메뉴 건너뛰기




Volumn 306, Issue 5, 2014, Pages

Impaired exercise-induced mitochondrial biogenesis in the obese Zucker rat, despite PGC-1α induction, is due to compromised mitochondrial translation elongation

Author keywords

Mitochondrial protein synthesis; Mitochondrial transcription and translation; Oxidative metabolism; Peroxisome proliferator activated receptor coactivator 1

Indexed keywords

CARNITINE PALMITOYLTRANSFERASE I; ELONGATION FACTOR TU; INITIATION FACTOR 2; MESSENGER RNA; MITOCHONDRIAL PROTEIN; MITOCHONDRIAL TRANSCRIPTION FACTOR A; PEROXISOME PROLIFERATOR ACTIVATED RECEPTOR GAMMA; PEROXISOME PROLIFERATOR ACTIVATED RECEPTOR GAMMA COACTIVATOR 1ALPHA; HYDROXYMETHYLGLUTARYL COENZYME A REDUCTASE KINASE; PEROXISOME PROLIFERATOR ACTIVATED RECEPTOR DELTA; PPARGC1A PROTEIN, RAT; TRANSCRIPTION FACTOR;

EID: 84899539796     PISSN: 01931849     EISSN: 15221555     Source Type: Journal    
DOI: 10.1152/ajpendo.00671.2013     Document Type: Article
Times cited : (27)

