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Concepts of Lactate Metabolic Clearance Rate and Lactate Clamp for Metabolic Inquiry: A Mini-Review

Overview
Journal Nutrients
Date 2023 Jul 29
PMID 37513631
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Abstract

Lactate is known to play a central role in the link between glycolytic and mitochondrial oxidative metabolism, as well as to serve as a primary gluconeogenic precursor. Blood lactate concentration is sensitive to the metabolic state of tissues and organs as lactate rates of appearance and disposal/disappearance in the circulation rise and fall in response to physical exercise and other metabolic disturbances. The highest lactate flux rates have been measured during moderate intensity exercise in endurance-trained individuals who exhibit muscular and metabolic adaptations lending to superior oxidative capacity. In contrast, a diminished ability to utilize lactate is associated with poor metabolic fitness. Given these widespread implications in exercise performance and health, we discuss the concept of lactate metabolic clearance rate, which increases at the onset of exercise and, unlike flux rates, reaches a peak just below the power output associated with the maximal lactate steady state. The metabolic clearance rate is determined by both disposal rate and blood concentration, two parameters that are mutually interdependent and thus difficult to parse during steady state exercise studies. We review the evolution of the in vivo lactate clamp methodology to control blood lactate concentration and discuss its application in the investigation of whole-body lactate disposal capacities. In conclusion, we assert that the lactate clamp is a useful research methodology for examining lactate flux, in particular the factors that drive metabolic clearance rate.

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References
1.
MacRae H, Dennis S, Bosch A, Noakes T . Effects of training on lactate production and removal during progressive exercise in humans. J Appl Physiol (1985). 1992; 72(5):1649-56. DOI: 10.1152/jappl.1992.72.5.1649. View

2.
Brooks G, Osmond A, Arevalo J, Duong J, Curl C, Moreno-Santillan D . Lactate as a myokine and exerkine: drivers and signals of physiology and metabolism. J Appl Physiol (1985). 2023; 134(3):529-548. PMC: 9970662. DOI: 10.1152/japplphysiol.00497.2022. View

3.
Messonnier L, Freund H, Feasson L, Prieur F, Castells J, Denis C . Blood lactate exchange and removal abilities after relative high-intensity exercise: effects of training in normoxia and hypoxia. Eur J Appl Physiol. 2001; 84(5):403-12. DOI: 10.1007/s004210000378. View

4.
Phillips S, Green H, Tarnopolsky M, Grant S . Increased clearance of lactate after short-term training in men. J Appl Physiol (1985). 1995; 79(6):1862-9. DOI: 10.1152/jappl.1995.79.6.1862. View

5.
Ryan W, Sutton J, Toews C, Jones N . Metabolism of infused L(+)-lactate during exercise. Clin Sci (Lond). 1979; 56(2):139-46. DOI: 10.1042/cs0560139. View