Home LiteratureArticle Details
PMID: 9716403 Published · ppublish English Journal Article Research Support, U.S. Gov't, P.H.S.

A calcineurin-dependent transcriptional pathway controls skeletal muscle fiber type.

Genes & development ·Vol. 12 ·No. 16 ·1998-08-15 ·Pages 2499-509

Chin ER, Olson EN, Richardson JA, Yang Q, Humphries C, Shelton JM, Wu H, Zhu W, Bassel-Duby R, Williams RS

Abstract

Slow- and fast-twitch myofibers of adult skeletal muscles express unique sets of muscle-specific genes, and these distinctive programs of gene expression are controlled by variations in motor neuron activity. It is well established that, as a consequence of more frequent neural stimulation, slow fibers maintain higher levels of intracellular free calcium than fast fibers, but the mechanisms by which calcium may function as a messenger linking nerve activity to changes in gene expression in skeletal muscle have been unknown. Here, fiber-type-specific gene expression in skeletal muscles is shown to be controlled by a signaling pathway that involves calcineurin, a cyclosporin-sensitive, calcium-regulated serine/threonine phosphatase. Activation of calcineurin in skeletal myocytes selectively up-regulates slow-fiber-specific gene promoters. Conversely, inhibition of calcineurin activity by administration of cyclosporin A to intact animals promotes slow-to-fast fiber transformation. Transcriptional activation of slow-fiber-specific transcription appears to be mediated by a combinatorial mechanism involving proteins of the NFAT and MEF2 families. These results identify a molecular mechanism by which different patterns of motor nerve activity promote selective changes in gene expression to establish the specialized characteristics of slow and fast myofibers.

