Mitochondrial and performance adaptations to exercise training in mice lacking skeletal muscle LKB1. 2013

Colby B Tanner, and Steven R Madsen, and David M Hallowell, and Darren M J Goring, and Timothy M Moore, and Shalene E Hardman, and Megan R Heninger, and Daniel R Atwood, and David M Thomson
Department of Physiology and Developmental Biology, Brigham Young University, Provo, Utah.

LKB1 and its downstream targets of the AMP-activated protein kinase family are important regulators of many aspects of skeletal muscle cell function, including control of mitochondrial content and capillarity. LKB1 deficiency in skeletal and cardiac muscle (mLKB1-KO) greatly impairs exercise capacity. However, cardiac dysfunction in that genetic model prevents a clear assessment of the role of skeletal muscle LKB1 in the observed effects. Our purposes here were to determine whether skeletal muscle-specific knockout of LKB1 (skmLKB1-KO) decreases exercise capacity and mitochondrial protein content, impairs accretion of mitochondrial proteins after exercise training, and attenuates improvement in running performance after exercise training. We found that treadmill and voluntary wheel running capacity was reduced in skmLKB1-KO vs. control (CON) mice. Citrate synthase activity, succinate dehydrogenase activity, and pyruvate dehydrogenase kinase content were lower in KO vs. CON muscles. Three weeks of treadmill training resulted in significantly increased treadmill running performance in both CON and skmLKB1-KO mice. Citrate synthase activity increased significantly with training in both genotypes, but protein content and activity for components of the mitochondrial electron transport chain increased only in CON mice. Capillarity and VEGF protein was lower in skmLKB1-KO vs. CON muscles, but VEGF increased with training only in skmLKB1-KO. Three hours after an acute bout of muscle contractions, PGC-1α, cytochrome c, and VEGF gene expression all increased in CON but not skmLKB1-KO muscles. Our findings indicate that skeletal muscle LKB1 is required for accretion of some mitochondrial proteins but not for early exercise capacity improvements with exercise training.

UI MeSH Term Description Entries
D008297 Male Males
D008931 Mitochondria, Muscle Mitochondria of skeletal and smooth muscle. It does not include myocardial mitochondria for which MITOCHONDRIA, HEART is available. Sarcosomes,Mitochondrion, Muscle,Muscle Mitochondria,Muscle Mitochondrion,Sarcosome
D009043 Motor Activity Body movements of a human or an animal as a behavioral phenomenon. Activities, Motor,Activity, Motor,Motor Activities
D009048 Motor Skills Performance of complex motor acts. Motor Skill,Skill, Motor,Skills, Motor
D002196 Capillaries The minute vessels that connect arterioles and venules. Capillary Beds,Sinusoidal Beds,Sinusoids,Bed, Sinusoidal,Beds, Sinusoidal,Capillary,Capillary Bed,Sinusoid,Sinusoidal Bed
D002950 Citrate (si)-Synthase Enzyme that catalyzes the first step of the tricarboxylic acid cycle (CITRIC ACID CYCLE). It catalyzes the reaction of oxaloacetate and acetyl CoA to form citrate and coenzyme A. This enzyme was formerly listed as EC 4.1.3.7. Citrate Synthase,Synthase, Citrate
D002952 Citric Acid Cycle A series of oxidative reactions in the breakdown of acetyl units derived from GLUCOSE; FATTY ACIDS; or AMINO ACIDS by means of tricarboxylic acid intermediates. The end products are CARBON DIOXIDE, water, and energy in the form of phosphate bonds. Krebs Cycle,Tricarboxylic Acid Cycle,Citric Acid Cycles,Cycle, Citric Acid,Cycle, Krebs,Cycle, Tricarboxylic Acid,Cycles, Citric Acid,Cycles, Tricarboxylic Acid,Tricarboxylic Acid Cycles
D005260 Female Females
D000081382 Pyruvate Dehydrogenase Acetyl-Transferring Kinase A pyruvate dehydrogenase kinase isozyme located in the mitochondria which converts PYRUVATE to ACETYL CoA in the CITRIC ACID CYCLE, phosphorylates SERINE residues on pyruvate dehydrogenase using ATP, and plays a key role in the regulation of GLUCOSE and fatty acid metabolism. PDH Kinase,Pyruvate Dehydrogenase (Acetyl-Transferring) Kinase,Pyruvate Dehydrogenase (Lipoamide) Kinase,Pyruvate Dehydrogenase Kinase,Dehydrogenase Kinase, Pyruvate,Kinase, PDH,Kinase, Pyruvate Dehydrogenase,Pyruvate Dehydrogenase Acetyl Transferring Kinase
D000222 Adaptation, Physiological The non-genetic biological changes of an organism in response to challenges in its ENVIRONMENT. Adaptation, Physiologic,Adaptations, Physiologic,Adaptations, Physiological,Adaptive Plasticity,Phenotypic Plasticity,Physiological Adaptation,Physiologic Adaptation,Physiologic Adaptations,Physiological Adaptations,Plasticity, Adaptive,Plasticity, Phenotypic

