Skip to main content
Top
Published in: European Journal of Applied Physiology 5/2013

01-05-2013 | Original Article

A mixed-effects model of the dynamic response of muscle gene transcript expression to endurance exercise

Authors: Thierry Busso, Martin Flück

Published in: European Journal of Applied Physiology | Issue 5/2013

Login to get access

Abstract

Altered expression of a broad range of gene transcripts after exercise reflects the specific adjustment of skeletal muscle makeup to endurance training. Towards a quantitative understanding of this molecular regulation, we aimed to build a mixed-effects model of the dynamics of co-related transcript responses to exercise. It was built on the assumption that transcript levels after exercise varied because of changes in the balance between transcript synthesis and degradation. It was applied to microarray data of 231 gene transcripts in vastus lateralis muscle of six subjects 1, 8 and 24 h after endurance exercise and 6-week training on a stationary bicycle. Cluster analysis was used to select groups of transcripts having highest co-correlation of their expression (r > 0.70): Group 1 comprised 45 transcripts including factors defining the oxidative and contractile phenotype and Group 2 included 39 transcripts mainly defined by factors found at the cell periphery and the extracellular space. Data from six subjects were pooled to filter experimental noise. The model fitted satisfactorily the responses of Group 1 (r 2 = 0.62 before and 0.85 after training, P < 0.001) and Group 2 (r 2 = 0.75 and 0.79, P < 0.001). Predicted variation in transcription rate induced by exercise yielded a difference in amplitude and time-to-peak response of gene transcripts between the two groups before training and with training in Group 2. The findings illustrate that a mixed-effects model of transcript responses to exercise is suitable to explore the regulation of muscle plasticity by training at the transcriptional level and indicate critical experiments needed to consolidate model parameters empirically.
Literature
go back to reference Bahar B, Monahan FJ, Moloney AP, Schmidt O, MacHugh DE, Sweeney T (2007) Long-term stability of RNA in post-mortem bovine skeletal muscle, liver and subcutaneous adipose tissues. BMC Mol Biol 8:108PubMedCrossRef Bahar B, Monahan FJ, Moloney AP, Schmidt O, MacHugh DE, Sweeney T (2007) Long-term stability of RNA in post-mortem bovine skeletal muscle, liver and subcutaneous adipose tissues. BMC Mol Biol 8:108PubMedCrossRef
go back to reference Clark WA (1993) Evidence for post-translational kinetic compartmentation of protein turnover pools in isolated adult cardiac myocytes. J Biol Chem 268:20243–20251PubMed Clark WA (1993) Evidence for post-translational kinetic compartmentation of protein turnover pools in isolated adult cardiac myocytes. J Biol Chem 268:20243–20251PubMed
go back to reference Crowther GJ, Jubrias SA, Gronka RK, Conley KE (2002) A “functional biopsy” of muscle properties in sprinters and distance runners. Med Sci Sports Exerc 34:1719–1724PubMedCrossRef Crowther GJ, Jubrias SA, Gronka RK, Conley KE (2002) A “functional biopsy” of muscle properties in sprinters and distance runners. Med Sci Sports Exerc 34:1719–1724PubMedCrossRef
go back to reference Cui X, Churchill GA (2003) Statistical tests for differential expression in cDNA microarray experiments. Genome Biol 4:210PubMedCrossRef Cui X, Churchill GA (2003) Statistical tests for differential expression in cDNA microarray experiments. Genome Biol 4:210PubMedCrossRef
go back to reference de Jong H, Ropers D (2006) Strategies for dealing with incomplete information in the modeling of molecular interaction networks. Brief Bioinform 7:354–363PubMedCrossRef de Jong H, Ropers D (2006) Strategies for dealing with incomplete information in the modeling of molecular interaction networks. Brief Bioinform 7:354–363PubMedCrossRef
