Balon T.W., Nadler J.L. (1994) Nitric oxide release is present from incubated skeletal muscle preparations. Journal of Applied Physiology 77, 2519-2521. |
Benton C.R., Nickerson J.G., Lally J., Han X.X., Holloway G.P., Glatz J.F., Luiken J.J., Graham T.E., Heikkila J.J., Bonen A. (2008) Modest PGC-1α overexpression in muscle in vivo is sufficient to increase insulin sensitivity and palmitate oxidation in subsarcolemmal, not intermyofibrillar, mitochondria. Journal of Biological Chemistry 283, 4228-4240. |
Boutant M., Cantó C. (2014) SIRT1 metabolic actions: Integrating recent advances from mouse models. Molecular Metabolism 3, 5-18. |
Calabria E., Ciciliot S., Moretti I., Garcia M., Picard A., Dyar K.A., Pallafacchina G., Tothova J., Schiaffino S., Murgia M. (2009) NFAT isoforms control activity-dependent muscle fiber type specification. Proceedings of the National Academy of Sciences of the United States of America 106, 13335-13340. |
Civitarese A.E., Carling S., Heilbronn L.K., Hulver M.H., Ukropcova B., Deutsch W.A., Smith S.R., Ravussin E. (2007) Calorie restriction increases muscle mitochondrial biogenesis in healthy humans. PLoS Medicine 4, e76-. |
Drenning J.A., Lira V.A., Simmons C.G., Soltow Q.A., Sellman J.E., Criswell D.S. (2008) Nitric oxide facilitates NFAT-dependent transcription in mouse myotubes. American Journal of Physiology Cell Physiology 294, C1088-C1095. |
Gerhart-Hines Z., Rodgers J.T., Bare O., Bare O., Lerin C., Kim S.H., Mostoslavsky R., Alt F.W., Wu Z., Puigserver P. (2007) Metabolic control of muscle mitochondrial function and fatty acid oxidation through SIRT1/PGC-1α. EMBO Journal 26, 1913-1923. |
Ghafourifar P., Cadenas E. (2005) Mitochondrial nitric oxide synthase. Trends in Pharmacological Sciences 26, 190-195. |
Gollnick P.D., Armstrong R.B., Saubert C.W., Piehl K., Saltin B. (1972) Enzyme activity and fiber composition in skeletal muscle of untrained and trained men. Journal of Applied Physiology 33, 312-319. |
Gurd B.J., Yoshida Y., McFarlan J.T., Holloway G.P., Moyes C.D., Heigenhauser G.J., Spriet L., Bonen A. (2011) Nuclear SIRT1 activity, but not protein content, regulates mitochondrial biogenesis in rat and human skeletal muscle. American Journal of Physiology Regulatory Integrative and Comparative Physiology 301, R67-. |
Higaki Y., Hirshman M.F., Fujii N., Goodyear L.J. (2001) Nitric oxide increases glucose uptake through a mechanism that is distinct from the insulin and contraction pathways in rat skeletal muscle. Diabetes 50, 241-247. |
Lau K.S., Grange R.W., Isotani E., Sarelius I.H., Kamm K.E., Huang P.L., Stull J.T. (2000) nNOS and eNOS modulate cGMP formation and vascular response in contracting fast-twitch skeletal muscle. Physiological Genomics 2, 21-27. |
Laughlin M.H., Armstrong R.B. (1982) Muscular blood flow distribution patterns as a function of running speed in rats. American Journal of Physiology 243, H296-. |
Gouill E., Jimenez M., Binnert C., Jayet P.Y., Thalmann S., Nicod P., Scherrer U., Vollenweider P. (2007) Endothelial nitric oxide synthase (eNOS) knockout mice have defective mitochondrial β-oxidation. Diabetes 56, 2690-2696. |
Lin J., Wu P.H., Tarr P.T., Lindenberg K.S., St-Pierre J., Zhang C.Y., Mootha V.K., Jäger S., Vianna C.R., Reznick R.M., Cui L., Manieri M., Donovan M.X., Wu Z., Cooper M.P., Fan M.C., Rohas L.M., Zavacki A.M., Cinti S., Shulman G.I., Lowell B.B., Krainc D., Spiegelman B.M. (2004) Defects in adaptive energy metabolism with CNS-linked hyperactivity in PGC-1α null mice. Cell 119, 121-135. |
