Role of the Heart in Lactate Shuttling

After almost a century of misunderstanding, it is time to appreciate that lactate shuttling is an important feature of energy flux and metabolic regulation that involves a complex series of metabolic, neuroendocrine, cardiovascular, and cardiac events in vivo. Cell–cell and intracellular lactate shu...

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Main Author: George A. Brooks
Format: Article
Language:English
Published: Frontiers Media S.A. 2021-04-01
Series:Frontiers in Nutrition
Subjects:
Online Access:https://www.frontiersin.org/articles/10.3389/fnut.2021.663560/full
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author George A. Brooks
author_facet George A. Brooks
author_sort George A. Brooks
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description After almost a century of misunderstanding, it is time to appreciate that lactate shuttling is an important feature of energy flux and metabolic regulation that involves a complex series of metabolic, neuroendocrine, cardiovascular, and cardiac events in vivo. Cell–cell and intracellular lactate shuttles in the heart and between the heart and other tissues fulfill essential purposes of energy substrate production and distribution as well as cell signaling under fully aerobic conditions. Recognition of lactate shuttling came first in studies of physical exercise where the roles of driver (producer) and recipient (consumer) cells and tissues were obvious. One powerful example of cell–cell lactate shuttling was the exchange of carbohydrate energy in the form of lactate between working limb skeletal muscle and the heart. The exchange of mass represented a conservation of mass that required the integration of neuroendocrine, autoregulatory, and cardiovascular systems. Now, with greater scrutiny and recognition of the effect of the cardiac cycle on myocardial blood flow, there brings an appreciation that metabolic fluxes must accommodate to pressure-flow realities within an organ in which they occur. Therefore, the presence of an intra-cardiac lactate shuttle is posited to explain how cardiac mechanics and metabolism are synchronized. Specifically, interruption of blood flow during the isotonic phase of systole is supported by glycolysis and subsequent return of blood flow during diastole allows for recovery sustained by oxidative metabolism.
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spelling doaj.art-e2f09a5994e2432d926ce3b8702544ef2022-12-21T22:44:44ZengFrontiers Media S.A.Frontiers in Nutrition2296-861X2021-04-01810.3389/fnut.2021.663560663560Role of the Heart in Lactate ShuttlingGeorge A. BrooksAfter almost a century of misunderstanding, it is time to appreciate that lactate shuttling is an important feature of energy flux and metabolic regulation that involves a complex series of metabolic, neuroendocrine, cardiovascular, and cardiac events in vivo. Cell–cell and intracellular lactate shuttles in the heart and between the heart and other tissues fulfill essential purposes of energy substrate production and distribution as well as cell signaling under fully aerobic conditions. Recognition of lactate shuttling came first in studies of physical exercise where the roles of driver (producer) and recipient (consumer) cells and tissues were obvious. One powerful example of cell–cell lactate shuttling was the exchange of carbohydrate energy in the form of lactate between working limb skeletal muscle and the heart. The exchange of mass represented a conservation of mass that required the integration of neuroendocrine, autoregulatory, and cardiovascular systems. Now, with greater scrutiny and recognition of the effect of the cardiac cycle on myocardial blood flow, there brings an appreciation that metabolic fluxes must accommodate to pressure-flow realities within an organ in which they occur. Therefore, the presence of an intra-cardiac lactate shuttle is posited to explain how cardiac mechanics and metabolism are synchronized. Specifically, interruption of blood flow during the isotonic phase of systole is supported by glycolysis and subsequent return of blood flow during diastole allows for recovery sustained by oxidative metabolism.https://www.frontiersin.org/articles/10.3389/fnut.2021.663560/fullheartlactateglucosefatty acidsketonesexercise
spellingShingle George A. Brooks
Role of the Heart in Lactate Shuttling
Frontiers in Nutrition
heart
lactate
glucose
fatty acids
ketones
exercise
title Role of the Heart in Lactate Shuttling
title_full Role of the Heart in Lactate Shuttling
title_fullStr Role of the Heart in Lactate Shuttling
title_full_unstemmed Role of the Heart in Lactate Shuttling
title_short Role of the Heart in Lactate Shuttling
title_sort role of the heart in lactate shuttling
topic heart
lactate
glucose
fatty acids
ketones
exercise
url https://www.frontiersin.org/articles/10.3389/fnut.2021.663560/full
work_keys_str_mv AT georgeabrooks roleoftheheartinlactateshuttling