MeSH Terms
3T3 Cells Animals Binding Sites Calcineurin/physiology Calcineurin Inhibitors Calcium/metabolism Cell Line Cyclosporine/pharmacology DNA-Binding Proteins/metabolism Gene Expression Regulation Mice Motor Neurons/physiology Muscle Fibers, Fast-Twitch/physiology Muscle Fibers, Skeletal/physiology Muscle Fibers, Slow-Twitch/physiology Muscle, Skeletal/physiology NFATC Transcription Factors Nuclear Proteins Promoter Regions, Genetic Rats Signal Transduction Transcription Factors/metabolism,physiology Transcription, Genetic Transcriptional Activation
Chemicals
Calcineurin Inhibitors DNA-Binding Proteins NFATC Transcription Factors Nuclear Proteins Transcription Factors Cyclosporine Calcineurin Calcium
Authors & Affiliations
10 authors, click to expand affiliations / ORCID
Chin E R
Departments of Internal Medicine, University of Texas Southwestern Medical Center, Dallas, Texas 75235, USA.
Olson E N
Richardson J A
Yang Q
Humphries C
Shelton J M
Wu H
Zhu W
Bassel-Duby R
Williams R S
References (55)
55 references, click to expand
  1. Changes of myoplasmic calcium concentration during fatigue in single mouse muscle fibers.
    J Gen Physiol. 1991 Sep;98(3):615-35 PMID: 1761971
  2. Elements regulating cardiomyocyte expression of the human sarcomeric mitochondrial creatine kinase gene in transgenic mice.
    J Biol Chem. 1997 Oct 3;272(40):25210-6 PMID: 9312135
  3. Adaptation of mammalian skeletal muscle fibers to chronic electrical stimulation.
    Rev Physiol Biochem Pharmacol. 1992;120:115-202 PMID: 1519018
  4. Transcription factors of the NFAT family: regulation and function.
    Annu Rev Immunol. 1997;15:707-47 PMID: 9143705
  5. Mechanisms of formation of muscle fiber types.
    Cell Struct Funct. 1997 Feb;22(1):37-43 PMID: 9113388
  6. Adaptations of skeletal muscle to endurance exercise and their metabolic consequences.
    J Appl Physiol Respir Environ Exerc Physiol. 1984 Apr;56(4):831-8 PMID: 6373687
  7. Regulation of nuclear and mitochondrial gene expression by contractile activity in skeletal muscle.
    J Biol Chem. 1986 Jan 5;261(1):376-80 PMID: 3941082
  8. Biphasic induction of immediate early gene expression accompanies activity-dependent angiogenesis and myofiber remodeling of rabbit skeletal muscle.
    J Clin Invest. 1994 Jul;94(1):277-85 PMID: 7518831
  9. Identification of a muscle-specific enhancer within the 5'-flanking region of the human myoglobin gene.
    J Biol Chem. 1989 Aug 15;264(23):13896-901 PMID: 2760049
  10. Effect of spaceflight on skeletal muscle: mechanical properties and myosin isoform content of a slow muscle.
    J Appl Physiol (1985). 1994 Apr;76(4):1764-73 PMID: 8045858
  11. Combinatorial control of muscle development by basic helix-loop-helix and MADS-box transcription factors.
    Proc Natl Acad Sci U S A. 1996 Sep 3;93(18):9366-73 PMID: 8790335
  12. Thyroid hormone receptor alpha isoforms generated by alternative splicing differentially activate myosin HC gene transcription.
    Nature. 1988 Aug 11;334(6182):539-42 PMID: 2841611
  13. Changes in intracellular ionized Ca concentration associated with muscle fiber type transformation.
    Am J Physiol. 1987 Aug;253(2 Pt 1):C296-300 PMID: 2956887
  14. Continuous contractile activity induces fiber type specific expression of HSP70 in skeletal muscle.
    Am J Physiol. 1996 Dec;271(6 Pt 1):C1828-37 PMID: 8997182
  15. Regulation of muscle differentiation by the MEF2 family of MADS box transcription factors.
    Dev Biol. 1995 Nov;172(1):2-14 PMID: 7589800
  16. FK-506- and CsA-sensitive activation of the interleukin-2 promoter by calcineurin.
    Nature. 1992 Jun 25;357(6380):692-4 PMID: 1377361
  17. Decreased proportion of type I myofibers in skeletal muscle of dogs with chronic heart failure.
    Circulation. 1993 May;87(5):1729-37 PMID: 8387901
  18. Profiles of creatine kinase isoenzyme compositions in single muscle fibres of different types.
    J Muscle Res Cell Motil. 1991 Feb;12(1):37-44 PMID: 2050810
  19. Selective inhibition of NFAT activation by a peptide spanning the calcineurin targeting site of NFAT.
    Mol Cell. 1998 Apr;1(5):627-37 PMID: 9660947
  20. Muscle fiber types: how many and what kind?
    Arch Neurol. 1970 Oct;23(4):369-79 PMID: 4248905
  21. MyoD protein is differentially accumulated in fast and slow skeletal muscle fibres and required for normal fibre type balance in rodents.
    Mech Dev. 1997 Jan;61(1-2):151-63 PMID: 9076685
  22. FGF inactivates myogenic helix-loop-helix proteins through phosphorylation of a conserved protein kinase C site in their DNA-binding domains.
    Cell. 1992 Dec 24;71(7):1181-94 PMID: 1335366
  23. Glucose transporters in single skeletal muscle fibers. Relationship to hexokinase and regulation by contractile activity.
    J Biol Chem. 1994 Apr 29;269(17):12963-7 PMID: 8175714
  24. Calcineurin is a common target of cyclophilin-cyclosporin A and FKBP-FK506 complexes.
    Cell. 1991 Aug 23;66(4):807-15 PMID: 1715244
  25. Fast muscle fibers are preferentially affected in Duchenne muscular dystrophy.
    Cell. 1988 Feb 26;52(4):503-13 PMID: 3342447
  26. Transcriptional control of muscle development by myocyte enhancer factor-2 (MEF2) proteins.
    Annu Rev Cell Dev Biol. 1998;14:167-96 PMID: 9891782
  27. Transient expression of a winged-helix protein, MNF-beta, during myogenesis.
    Mol Cell Biol. 1997 Sep;17(9):5236-43 PMID: 9271401