Lin J., Wu H., Tarr P.T., Zhang C.Y., Wu Z., Boss O., Michael L.F., Puigserver P., Isotani E., Olson E.N., Lowell B.B., Bassel-Duby R., Spiegelman B.M. (2002) Transcriptional co-activator PGC-1α drives the formation of slow-twitch muscle fibres. Nature 418, 797-801. |
Lira V.A., Brown D.L., Lira A.K., Kavazis A.N., Soltow Q.A., Zeanah E.H., Criswell D.S. (2010) Nitric oxide and AMPK cooperatively regulate PGC-1 in skeletal muscle cells. Journal of Physiology 588, 3551-3566. |
Lira V.A., Soltow Q.A., Long J.H., Betters J.L., Sellman J.E., Criswell D.S. (2007) Nitric oxide increases GLUT4 expression and regulates AMPK signaling in skeletal muscle. American Journal of Physiology Endocrinology and Metabolism 293, E1062-E1068. |
Martins K.J., St-Louis M., Murdoch G.K., MacLean I.M., McDonald P., Dixon W.T., Putman C.T., Michel R.N. (2012) Nitric oxide synthase inhibition prevents activity-induced calcineurin-NFATc1 signalling and fast-to-slow skeletal muscle fibre type conversions. Journal of Physiology 590, 1427-1442. |
McConell G.K., Ng G.P., Phillips M., Ruan Z., Macaulay S.L., Wadley G.D. (2010) Central role of nitric oxide synthase in AICAR and caffeine-induced mitochondrial biogenesis in L6 myocytes. Journal of Applied Physiology 108, 589-595. |
McConell G.K., Rattigan S., Lee-Young R.S., Wadley G.D., Merry T.L. (2012) Skeletal muscle nitric oxide signaling and exercise: a focus on glucose metabolism. American Journal of Physiology Endocrinology and Metabolism 303, E301-. |
Meissner J.D., Umeda P.K., Chang K.C., Gros G., Scheibe R.J. (2007) Activation of the beta myosin heavy chain promoter by MEF-2D, MyoD, p300, and the calcineurin/NFATc1 pathway. Journal of Cell Physiology 211, 138-148. |
Merry T.L., Lynch G.S., McConell G.K. (2010) Downstream mechanisms of nitric oxide-mediated skeletal muscle glucose uptake during contraction. American Journal of Physiology Regulatory Integrative and Comparative Physiology 299, R1656-. |
Nathan C., Xie Q.W. (1994) Nitric oxide synthases: roles, tolls, and controls. Cell 78, 915-918. |
Nisoli E., Clementi E., Paolucci C., Cozzi V., Tonello C., Sciorati C., Bracale R., Valerio A., Francolini M., Moncada S., Carruba M.O. (2003) Mitochondrial biogenesis in mammals: the role of endogenous nitric oxide. Science 299, 896-899. |
Nisoli E., Falcone S., Tonello C., Cozzi V., Palomba L., Fiorani M., Pisconti A., Brunelli S., Cardile A., Francolini M., Cantoni O., Carruba M.O., Moncada S., Clementi E. (2004) Mitochondrial biogenesis by NO yields functionally active mitochondria in mammals. Proceedings of the National Academy of Sciences of the United States of America 101, 16507-16512. |
Nisoli E., Tonello C., Cardile A., Cozzi V., Bracale R., Tedesco L., Falcone S., Valerio A., Cantoni O., Clementi E., Moncada S., Carruba M.O. (2005) Calorie restriction promotes mitochondrial biogenesis by inducing the expression of eNOS. Science 310, 314-317. |
Ojuka E.O., Nolte L.A., Holloszy J.O. (2000) Increased expression of GLUT-4 and hexokinase in rat epitrochlearis muscles exposed to AICAR in vitro. Journal of Applied Physiology 88, 1072-1075. |
Pereira Sant'Ana J.A., Ennion S., Sargeant A.J., Moorman A.F., Goldspink G. (1997) Comparison of the molecular, antigenic and ATPase determinants of fast myosin heavy chains in rat and human: a single-fibre study. Pflügers Archiv 435, 151-153. |