go back to reference Fluck M (2006) Functional, structural and molecular plasticity of mammalian skeletal muscle in response to exercise stimuli. J Exp Biol 209:2239–2248PubMedCrossRef Fluck M (2006) Functional, structural and molecular plasticity of mammalian skeletal muscle in response to exercise stimuli. J Exp Biol 209:2239–2248PubMedCrossRef
go back to reference Fluck M, Hoppeler H (2003) Molecular basis of skeletal muscle plasticity—from gene to form and function. Rev Physiol Biochem Pharmacol 146:159–216PubMedCrossRef Fluck M, Hoppeler H (2003) Molecular basis of skeletal muscle plasticity—from gene to form and function. Rev Physiol Biochem Pharmacol 146:159–216PubMedCrossRef
go back to reference Fluck M, Dapp C, Schmutz S, Wit E, Hoppeler H (2005) Transcriptional profiling of tissue plasticity: role of shifts in gene expression and technical limitations. J Appl Physiol 99:397–413PubMedCrossRef Fluck M, Dapp C, Schmutz S, Wit E, Hoppeler H (2005) Transcriptional profiling of tissue plasticity: role of shifts in gene expression and technical limitations. J Appl Physiol 99:397–413PubMedCrossRef
go back to reference Flueck M (2009) Tuning of mitochondrial pathways by muscle work: from triggers to sensors and expression signatures. Appl Physiol Nutr Metab 34:447–453PubMedCrossRef Flueck M (2009) Tuning of mitochondrial pathways by muscle work: from triggers to sensors and expression signatures. Appl Physiol Nutr Metab 34:447–453PubMedCrossRef
go back to reference Garnier A, Fortin D, Zoll J, N’Guessan B, Mettauer B, Lampert E, Veksler V, Ventura-Clapier R (2005) Coordinated changes in mitochondrial function and biogenesis in healthy and diseased human skeletal muscle. FASEB J 19:43–52PubMedCrossRef Garnier A, Fortin D, Zoll J, N’Guessan B, Mettauer B, Lampert E, Veksler V, Ventura-Clapier R (2005) Coordinated changes in mitochondrial function and biogenesis in healthy and diseased human skeletal muscle. FASEB J 19:43–52PubMedCrossRef
go back to reference Girgis S, Pai SM, Girgis IG, Batra VK (2005) Pharmacodynamic parameter estimation: population size versus number of samples. Aaps J 7:46PubMedCrossRef Girgis S, Pai SM, Girgis IG, Batra VK (2005) Pharmacodynamic parameter estimation: population size versus number of samples. Aaps J 7:46PubMedCrossRef
go back to reference Holloszy JO, Rennie MJ, Hickson RC, Conlee RK, Hagberg JM (1977) Physiological consequences of the biochemical adaptations to endurance exercise. Ann NY Acad Sci 301:440–450PubMedCrossRef Holloszy JO, Rennie MJ, Hickson RC, Conlee RK, Hagberg JM (1977) Physiological consequences of the biochemical adaptations to endurance exercise. Ann NY Acad Sci 301:440–450PubMedCrossRef
go back to reference Hoppeler H, Fluck M (2003) Plasticity of skeletal muscle mitochondria: structure and function. Med Sci Sports Exerc 35:95–104PubMedCrossRef Hoppeler H, Fluck M (2003) Plasticity of skeletal muscle mitochondria: structure and function. Med Sci Sports Exerc 35:95–104PubMedCrossRef
go back to reference Hoppeler H, Weibel ER (2000) Structural and functional limits for oxygen supply to muscle. Acta Physiol Scand 168:445–456PubMedCrossRef Hoppeler H, Weibel ER (2000) Structural and functional limits for oxygen supply to muscle. Acta Physiol Scand 168:445–456PubMedCrossRef
go back to reference Keller P, Vollaard N, Babraj J, Ball D, Sewell DA, Timmons JA (2007) Using systems biology to define the essential biological networks responsible for adaptation to endurance exercise training. Biochem Soc Trans 35:1306–1309PubMedCrossRef Keller P, Vollaard N, Babraj J, Ball D, Sewell DA, Timmons JA (2007) Using systems biology to define the essential biological networks responsible for adaptation to endurance exercise training. Biochem Soc Trans 35:1306–1309PubMedCrossRef
