Lactic Acid and Exercise Performance
Top Cited Papers
- 1 January 2006
- journal article
- review article
- Published by Springer Nature in Sports Medicine
- Vol. 36 (4) , 279-291
- https://doi.org/10.2165/00007256-200636040-00001
Abstract
This article critically discusses whether accumulation of lactic acid, or in reality lactate and/or hydrogen (H+) ions, is a major cause of skeletal muscle fatigue, i.e. decline of muscle force or power output leading to impaired exercise performance. There exists a long history of studies on the effects of increased lactate/H+ concentrations in muscle or plasma on contractile performance of skeletal muscle. Evidence suggesting that lactate/H+ is a culprit has been based on correlation-type studies, which reveal close temporal relationships between intramuscular lactate or H+ accumulation and the decline of force during fatiguing stimulation in frog, rodent or human muscle. In addition, an induced acidosis can impair muscle contractility in non-fatigued humans or in isolated muscle preparations, and several mechanisms to explain such effects have been provided. However, a number of recent high-profile papers have seriously challenged the ‘lactic acid hypothesis’. In the 1990s, these findings mainly involved diminished negative effects of an induced acidosis in skinned or intact muscle fibres, at higher more physiological experimental temperatures. In the early 2000s, it was conclusively shown that lactate has little detrimental effect on mechanically skinned fibres activated by artificial stimulation. Perhaps more remarkably, there are now several reports of protective effects of lactate exposure or induced acidosis on potassium-depressed muscle contractions in isolated rodent muscles. In addition, sodium-lactate exposure can attenuate severe fatigue in rat muscle stimulated in situ, and sodium lactate ingestion can increase time to exhaustion during sprinting in humans. Taken together, these latest findings have led to the idea that lactate/ H+ is ergogenic during exercise. It should not be taken as fact that lactic acid is the deviant that impairs exercise performance. Experiments on isolated muscle suggest that acidosis has little detrimental effect or may even improve muscle performance during high-intensity exercise. In contrast, induced acidosis can exacerbate fatigue during whole-body dynamic exercise and alkalosis can improve exercise performance in events lasting 1–10 minutes. To reconcile the findings from isolated muscle fibres through to whole-body exercise, it is hypothesised that a severe plasma acidosis in humans might impair exercise performance by causing a reduced CNS drive to muscle.Keywords
This publication has 108 references indexed in Scilit:
- Calcium adaptation to sodium pump inhibition in a human megakaryocytic cell lineAmerican Journal of Physiology-Cell Physiology, 2005
- Metabolic effects of induced alkalosis during progressive forearm exercise to fatigueJournal of Applied Physiology, 2004
- Interstitial pH in human skeletal muscle during and after dynamic graded exerciseThe Journal of Physiology, 2001
- The contribution of pH‐dependent mechanisms to fatigue at different intensities in mammalian single muscle fibresThe Journal of Physiology, 1998
- Mechanisms of muscle fatigue in intense exerciseJournal of Sports Sciences, 1997
- Effects of K+ on the twitch and tetanic contraction in the sartorius muscle of the frog, Rana pipiens. Implication for fatigue in vivoCanadian Journal of Physiology and Pharmacology, 1992
- Effect of decreased pH on force and phosphocreatine in mammalian skeletal muscleCanadian Journal of Physiology and Pharmacology, 1991
- Sodium Bicarbonate Ingestion and Exercise PerformanceSports Medicine, 1991
- The Effects of Muscular Fatigue on the Kinetics of Sprint RunningResearch Quarterly for Exercise and Sport, 1983
- Muscular fatigue investigated by phosphorus nuclear magnetic resonanceNature, 1978