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Gender differences in changes of motor cortex excitability during elevated blood lactate levels

Gender differences in changes of motor cortex excitability during elevated blood lactate levels

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Pages 106-110 | Received 26 Jun 2010, Accepted 04 Jul 2010, Published online: 12 Aug 2010

References

  • Bangsbo J. Quantification of anaerobic energy production during intense exercise. Med Sci Sports Exerc 1998; 130: 47–52
  • Bergold PJ, Pinkhasova V, Syed M, Kao HY, Jozwicka A, Zhao N, Coplan JD, Dow-Edwards D, Fenton AA. Production of panic-like symptoms by lactate is associated with increased neural firing and oxidation of brain redox in the rat hippocampus. Neurosci Lett 2009; 453: 219–224
  • Brooks GA. Lactate doesn’t necessarily cause fatigue: Why are we surprised?. J Physiol 2001; 536: 1
  • Buckley JD, Bourdon PC, Woolford SM. Effect of measuring blood lactate concentrations using different automated lactate analysers on blood lactate transition thresholds. J Sci Med Sport 2003; 6: 408–421
  • Coco M, Alagona G, Rapisarda G, Costanzo E, Calogero RA, Perciavalle Va, Perciavalle V. Elevated blood lactate is associated with increased motor cortex excitability. Somatosens Mot Res 2010; 27: 1–8
  • Dalsgaard MK, Ide K, Cai Y, Quistorff B, Secher NH. The intent to exercise influences the cerebral O2/carbohydrate uptake ratio in humans. J Physiol 2002; 540: 681–689
  • Dalsgaard MK, Quistorff B, Danielsen ER, Selmer C, Vogelsang T, Secher NH. A reduced cerebral metabolic ratio in exercise reflects metabolism and not accumulation of lactate within the human brain. J Physiol 2004; 554: 571–578
  • Dalsgaard MK. Fuelling cerebral activity in exercising man. J Cereb Blood Flow Metab 2006; 26: 731–750
  • De Gennaro L, Bertini M, Pauri F, Cristiani R, Curcio G, Ferrara M, Rossigni PM. Callosal effects of transcranial magnetic stimulation (TMS): The influence of gender and stimulus parameters. Neurosci Res 2004; 48: 129–137
  • Gleeson M. Immune function in sport and exercise. J Appl Physiol 2007; 103: 693–699
  • Gonzalez-Alonso J, Dalsgaard MK, Osada T, Volianitis S, Dawson EA, Yoshiga CC, Secher NH. Brain and central haemodynamics and oxygenation during maximal exercise in humans. J Physiol 2004; 557: 331–342
  • Green JM, McLester JR, Crews TR, Wickwire PJ, Pritchett RC, Redden A. RPE-lactate dissociation during extended cycling. Eur J Appl Physiol 2005; 94: 145–150
  • Hattemer K, Knake S, Reis J, Rochon J, Oertel WH, Rosenow F, Hamer HM. Excitability of the motor cortex during ovulatory and anovulatory cycles: A transcranial magnetic stimulation study. Clin Endocrinol 2007; 66: 387–393
  • Inghilleri M, Conte A, Currà A, Frasca V, Lorenzano C, Berardelli A. Ovarian hormones and cortical excitability. An rTMS study in humans. Clin Neurophysiol 2004; 15: 1063–1068
  • Jackson AS, Ross RM. Methods and limitations of assessing functional work capacity objectively. J Back Musculoskeletal Rehabil 1996; 6: 265–276
  • Knops A, Nuerk HC, Sparing R, Foltys H, Willmes K. On the functional role of human parietal cortex in number processing: How gender mediates the impact of a “virtual lesion” induced by rTMS. Neuropsychologia 2006; 44: 2270–2283
  • Kobayashi M, Pascual-Leone A. Transcranial magnetic stimulation in neurology. Lancet Neurol 2003; 2: 145–156
  • Kristensen GB, Christensen NG, Thue G, Sandberg S. Between-lot variation in external quality assessment of glucose: Clinical importance and effect on participant performance evaluation. Clin Chem 2005; 51: 1632–1626
  • Lemon RN, Griffiths J. Comparing the function of the corticospinal system in different species: Organizational differences for motor specialization?. Muscle Nerve 2005; 32: 261–279
  • Nakamura NH, Rosell DR, Akama KT, McEwen BS. Estrogen and ovariectomy regulate mRNA and protein of glutamic acid decarboxylases and cation-chloride cotransporters in the adult rat hippocampus. Neuroendocrinology 2004; 80: 308–323
  • Nielsen OB, de Paoli F, Overgaard K. Protective effects of lactic acid on force production in rat skeletal muscle. J Physiol 2001; 536: 161–166
  • Pedersen TH, Nielsen OB, Lamb GD, Stephenson DG. Intracellular acidosis enhances the excitability of working muscle. Science 2004; 305: 1144–1147
  • Philp A, Macdonald AL, Watt PW. Lactate—A signal coordinating cell and systemic function. J Exp Biol 2005; 208: 4561–4575
  • Rossini PM, Barker AT, Berardelli A, Caramia MD, Caruso G, Cracco RQ, Dimitrijevic MR, Hallett M, Katayama Y, Lücking CH, et al. Non-invasive electrical and magnetic stimulation of the brain, spinal cord and roots: Basic principles and procedures for routine clinical application. Report of an IFCN committee. Electroenceph Clin Neurophysiol 1994; 91: 79–92
  • Tranulis C, Guéguen B, Pham-Scottez A, Vacheron MN, Cabelguen G, Costantini A, Valero G, Galinovski A. Motor threshold in transcranial magnetic stimulation: Comparison of three estimation methods. Neurophysiol Clin 2006; 36: 1–7
  • Westerblad H, Allen DG, Lannergren J. Muscle fatigue: Lactic acid or inorganic phosphate the major cause?. News Physiol Sci 2002; 17: 17–21

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