go back to reference Koulmann N, Bigard AX (2006) Interaction between signalling pathways involved in skeletal muscle responses to endurance exercise. Pflugers Arch 452:125–139PubMedCrossRef Koulmann N, Bigard AX (2006) Interaction between signalling pathways involved in skeletal muscle responses to endurance exercise. Pflugers Arch 452:125–139PubMedCrossRef
go back to reference Mahoney DJ, Tarnopolsky MA (2005) Understanding skeletal muscle adaptation to exercise training in humans: contributions from microarray studies. Phys Med Rehabil Clin N Am 16:859–873, vii Mahoney DJ, Tarnopolsky MA (2005) Understanding skeletal muscle adaptation to exercise training in humans: contributions from microarray studies. Phys Med Rehabil Clin N Am 16:859–873, vii
go back to reference Mahoney DJ, Parise G, Melov S, Safdar A, Tarnopolsky MA (2005) Analysis of global mRNA expression in human skeletal muscle during recovery from endurance exercise. Faseb J 19:1498–1500PubMed Mahoney DJ, Parise G, Melov S, Safdar A, Tarnopolsky MA (2005) Analysis of global mRNA expression in human skeletal muscle during recovery from endurance exercise. Faseb J 19:1498–1500PubMed
go back to reference McCarthy JJ, Andrews JL, McDearmon EL, Campbell KS, Barber BK, Miller BH, Walker JR, Hogenesch JB, Takahashi JS, Esser KA (2007) Identification of the circadian transcriptome in adult mouse skeletal muscle. Physiol Genomics 31:86–95PubMedCrossRef McCarthy JJ, Andrews JL, McDearmon EL, Campbell KS, Barber BK, Miller BH, Walker JR, Hogenesch JB, Takahashi JS, Esser KA (2007) Identification of the circadian transcriptome in adult mouse skeletal muscle. Physiol Genomics 31:86–95PubMedCrossRef
go back to reference Miller BH, McDearmon EL, Panda S, Hayes KR, Zhang J, Andrews JL, Antoch MP, Walker JR, Esser KA, Hogenesch JB, Takahashi JS (2007) Circadian and CLOCK-controlled regulation of the mouse transcriptome and cell proliferation. Proc Natl Acad Sci USA 104:3342–3347PubMedCrossRef Miller BH, McDearmon EL, Panda S, Hayes KR, Zhang J, Andrews JL, Antoch MP, Walker JR, Esser KA, Hogenesch JB, Takahashi JS (2007) Circadian and CLOCK-controlled regulation of the mouse transcriptome and cell proliferation. Proc Natl Acad Sci USA 104:3342–3347PubMedCrossRef
go back to reference Ogungbenro K, Dokoumetzidis A, Aarons L (2009) Application of optimal design methodologies in clinical pharmacology experiments. Pharm Stat 8:239–252PubMedCrossRef Ogungbenro K, Dokoumetzidis A, Aarons L (2009) Application of optimal design methodologies in clinical pharmacology experiments. Pharm Stat 8:239–252PubMedCrossRef
go back to reference Oosterhof R, Ith M, Trepp R, Christ E, Fluck M (2011) Regulation of whole body energy homeostasis with growth hormone replacement therapy and endurance exercise. Physiol Genomics 43:739–748PubMedCrossRef Oosterhof R, Ith M, Trepp R, Christ E, Fluck M (2011) Regulation of whole body energy homeostasis with growth hormone replacement therapy and endurance exercise. Physiol Genomics 43:739–748PubMedCrossRef
go back to reference Perry CG, Lally J, Holloway GP, Heigenhauser GJ, Bonen A, Spriet LL (2010) Repeated transient mRNA bursts precede increases in transcriptional and mitochondrial proteins during training in human skeletal muscle. J Physiol 588:4795–4810PubMedCrossRef Perry CG, Lally J, Holloway GP, Heigenhauser GJ, Bonen A, Spriet LL (2010) Repeated transient mRNA bursts precede increases in transcriptional and mitochondrial proteins during training in human skeletal muscle. J Physiol 588:4795–4810PubMedCrossRef