  28. The human troponin I slow promoter directs slow fiber-specific expression in transgenic mice.
    DNA Cell Biol. 1995 Jul;14(7):599-607 PMID: 7626219
  29. Postnatal development and plasticity of specialized muscle fiber characteristics in the hindlimb.
    Dev Genet. 1996;19(2):146-56 PMID: 8900047
  30. Synergistic interactions between heterologous upstream activation elements and specific TATA sequences in a muscle-specific promoter.
    Mol Cell Biol. 1995 Apr;15(4):1870-8 PMID: 7891680
  31. Sequence elements required for transcriptional activity of the human myoglobin promoter in intact myocardium.
    Circ Res. 1993 Aug;73(2):360-6 PMID: 8330378
  32. Exercise training in patients with chronic heart failure delays ventilatory anaerobic threshold and improves submaximal exercise performance.
    Circulation. 1989 Feb;79(2):324-9 PMID: 2914350
  33. A calcineurin-dependent transcriptional pathway for cardiac hypertrophy.
    Cell. 1998 Apr 17;93(2):215-28 PMID: 9568714
  34. Competitive control of myosin expression: hypertrophy vs. hyperthyroidism.
    J Appl Physiol (1985). 1991 May;70(5):2328-30 PMID: 1864811
  35. Collaborative interactions between MEF-2 and Sp1 in muscle-specific gene regulation.
    J Cell Biochem. 1998 Sep 1;70(3):366-75 PMID: 9706874
  36. Myoblasts transferred to the limbs of embryos are committed to specific fibre fates.
    Nature. 1993 Mar 11;362(6416):165-7 PMID: 8383807
  37. Effects of cyclosporine A on skeletal muscle mitochondrial respiration and endurance time in rats.
    Am J Respir Crit Care Med. 1995 May;151(5):1532-6 PMID: 7735611
  38. Firing patterns of motor units in normal rats.
    Nature. 1985 Mar 14-20;314(6007):164-6 PMID: 3974720
  39. A novel FK506 binding protein can mediate the immunosuppressive effects of FK506 and is associated with the cardiac ryanodine receptor.
    J Biol Chem. 1995 Nov 3;270(44):26511-22 PMID: 7592869
  40. Gradients of transgene expression directed by the human myoglobin promoter in the developing mouse heart.
    Proc Natl Acad Sci U S A. 1993 Mar 1;90(5):1726-30 PMID: 8446585
  41. Molecular diversity of myofibrillar proteins: gene regulation and functional significance.
    Physiol Rev. 1996 Apr;76(2):371-423 PMID: 8618961
  42. Skeletal muscle fiber distribution influences serum high-density lipoprotein cholesterol level.
    Atherosclerosis. 1996 Feb;120(1-2):1-5 PMID: 8645350
  43. Skeletal muscle metabolism during exercise under ischemic conditions in congestive heart failure. Evidence for abnormalities unrelated to blood flow.
    Circulation. 1988 Aug;78(2):320-6 PMID: 3396168
  44. Rapid shuttling of NF-AT in discrimination of Ca2+ signals and immunosuppression.
    Nature. 1996 Oct 31;383(6603):837-40 PMID: 8893011
  45. Common core sequences are found in skeletal muscle slow- and fast-fiber-type-specific regulatory elements.
    Mol Cell Biol. 1996 May;16(5):2408-17 PMID: 8628309
  46. Identification of calcineurin as a key signalling enzyme in T-lymphocyte activation.
    Nature. 1992 Jun 25;357(6380):695-7 PMID: 1377362
  47. THE EFFECT OF MOTONEURONE ACTIVITY ON THE SPEED OF CONTRACTION OF STRIATED MUSCLE.
    J Physiol. 1963 Dec;169:513-26 PMID: 14082115
  48. Activation of calcineurin by limited proteolysis.
    Proc Natl Acad Sci U S A. 1983 Jul;80(14):4291-5 PMID: 6576338
  49. Isolation of two new members of the NF-AT gene family and functional characterization of the NF-AT proteins.
    Immunity. 1995 May;2(5):461-72 PMID: 7749981
  50. Modulation of contractile protein gene expression in fetal murine crural muscles: emergence of muscle diversity.
    Dev Dyn. 1993 Nov;198(3):203-13 PMID: 8136524
  51. NF-AT components define a family of transcription factors targeted in T-cell activation.
    Nature. 1994 Jun 9;369(6480):497-502 PMID: 8202141
  52. Calcineurin associated with the inositol 1,4,5-trisphosphate receptor-FKBP12 complex modulates Ca2+ flux.
    Cell. 1995 Nov 3;83(3):463-72 PMID: 8521476
  53. Differential activation of transcription factors induced by Ca2+ response amplitude and duration.
    Nature. 1997 Apr 24;386(6627):855-8 PMID: 9126747
  54. Characterization of the recombinant C-terminal domain of dystrophin: phosphorylation by calmodulin-dependent protein kinase II and dephosphorylation by type 2B protein phosphatase.
    Biochemistry. 1995 Apr 25;34(16):5561-8 PMID: 7727417
  55. E-box sites and a proximal regulatory region of the muscle creatine kinase gene differentially regulate expression in diverse skeletal muscles and cardiac muscle of transgenic mice.
    Mol Cell Biol. 1996 Sep;16(9):5058-68 PMID: 8756664
Article Info
Journal
Genes & development
Abbr.
Genes Dev
ISSN
0890-9369
Published
1998-08-15
Pages
2499-509
Language
English
Region
United States
NLM ID
8711660
PMCID
PMC317085
Subset
IM
Grants
NHLBI NIH HHS · HL49953 · United States
NHLBI NIH HHS · HL06296 · United States
NIAMS NIH HHS · AR40849 · United States
Analysis Services
Analysis Services

Contact

No. 2 Wenbo Road, Zhangqiu District, Jinan, Shandong

Qilu Normal University · Genelibs Bioinformatics Lab

750 Shunhua Rd, Jinan

2F, Bldg F, University Science Park

Tel: 0531-88819269

WeChat Official Account

Follow our WeChat subscription account for real-time updates and the latest in medical and biological research.


Business Email

E-mail: product@genelibs.com