References (37)
  • 3
    • 0041524459 scopus 로고    scopus 로고
    • Centers for Disease Control and Prevention, Centers for Disease Control and Prevention, [18 October 2013]
    • Centers for Disease Control and Prevention. Behavioral risk factor surveillance system survey data website [Online]. Centers for Disease Control and Prevention. http://www. cdc. gov/brfss/index. htm [18 October 2013].
    • Behavioral risk factor surveillance system survey data website [Online]
  • 4
    • 72049128291 scopus 로고    scopus 로고
    • Skeletal muscle insulin resistance: The interplay of local lipid excess and mitochondrial dysfunction
    • Chow L, From A, Seaquist E. Skeletal muscle insulin resistance: the interplay of local lipid excess and mitochondrial dysfunction. Metabolism 59: 70-85, 2010.
    • (2010) Metabolism , vol.59 , pp. 70-85
    • Chow, L.1    From, A.2    Seaquist, E.3
  • 5
    • 36749081539 scopus 로고    scopus 로고
    • mTOR controls mitochondrial oxidative function through a YY1-PGC-1alpha transcriptional complex
    • Cunningham JT, Rodgers JT, Arlow DH, Vazquez F, Mootha VK, Puigserver P. mTOR controls mitochondrial oxidative function through a YY1-PGC-1alpha transcriptional complex. Nature 450: 736-740, 2007.
    • (2007) Nature , vol.450 , pp. 736-740
    • Cunningham, J.T.1    Rodgers, J.T.2    Arlow, D.H.3    Vazquez, F.4    Mootha, V.K.5    Puigserver, P.6
  • 6
    • 38949116663 scopus 로고    scopus 로고
    • Effects of resistance exercise with and without creatine supplementation on gene expression and cell signaling in human skeletal muscle
    • Deldicque L, Atherton P, Patel R, Theisen D, Nielens H, Rennie MJ, Francaux M. Effects of resistance exercise with and without creatine supplementation on gene expression and cell signaling in human skeletal muscle. J Appl Physiol 104: 371-378, 2008.
    • (2008) J Appl Physiol , vol.104 , pp. 371-378
    • Deldicque, L.1    Atherton, P.2    Patel, R.3    Theisen, D.4    Nielens, H.5    Rennie, M.J.6    Francaux, M.7
  • 9
    • 0028832878 scopus 로고
    • Pancreatic islet insulin secretion is increased after resistance exercise in rats
    • Fluckey JD, Kraemer WJ, Farrell PA. Pancreatic islet insulin secretion is increased after resistance exercise in rats. J Appl Physiol 79: 1100-1105, 1995.
    • (1995) J Appl Physiol , vol.79 , pp. 1100-1105
    • Fluckey, J.D.1    Kraemer, W.J.2    Farrell, P.A.3
  • 11
    • 77749264581 scopus 로고    scopus 로고
    • PGC-1+ plays a functional role in exercise-induced mitochondrial biogenesis and angiogenesis but not fiber-type transformation in mouse skeletal muscle
    • Geng T, Li P, Okutsu M, Yin X, Kwek J, Zhang M, Yan Z. PGC-1+ plays a functional role in exercise-induced mitochondrial biogenesis and angiogenesis but not fiber-type transformation in mouse skeletal muscle. Am J Physiol Cell Physiol 298: C572-C579, 2010.
    • (2010) Am J Physiol Cell Physiol , vol.298
    • Geng, T.1    Li, P.2    Okutsu, M.3    Yin, X.4    Kwek, J.5    Zhang, M.6    Yan, Z.7
  • 12
    • 58149394230 scopus 로고    scopus 로고
    • Regulation of skeletal muscle mitochondrial fatty acid metabolism in lean and obese individuals
    • Holloway GP, Bonen A, Spriet LL. Regulation of skeletal muscle mitochondrial fatty acid metabolism in lean and obese individuals. Am J Clin Nutr 89: 455S-462S, 2009.
    • (2009) Am J Clin Nutr , vol.89
    • Holloway, G.P.1    Bonen, A.2    Spriet, L.L.3
  • 14
    • 84857047339 scopus 로고    scopus 로고
    • PhosphoSitePlus: A comprehensive resource for investigating the structure and function of experimentally determined post-translational modifications in man and mouse
    • Hornbeck P, Kornhauser J, Tkachev S, Zhang B, Skrzypek E, Murray B, Latham V, Sullivan M. PhosphoSitePlus: a comprehensive resource for investigating the structure and function of experimentally determined post-translational modifications in man and mouse. Nucleic Acids Res 40: D261-D270, 2012.
    • (2012) Nucleic Acids Res , vol.40
    • Hornbeck, P.1    Kornhauser, J.2    Tkachev, S.3    Zhang, B.4    Skrzypek, E.5    Murray, B.6    Latham, V.7    Sullivan, M.8
  • 15
    • 84884547174 scopus 로고    scopus 로고
    • Exercise training attenuates agingassociated mitochondrial dysfunction in rat skeletal muscle: Role of PGC-1_
    • Kang C, Chung E, Diffee G, Ji LL. Exercise training attenuates agingassociated mitochondrial dysfunction in rat skeletal muscle: role of PGC-1_. Exp Gerontol 48: 1343-1350, 2013.
    • (2013) Exp Gerontol , vol.48 , pp. 1343-1350
    • Kang, C.1    Chung, E.2    Diffee, G.3    Ji, L.L.4
  • 16
    • 0036788293 scopus 로고    scopus 로고
    • Dysfunction of mitochondria in human skeletal muscle in type 2 diabetes
    • Kelley DE, He J, Menshikova EV, Ritov VB. Dysfunction of mitochondria in human skeletal muscle in type 2 diabetes. Diabetes 51: 2944-2950, 2002.
    • (2002) Diabetes , vol.51 , pp. 2944-2950
    • Kelley, D.E.1    He, J.2    Menshikova, E.V.3    Ritov, V.B.4
  • 17
    • 41949114990 scopus 로고    scopus 로고
    • Role of mitochondrial dysfunction in insulin resistance
    • Kim JA, Wei Y, Sowers JR. Role of mitochondrial dysfunction in insulin resistance. Circ Res 102: 401-414, 2008.
    • (2008) Circ Res , vol.102 , pp. 401-414