Related Publications

Colby B Tanner, and Steven R Madsen, and David M Hallowell, and Darren M J Goring, and Timothy M Moore, and Shalene E Hardman, and Megan R Heninger, and Daniel R Atwood, and David M Thomson
June 2020, International journal of sports medicine,
Colby B Tanner, and Steven R Madsen, and David M Hallowell, and Darren M J Goring, and Timothy M Moore, and Shalene E Hardman, and Megan R Heninger, and Daniel R Atwood, and David M Thomson
March 2017, Physiological research,
Colby B Tanner, and Steven R Madsen, and David M Hallowell, and Darren M J Goring, and Timothy M Moore, and Shalene E Hardman, and Megan R Heninger, and Daniel R Atwood, and David M Thomson
February 2024, Journal of applied physiology (Bethesda, Md. : 1985),
Colby B Tanner, and Steven R Madsen, and David M Hallowell, and Darren M J Goring, and Timothy M Moore, and Shalene E Hardman, and Megan R Heninger, and Daniel R Atwood, and David M Thomson
January 2016, Experimental physiology,
Colby B Tanner, and Steven R Madsen, and David M Hallowell, and Darren M J Goring, and Timothy M Moore, and Shalene E Hardman, and Megan R Heninger, and Daniel R Atwood, and David M Thomson
August 2012, American journal of physiology. Endocrinology and metabolism,
Colby B Tanner, and Steven R Madsen, and David M Hallowell, and Darren M J Goring, and Timothy M Moore, and Shalene E Hardman, and Megan R Heninger, and Daniel R Atwood, and David M Thomson
October 2016, Exercise and sport sciences reviews,
Colby B Tanner, and Steven R Madsen, and David M Hallowell, and Darren M J Goring, and Timothy M Moore, and Shalene E Hardman, and Megan R Heninger, and Daniel R Atwood, and David M Thomson
June 1997, Journal of applied physiology (Bethesda, Md. : 1985),
Colby B Tanner, and Steven R Madsen, and David M Hallowell, and Darren M J Goring, and Timothy M Moore, and Shalene E Hardman, and Megan R Heninger, and Daniel R Atwood, and David M Thomson
March 2019, Molecular metabolism,
Colby B Tanner, and Steven R Madsen, and David M Hallowell, and Darren M J Goring, and Timothy M Moore, and Shalene E Hardman, and Megan R Heninger, and Daniel R Atwood, and David M Thomson
January 2021, Frontiers in aging,
Colby B Tanner, and Steven R Madsen, and David M Hallowell, and Darren M J Goring, and Timothy M Moore, and Shalene E Hardman, and Megan R Heninger, and Daniel R Atwood, and David M Thomson
November 2020, The journals of gerontology. Series A, Biological sciences and medical sciences,
Copied contents to your clipboard!