go back to reference Pilegaard H, Ordway GA, Saltin B, Neufer PD (2000) Transcriptional regulation of gene expression in human skeletal muscle during recovery from exercise. Am J Physiol Endocrinol Metab 279:E806–E814PubMed Pilegaard H, Ordway GA, Saltin B, Neufer PD (2000) Transcriptional regulation of gene expression in human skeletal muscle during recovery from exercise. Am J Physiol Endocrinol Metab 279:E806–E814PubMed
go back to reference Puntschart A, Claassen H, Jostarndt K, Hoppeler H, Billeter R (1995) mRNAs of enzymes involved in energy metabolism and mtDNA are increased in endurance-trained athletes. Am J Physiol 269:C619–C625PubMed Puntschart A, Claassen H, Jostarndt K, Hoppeler H, Billeter R (1995) mRNAs of enzymes involved in energy metabolism and mtDNA are increased in endurance-trained athletes. Am J Physiol 269:C619–C625PubMed
go back to reference Saltin B, Henriksson J, Nygaard E, Andersen P, Jansson E (1977) Fiber types and metabolic potentials of skeletal muscles in sedentary man and endurance runners. Ann NY Acad Sci 301:3–29PubMedCrossRef Saltin B, Henriksson J, Nygaard E, Andersen P, Jansson E (1977) Fiber types and metabolic potentials of skeletal muscles in sedentary man and endurance runners. Ann NY Acad Sci 301:3–29PubMedCrossRef
go back to reference Schmitt B, Fluck M, Decombaz J, Kreis R, Boesch C, Wittwer M, Graber F, Vogt M, Howald H, Hoppeler H (2003) Transcriptional adaptations of lipid metabolism in tibialis anterior muscle of endurance-trained athletes. Physiol Genomics 15:148–157PubMed Schmitt B, Fluck M, Decombaz J, Kreis R, Boesch C, Wittwer M, Graber F, Vogt M, Howald H, Hoppeler H (2003) Transcriptional adaptations of lipid metabolism in tibialis anterior muscle of endurance-trained athletes. Physiol Genomics 15:148–157PubMed
go back to reference Schmutz S, Dapp C, Wittwer M, Vogt M, Hoppeler H, Fluck M (2006) Endurance training modulates the muscular transcriptome response to acute exercise. Pflugers Arch 451:678–687PubMedCrossRef Schmutz S, Dapp C, Wittwer M, Vogt M, Hoppeler H, Fluck M (2006) Endurance training modulates the muscular transcriptome response to acute exercise. Pflugers Arch 451:678–687PubMedCrossRef
go back to reference Schmutz S, Dapp C, Wittwer M, Durieux AC, Mueller M, Weinstein F, Vogt M, Hoppeler H, Fluck M (2010) A hypoxia complement differentiates the muscle response to endurance exercise. Exp Physiol 95:723–735PubMedCrossRef Schmutz S, Dapp C, Wittwer M, Durieux AC, Mueller M, Weinstein F, Vogt M, Hoppeler H, Fluck M (2010) A hypoxia complement differentiates the muscle response to endurance exercise. Exp Physiol 95:723–735PubMedCrossRef
go back to reference Shyu AB, Wilkinson MF, van Hoof A (2008) Messenger RNA regulation: to translate or to degrade. EMBO J 27:471–481PubMedCrossRef Shyu AB, Wilkinson MF, van Hoof A (2008) Messenger RNA regulation: to translate or to degrade. EMBO J 27:471–481PubMedCrossRef
go back to reference Singh S, Yang HY, Chen MY, Yu SL (2007) A kinetic-dynamic model for regulatory RNA processing. J Biotechnol 127:488–495PubMedCrossRef Singh S, Yang HY, Chen MY, Yu SL (2007) A kinetic-dynamic model for regulatory RNA processing. J Biotechnol 127:488–495PubMedCrossRef
go back to reference Stepto NK, Coffey VG, Carey AL, Ponnampalam AP, Canny BJ, Powell D, Hawley JA (2009) Global gene expression in skeletal muscle from well-trained strength and endurance athletes. Med Sci Sports Exerc 41:546–565PubMed Stepto NK, Coffey VG, Carey AL, Ponnampalam AP, Canny BJ, Powell D, Hawley JA (2009) Global gene expression in skeletal muscle from well-trained strength and endurance athletes. Med Sci Sports Exerc 41:546–565PubMed
go back to reference t Hoen PA, Hirsch M, de Meijer EJ, de Menezes RX, van Ommen GJ, den Dunnen JT (2011) mRNA degradation controls differentiation state-dependent differences in transcript and splice variant abundance. Nucleic Acids Res 39:556–566PubMedCrossRef t Hoen PA, Hirsch M, de Meijer EJ, de Menezes RX, van Ommen GJ, den Dunnen JT (2011) mRNA degradation controls differentiation state-dependent differences in transcript and splice variant abundance. Nucleic Acids Res 39:556–566PubMedCrossRef
