Acute high-intensity exercise and skeletal muscle mitochondrial respiratory function: The role of metabolic perturbation.
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M. Amann | S. Sidhu | R. Richardson | G. Blain | J. Weavil | T. Hureau | Jacob E. Jessop | A. Bledsoe | J. Trinity | G. Layec | Song-Young Park | J. Gifford | C. Hart | M. Rossman | M. Lewis
[1] Kristin N. Parent,et al. The mitochondrial permeability transition phenomenon elucidated by cryo-EM reveals the genuine impact of calcium overload on mitochondrial structure and function , 2020, Scientific Reports.
[2] J. Kent,et al. Oxidative ATP synthesis in human quadriceps declines during 4 minutes of maximal contractions , 2020, The Journal of physiology.
[3] C. Boesch,et al. 31P magnetic resonance spectroscopy in skeletal muscle: Experts' consensus recommendations , 2020, NMR in biomedicine.
[4] R. Wiseman,et al. Quantification of Mitochondrial Oxidative Phosphorylation in Metabolic Disease: Application to Type 2 Diabetes , 2019, International journal of molecular sciences.
[5] L. Romer,et al. The ‘sensory tolerance limit’: A hypothetical construct determining exercise performance? , 2018, European journal of sport science.
[6] T. Jue,et al. Comparative NMR and NIRS analysis of oxygen-dependent metabolism in exercising finger flexor muscles. , 2017, American journal of physiology. Regulatory, integrative and comparative physiology.
[7] Markus Amann,et al. Skeletal muscle bioenergetics during all-out exercise: mechanistic insight into the oxygen uptake slow component and neuromuscular fatigue. , 2017, Journal of applied physiology.
[8] R. Garten,et al. Quadriceps exercise intolerance in patients with chronic obstructive pulmonary disease: the potential role of altered skeletal muscle mitochondrial respiration. , 2015, Journal of applied physiology.
[9] Y. le Fur,et al. Impact of age on exercise-induced ATP supply during supramaximal plantar flexion in humans. , 2015, American journal of physiology. Regulatory, integrative and comparative physiology.
[10] Sriram Subramaniam,et al. Mitochondrial reticulum for cellular energy distribution in muscle , 2015, Nature.
[11] G J Kemp,et al. Quantification of skeletal muscle mitochondrial function by 31P magnetic resonance spectroscopy techniques: a quantitative review , 2015, Acta physiologica.
[12] D. Turnbull,et al. Acute exercise remodels mitochondrial membrane interactions in mouse skeletal muscle , 2013, Journal of applied physiology.
[13] J. Holloszy. Regulation of mitochondrial biogenesis and GLUT4 expression by exercise. , 2011, Comprehensive Physiology.
[14] Melissa M. Thomas,et al. Mitochondrial Structure and Function Are Disrupted by Standard Isolation Methods , 2011, PloS one.
[15] Andrew M. Jones,et al. Similar metabolic perturbations during all‐out and constant force exhaustive exercise in humans: a 31P magnetic resonance spectroscopy study , 2010, Experimental physiology.
[16] N. Secher,et al. Point: Afferent feedback from fatigued locomotor muscles is an important determinant of endurance exercise performance. , 2010, Journal of applied physiology.
[17] Ian R. Lanza,et al. Intramyocellular oxygenation during ischemic muscle contractions in vivo , 2009, European Journal of Applied Physiology.
[18] Markus Amann,et al. Opioid‐mediated muscle afferents inhibit central motor drive and limit peripheral muscle fatigue development in humans , 2009, The Journal of physiology.
[19] S. Forbes,et al. Phosphocreatine Resynthesis During Recovery After Exercise With Blood Flow Occlusion.: 1987 , 2008 .
[20] Andrés Hernández,et al. Blood Lactate Measurements and Analysis during Exercise: A Guide for Clinicians , 2007, Journal of diabetes science and technology.
