Lactate oxidation in human skeletal muscle mitochondria

Author:

Jacobs Robert A.123,Meinild Anne-Kristine3,Nordsborg Nikolai B.4,Lundby Carsten13

Affiliation:

1. Zurich Center for Integrative Human Physiology, Zurich, Switzerland;

2. Institute of Veterinary Physiology, Vetsuisse Faculty, University of Zurich, Zurich, Switzerland;

3. Institute of Physiology, University of Zurich, Zurich, Switzerland;

4. Department of Exercise and Sport Sciences, University of Copenhagen, Copenhagen, Denmark

Abstract

Lactate is an important intermediate metabolite in human bioenergetics and is oxidized in many different tissues including the heart, brain, kidney, adipose tissue, liver, and skeletal muscle. The mechanism(s) explaining the metabolism of lactate in these tissues, however, remains unclear. Here, we analyze the ability of skeletal muscle to respire lactate by using an in situ mitochondrial preparation that leaves the native tubular reticulum and subcellular interactions of the organelle unaltered. Skeletal muscle biopsies were obtained from vastus lateralis muscle in 16 human subjects. Samples were chemically permeabilized with saponin, which selectively perforates the sarcolemma and facilitates the loss of cytosolic content without altering mitochondrial membranes, structure, and subcellular interactions. High-resolution respirometry was performed on permeabilized muscle biopsy preparations. By use of four separate and specific substrate titration protocols, the respirometric analysis revealed that mitochondria were capable of oxidizing lactate in the absence of exogenous LDH. The titration of lactate and NAD+into the respiration medium stimulated respiration ( P ≤ 0.003). The addition of exogenous LDH failed to increase lactate-stimulated respiration ( P = 1.0). The results further demonstrate that human skeletal muscle mitochondria cannot directly oxidize lactate within the mitochondrial matrix. Alternately, these data support previous claims that lactate is converted to pyruvate within the mitochondrial intermembrane space with the pyruvate subsequently taken into the mitochondrial matrix where it enters the TCA cycle and is ultimately oxidized.

Publisher

American Physiological Society

Subject

Physiology (medical),Physiology,Endocrinology, Diabetes and Metabolism

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