):131-8 PMID: 18222968
  44. Gene expression in working skeletal muscle.
    Adv Exp Med Biol. 2007;618:245-54 PMID: 18269202
  45. The muscle-specific microRNAs miR-1 and miR-133 produce opposing effects on apoptosis by targeting HSP60, HSP70 and caspase-9 in cardiomyocytes.
    J Cell Sci. 2007 Sep 1;120(Pt 17):3045-52 PMID: 17715156
  46. Substrate utilization during endurance exercise in men and women after endurance training.
    Am J Physiol Endocrinol Metab. 2001 Jun;280(6):E898-907 PMID: 11350771
  47. Exercise rapidly increases eukaryotic elongation factor 2 phosphorylation in skeletal muscle of men.
    J Physiol. 2005 Nov 15;569(Pt 1):223-8 PMID: 16210351
  48. Real-time RT-PCR analysis of housekeeping genes in human skeletal muscle following acute exercise.
    Physiol Genomics. 2004 Jul 08;18(2):226-31 PMID: 15161965
  49. Conserved seed pairing, often flanked by adenosines, indicates that thousands of human genes are microRNA targets.
    Cell. 2005 Jan 14;120(1):15-20 PMID: 15652477
  50. Regulation of pyruvate dehydrogenase complex activity by reversible phosphorylation.
    Biochem Soc Trans. 2003 Dec;31(Pt 6):1143-51 PMID: 14641014
  51. MicroRNAs flex their muscles.
    Trends Genet. 2008 Apr;24(4):159-66 PMID: 18325627
  52. Targeted upregulation of pyruvate dehydrogenase kinase (PDK)-4 in slow-twitch skeletal muscle underlies the stable modification of the regulatory characteristics of PDK induced by high-fat feeding.
    Diabetes. 2000 May;49(5):775-81 PMID: 10905486
  53. Serum response factor regulates a muscle-specific microRNA that targets Hand2 during cardiogenesis.
    Nature. 2005 Jul 14;436(7048):214-20 PMID: 15951802
  54. Peroxisome proliferator-activated receptor-gamma coactivator 1 alpha (PGC-1 alpha): transcriptional coactivator and metabolic regulator.
    Endocr Rev. 2003 Feb;24(1):78-90 PMID: 12588810
  55. Functional, structural and molecular plasticity of mammalian skeletal muscle in response to exercise stimuli.
    J Exp Biol. 2006 Jun;209(Pt 12):2239-48 PMID: 16731801
  56. Exercise induces rapid increases in GLUT4 expression, glucose transport capacity, and insulin-stimulated glycogen storage in muscle.
    J Biol Chem. 1994 May 20;269(20):14396-401 PMID: 8182045
  57. Skeletal muscle adaptation to exercise: a century of progress.
    J Appl Physiol (1985). 2000 Jan;88(1):327-31 PMID: 10642397
  58. Cardiovascular risk factors emerge after artificial selection for low aerobic capacity.
    Science. 2005 Jan 21;307(5708):418-20 PMID: 15662013
  59. Sorting out the roles of PPAR alpha in energy metabolism and vascular homeostasis.
    J Clin Invest. 2006 Mar;116(3):571-80 PMID: 16511589
  60. MicroRNA-1 and microRNA-133a expression are decreased during skeletal muscle hypertrophy.
    J Appl Physiol (1985). 2007 Jan;102(1):306-13 PMID: 17008435
  61. Differential transcriptional activation of select metabolic genes in response to variations in exercise intensity and duration.
    Am J Physiol Endocrinol Metab. 2003 Nov;285(5):E1021-7 PMID: 12902322
  62. Transcriptional regulatory circuits controlling mitochondrial biogenesis and function.
    Genes Dev. 2004 Feb 15;18(4):357-68 PMID: 15004004
Article Info
Journal
PloS one
Abbr.
PLoS One
ISSN
1932-6203
Published
2009-00-00
Epub
2009-00-19
Pages
e5610
Language
English
Region
United States
NLM ID
101285081
PMCID
PMC2680038
Subset
IM
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