[21] Ian R. Lanza,et al. In vivo ATP production during free‐flow and ischaemic muscle contractions in humans , 2006, The Journal of physiology.
[22] Eric G Shankland,et al. Acidosis inhibits oxidative phosphorylation in contracting human skeletal muscle in vivo , 2003, The Journal of physiology.
[23] K. Sahlin,et al. Increased concentrations of P(i) and lactic acid reduce creatine-stimulated respiration in muscle fibers. , 2002, Journal of applied physiology.
[24] R. Henry,et al. Effect of acute exercise on citrate synthase activity in untrained and trained human skeletal muscle. , 2001, American journal of physiology. Regulatory, integrative and comparative physiology.
[25] K. Sahlin,et al. Actively phosphorylating mitochondria are more resistant to lactic acidosis than inactive mitochondria. , 1999, The American journal of physiology.
[26] R. Richardson,et al. Human muscle performance and PCr hydrolysis with varied inspired oxygen fractions: a 31P-MRS study. , 1999, Journal of applied physiology.
[27] V. Saks,et al. Mitochondrial function in human skeletal muscle is not impaired by high intensity exercise , 1999, Pflügers Archiv.
[28] S. Papa,et al. Low Reserve of Cytochrome c Oxidase Capacity in Vivo in the Respiratory Chain of a Variety of Human Cell Types* , 1998, The Journal of Biological Chemistry.
[29] W. Kunz,et al. Permeabilized cell and skinned fiber techniques in studies of mitochondrial function in vivo , 1998 .
[30] S. Harkema,et al. Effect of acidosis on control of respiration in skeletal muscle. , 1997, The American journal of physiology.
[31] J. Leigh,et al. Noninvasive measurement of phosphocreatine recovery kinetics in single human muscles. , 1997, The American journal of physiology.
[32] R. Meyer,et al. Linear dependence of muscle phosphocreatine kinetics on oxidative capacity. , 1997, The American journal of physiology.
[33] K. Madsen,et al. Calcium content and respiratory control index of skeletal muscle mitochondria during exercise and recovery. , 1996, The American journal of physiology.
[34] M. Kushmerick,et al. Separate measures of ATP utilization and recovery in human skeletal muscle. , 1993, The Journal of physiology.
[35] R. Meyer,et al. A linear model of muscle respiration explains monoexponential phosphocreatine changes. , 1988, The American journal of physiology.
[36] A. Kuznetsov,et al. Mitochondrial respiratory parameters in cardiac tissue: a novel method of assessment by using saponin-skinned fibers. , 1987, Biochimica et biophysica acta.
[37] S Nioka,et al. Control of oxidative metabolism and oxygen delivery in human skeletal muscle: a steady-state analysis of the work/energy cost transfer function. , 1985, Proceedings of the National Academy of Sciences of the United States of America.
[38] G. Sjøgaard,et al. Water and ion shifts in skeletal muscle of humans with intense dynamic knee extension. , 1985, The American journal of physiology.
[39] William Rouslin. Mitochondrial complexes I, II, III, IV, and V in myocardial ischemia and autolysis. , 1983, The American journal of physiology.
[40] S. W. Leslie,et al. Calcium uptake in skeletal muscle mitochondria , 1978, European Journal of Applied Physiology and Occupational Physiology.
[41] Pedro M. Quirós,et al. Mitohormesis, an Antiaging Paradigm. , 2018, International review of cell and molecular biology.
[42] E. Gnaiger,et al. High-resolution respirometry: OXPHOS protocols for human cells and permeabilized fibers from small biopsies of human muscle. , 2012, Methods in molecular biology.
[43] R. Henry,et al. Reduced mechanical efficiency in chronic obstructive pulmonary disease but normal peak VO2 with small muscle mass exercise. , 2004, American journal of respiratory and critical care medicine.
[44] P. Srere,et al. [1] Citrate synthase. [EC 4.1.3.7. Citrate oxaloacetate-lyase (CoA-acetylating)] , 1969 .