    • Kim, J.A.1    Wei, Y.2    Sowers, J.R.3
  • 20
    • 84885145785 scopus 로고    scopus 로고
    • Autophagy is required for exercise training-induced skeletal muscle adaptation and improvement of physical performance
    • Lira VA, Okutsu M, Zhang M, Greene NP, Laker RC, Breen DS, Hoehn KL, Yan Z. Autophagy is required for exercise training-induced skeletal muscle adaptation and improvement of physical performance. FASEB J 27: 4184-4193, 2013.
    • (2013) FASEB J , vol.27 , pp. 4184-4193
    • Lira, V.A.1    Okutsu, M.2    Zhang, M.3    Greene, N.P.4    Laker, R.C.5    Breen, D.S.6    Hoehn, K.L.7    Yan, Z.8
  • 21
    • 11144349089 scopus 로고    scopus 로고
    • Up-regulation of PPARgamma coactivator-1alpha as a strategy for preventing and reversing insulin resistance and obesity
    • McCarty MF. Up-regulation of PPARgamma coactivator-1alpha as a strategy for preventing and reversing insulin resistance and obesity. Med Hypotheses 64: 399-407, 2005.
    • (2005) Med Hypotheses , vol.64 , pp. 399-407
    • McCarty, M.F.1
  • 23
    • 84857310052 scopus 로고    scopus 로고
    • A perspective on the determination of mitochondrial biogenesis
    • Miller BF, Hamilton KL. A perspective on the determination of mitochondrial biogenesis. Am J Physiol Endocrinol Metab 302: E496-E499, 2012.
    • (2012) Am J Physiol Endocrinol Metab , vol.302
    • Miller, B.F.1    Hamilton, K.L.2
  • 24
    • 36148937475 scopus 로고    scopus 로고
    • Skeletal muscle adaptation to fatty acid depends on coordinated actions of the PPARs and PGC1 alpha: Implications for metabolic disease
    • Muoio DM, Koves TR. Skeletal muscle adaptation to fatty acid depends on coordinated actions of the PPARs and PGC1 alpha: implications for metabolic disease. Appl Physiol Nutr Metab 32: 874-883, 2007.
    • (2007) Appl Physiol Nutr Metab , vol.32 , pp. 874-883
    • Muoio, D.M.1    Koves, T.R.2
  • 27
    • 0037326196 scopus 로고    scopus 로고
    • Peroxisome proliferator-activated receptor-gamma coactivator 1 alpha (PGC-1 alpha): Transcriptional coactivator and metabolic regulator
    • Puigserver P, Spiegelman BM. Peroxisome proliferator-activated receptor-gamma coactivator 1 alpha (PGC-1 alpha): transcriptional coactivator and metabolic regulator. Endocr Rev 24: 78-90, 2003.
    • (2003) Endocr Rev , vol.24 , pp. 78-90
    • Puigserver, P.1    Spiegelman, B.M.2
  • 28
    • 77952683867 scopus 로고    scopus 로고
    • PPARdelta is a fatty acid sensor that enhances mitochondrial oxidation in insulin-secreting cells and protects against fatty acid-induced dysfunction
    • Ravnskjaer K, Frigerio F, Boergesen M, Nielsen T, Maechler P, Mandrup S. PPARdelta is a fatty acid sensor that enhances mitochondrial oxidation in insulin-secreting cells and protects against fatty acid-induced dysfunction. J Lipid Res 51: 1370-1379, 2010.
    • (2010) J Lipid Res , vol.51 , pp. 1370-1379
    • Ravnskjaer, K.1    Frigerio, F.2    Boergesen, M.3    Nielsen, T.4    Maechler, P.5    Mandrup, S.6
  • 30
    • 84880746018 scopus 로고    scopus 로고
    • Acute exercise induces tumour suppressor protein p53 translocation to the mitochondria and promotes a p53-Tfam-mitochondrial DNA complex in skeletal muscle
    • Saleem A, Hood DA. Acute exercise induces tumour suppressor protein p53 translocation to the mitochondria and promotes a p53-Tfam-mitochondrial DNA complex in skeletal muscle. J Physiol 591: 3625-3636, 2013.
    • (2013) J Physiol , vol.591 , pp. 3625-3636
    • Saleem, A.1    Hood, D.A.2
  • 32
    • 77952472152 scopus 로고    scopus 로고
    • Mitochondrial translation and beyond: Processes implicated in combined oxidative phosphorylation deficiencies
    • Smits P, Smeitink J, van den Heuvel L. Mitochondrial translation and beyond: processes implicated in combined oxidative phosphorylation deficiencies. J Biomed Biotechnol 2010: 737385, 2010.
    • (2010) J Biomed Biotechnol , vol.2010 , pp. 737385
    • Smits, P.1    Smeitink, J.2    van den Heuvel, L.3
  • 34
    • 84883199038 scopus 로고    scopus 로고
    • Fatty acid transport proteins chronically relocate to the transverse-tubules in muscle from obese Zucker rats but are resistant to further insulin-induced translocation
    • Stefanyk LE, Bonen A, Dyck DJ. Fatty acid transport proteins chronically relocate to the transverse-tubules in muscle from obese Zucker rats but are resistant to further insulin-induced translocation. Metabolism 62: 1296-1304, 2013.
    • (2013) Metabolism , vol.62 , pp. 1296-1304
    • Stefanyk, L.E.1    Bonen, A.2    Dyck, D.J.3
  • 35
    • 53649083550 scopus 로고    scopus 로고
    • Is mitochondrial dysfunction a cause of insulin resistance?
    • Turner N, Heilbronn LK. Is mitochondrial dysfunction a cause of insulin resistance? Trends Endocrinol Metab 19: 324-330, 2008.
    • (2008) Trends Endocrinol Metab , vol.19 , pp. 324-330
    • Turner, N.1    Heilbronn, L.K.2
  • 37
    • 84862863393 scopus 로고    scopus 로고
    • Exercise training-induced regulation of mitochondrial quality
    • Yan Z, Lira VA, Greene NP. Exercise training-induced regulation of mitochondrial quality. Exerc Sport Sci Rev 40: 159-164, 2012.
    • (2012) Exerc Sport Sci Rev , vol.40 , pp. 159-164
    • Yan, Z.1    Lira, V.A.2    Greene, N.P.3


* 이 정보는 Elsevier사의 SCOPUS DB에서 KISTI가 분석하여 추출한 것입니다.