go back to reference Timmons JA, Knudsen S, Rankinen T, Koch LG, Sarzynski M, Jensen T, Keller P, Scheele C, Vollaard NB, Nielsen S, Akerstrom T, MacDougald OA, Jansson E, Greenhaff PL, Tarnopolsky MA, van Loon LJ, Pedersen BK, Sundberg CJ, Wahlestedt C, Britton SL, Bouchard C (2010) Using molecular classification to predict gains in maximal aerobic capacity following endurance exercise training in humans. J Appl Physiol 108:1487–1496PubMedCrossRef Timmons JA, Knudsen S, Rankinen T, Koch LG, Sarzynski M, Jensen T, Keller P, Scheele C, Vollaard NB, Nielsen S, Akerstrom T, MacDougald OA, Jansson E, Greenhaff PL, Tarnopolsky MA, van Loon LJ, Pedersen BK, Sundberg CJ, Wahlestedt C, Britton SL, Bouchard C (2010) Using molecular classification to predict gains in maximal aerobic capacity following endurance exercise training in humans. J Appl Physiol 108:1487–1496PubMedCrossRef
go back to reference Wang L, Chen X, Wolfinger RD, Franklin JL, Coffey RJ, Zhang B (2009) A unified mixed effects model for gene set analysis of time course microarray experiments. Stat Appl Genet Mol Biol 8(1):Article 47 Wang L, Chen X, Wolfinger RD, Franklin JL, Coffey RJ, Zhang B (2009) A unified mixed effects model for gene set analysis of time course microarray experiments. Stat Appl Genet Mol Biol 8(1):Article 47
go back to reference Williams RS, Neufer PD (1996) Regulation of gene expression in skeletal muscle by contractile activity. In: Rowell LB, Shepherd JT (eds) The Handbook of Physiology Exercise: regulation and integration of multiple systems. For the American Physiological Society by Oxford University Press, Bethesda, pp 1124–1150 Williams RS, Neufer PD (1996) Regulation of gene expression in skeletal muscle by contractile activity. In: Rowell LB, Shepherd JT (eds) The Handbook of Physiology Exercise: regulation and integration of multiple systems. For the American Physiological Society by Oxford University Press, Bethesda, pp 1124–1150
go back to reference Yan Z, Okutsu M, Akhtar YN, Lira VA (2011) Regulation of exercise-induced fiber type transformation, mitochondrial biogenesis, and angiogenesis in skeletal muscle. J Appl Physiol 110:264–274PubMedCrossRef Yan Z, Okutsu M, Akhtar YN, Lira VA (2011) Regulation of exercise-induced fiber type transformation, mitochondrial biogenesis, and angiogenesis in skeletal muscle. J Appl Physiol 110:264–274PubMedCrossRef
go back to reference Yang Y, Creer A, Jemiolo B, Trappe S (2005) Time course of myogenic and metabolic gene expression in response to acute exercise in human skeletal muscle. J Appl Physiol 98:1745–1752PubMedCrossRef Yang Y, Creer A, Jemiolo B, Trappe S (2005) Time course of myogenic and metabolic gene expression in response to acute exercise in human skeletal muscle. J Appl Physiol 98:1745–1752PubMedCrossRef
go back to reference Zierath JR, Hawley JA (2004) Skeletal muscle fiber type: influence on contractile and metabolic properties. PLoS Biol 2:e348PubMedCrossRef Zierath JR, Hawley JA (2004) Skeletal muscle fiber type: influence on contractile and metabolic properties. PLoS Biol 2:e348PubMedCrossRef
Metadata
Title
A mixed-effects model of the dynamic response of muscle gene transcript expression to endurance exercise
Authors
Thierry Busso
Martin Flück
Publication date
01-05-2013
Publisher
Springer-Verlag
Published in
European Journal of Applied Physiology / Issue 5/2013
Print ISSN: 1439-6319
Electronic ISSN: 1439-6327
DOI
https://doi.org/10.1007/s00421-012-2547-x

Other articles of this Issue 5/2013

European Journal of Applied Physiology 5/2013 Go to the issue