Punkt K., Fritzsche M., Stockmar C., Hepp P., Josten C., Wellner M., Schering S., Buchwalow I.B. (2006) Nitric oxide synthase in human skeletal muscles related to defined fibre types. Histochemistry and Cell Biology 125, 567-573. |
Roberts C.K., Barnard R.J., Jasman A., Balon T.W. (1999) Acute exercise increases nitric oxide synthase activity in skeletal muscle. American Journal of Physiology 277, E390-. |
Rodgers J.T., Lerin C., Haas W., Gygi S.P., Spiegelman B.M., Puigserver P. (2005) Nutrient control of glucose homeostasis through a complex of PGC-1α and SIRT1. Nature 434, 113-118. |
Ross R.M., Wadley G.D., Clark M.G., Rattigan S., McConell G.K. (2007) Local nitric oxide synthase inhibition reduces skeletal muscle glucose uptake but not capillary blood flow during in situ muscle contraction in rats. Diabetes 56, 2885-2892. |
Schild L., Jaroscakova I., Lendeckel U., Wolf G., Keilhoff G. (2006) Neuronal nitric oxide synthase controls enzyme activity pattern of mitochondria and lipid metabolism. FASEB Journal 20, 145-147. |
Sellman J.E., DeRuisseau K.C., Betters J.L., Lira V.A., Soltow Q.A., Selsby J.T., Criswell D.S. (2006) In vivo inhibition of nitric oxide synthase impairs upregulation of contractile protein mRNA in overloaded plantaris muscle. Journal of Applied Physiology 100, 258-265. |
Smith L.W., Smith J.D., Criswell D.S. (2002) Involvement of nitric oxide synthase in skeletal muscle adaptation to chronic overload. Journal of Applied Physiology 92, 2005-2011. |
Stamler J.S., Meissner G. (2001) Physiology of nitric oxide in skeletal muscle. Physiological Reviews 81, 209-237. |
Suwa M., Kumagai S., Higaki Y., Nakamura T., Katsuta S. (2002) Dietary obesity-resistance and muscle oxidative enzyme activities of the fast-twitch fibre dominant rat. International Journal of Obesity and Related Metabolic Disorders 26, 830-837. |
Suwa M., Nakano H., Higaki Y., Nakamura T., Katsuta S., Kumagai S. (2003) Increased wheel-running activity in the genetically skeletal muscle fast-twitch fiber-dominant rats. Journal of Applied Physiology 94, 185-192. |
Suwa M., Nakano H., Radak Z., Kumagai S. (2008) Endurance exercise increases the SIRT1 and peroxisome proliferator-activated receptor γ coactivator-1α protein expressions in rat skeletal muscle. Metabolism Clinical and Experimental 57, 986-998. |
Suwa M., Nakano H., Radak Z., Kumagai S. (2011) Short-term adenosine monophosphate-activated protein kinase activator 5-aminoimidazole-4-carboxamide-1-β-D-ribofuranoside treatment increases the sirtuin 1 protein expression in skeletal muscle. Metabolism Clinical and Experimental 60, 394-403. |
Suwa M., Nakano H., Radak Z., Kumagai S. (2015) A comparison of chronic AICAR treatment-induced metabolic adaptations in red and white muscles of rats. Journal of Physiological Sciences 65, 121-130. |
Toledo J.C., Augusto O. (2012) Connecting the chemical and biological properties of nitric oxide. Chemical Research in Toxicology 25, 975-989. |
Wadley G.D., Choate J., McConell G.K. (2007) NOS isoform-specific regulation of basal but not exercise-induced mitochondrial biogenesis in mouse skeletal muscle. Journal of Physiology 585, 253-262. |
Wadley G.D., McConell G.K. (2007) Effect of nitric oxide synthase inhibition on mitochondrial biogenesis in rat skeletal muscle. Journal of Applied Physiology 102, 314-320. |
Wang M.X., Murrell D.F., Szabo C., Warren R.F., Sarris M., Murrell G.A. (2001) Nitric oxide in skeletal muscle: inhibition of nitric oxide synthase inhibits walking speed in rats. Nitric Oxide 5, 219-232. |
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