TY - JOUR
T1 - Fiber-type-specific sensitivities and phenotypic adaptations to dietary fat overload differentially impact fast- versus slow-twitch muscle contractile function in C57BL/6J mice
AU - Ciapaite, Jolita
AU - van den Berg, Sjoerd A.
AU - Houten, Sander M.
AU - Nicolay, Klaas
AU - van Dijk, Ko Willems
AU - Jeneson, Jeroen
PY - 2015/2
Y1 - 2015/2
N2 - High-fat diets (HFDs) have been shown to interfere with skeletal muscle energy metabolism and cause peripheral insulin resistance. However, understanding of HFD impact on skeletal muscle primary function, i.e., contractile performance, is limited. Male C57BL/6J mice were fed HFD containing lard (HFL) or palm oil (HFP), or low-fat diet (LED) for 5 weeks. Fast-twitch (FT) extensor digitorum Iongus (EDL) and slow-twitch (ST) soleus muscles were characterized with respect to contractile function and selected biochemical features. In EDL muscle, a 30%-50% increase in fatty acid (FA) content and doubling of long-chain acylcarnitine (C14-C18) content in response to HFL and HFP feeding were accompanied by increase in protein levels of peroxisome proliferator-activated receptor-gamma coactivator-1 alpha, mitochondrial oxidative phosphorylation complexes and acyl-CoA dehydrogenases involved in mitochondrial FA beta-oxidation. Peak force of FT EDL twitch and tetanic contractions was unaltered, but the relaxation time (RT) of twitch contractions was 30% slower compared to LFD controls. The latter was caused by accumulation of lipid intermediates rather than changes in the expression levels of proteins involved in calcium handling. In ST soleus muscle, no evidence for lipid overload was found in any HFD group. However, particularly in HFP group, the peak force of twitch and tetanic contractions was reduced, but RT was faster than LFD controls. The latter was associated with a fast-to-slow shift in troponin T isoform expression. Taken together, these data highlight fiber-type-specific sensitivities and phenotypic adaptations to dietary lipid overload that differentially impact fast- versus slow-twitch skeletal muscle contractile function. (C) 2015 Elsevier Inc. All rights reserved.
AB - High-fat diets (HFDs) have been shown to interfere with skeletal muscle energy metabolism and cause peripheral insulin resistance. However, understanding of HFD impact on skeletal muscle primary function, i.e., contractile performance, is limited. Male C57BL/6J mice were fed HFD containing lard (HFL) or palm oil (HFP), or low-fat diet (LED) for 5 weeks. Fast-twitch (FT) extensor digitorum Iongus (EDL) and slow-twitch (ST) soleus muscles were characterized with respect to contractile function and selected biochemical features. In EDL muscle, a 30%-50% increase in fatty acid (FA) content and doubling of long-chain acylcarnitine (C14-C18) content in response to HFL and HFP feeding were accompanied by increase in protein levels of peroxisome proliferator-activated receptor-gamma coactivator-1 alpha, mitochondrial oxidative phosphorylation complexes and acyl-CoA dehydrogenases involved in mitochondrial FA beta-oxidation. Peak force of FT EDL twitch and tetanic contractions was unaltered, but the relaxation time (RT) of twitch contractions was 30% slower compared to LFD controls. The latter was caused by accumulation of lipid intermediates rather than changes in the expression levels of proteins involved in calcium handling. In ST soleus muscle, no evidence for lipid overload was found in any HFD group. However, particularly in HFP group, the peak force of twitch and tetanic contractions was reduced, but RT was faster than LFD controls. The latter was associated with a fast-to-slow shift in troponin T isoform expression. Taken together, these data highlight fiber-type-specific sensitivities and phenotypic adaptations to dietary lipid overload that differentially impact fast- versus slow-twitch skeletal muscle contractile function. (C) 2015 Elsevier Inc. All rights reserved.
KW - High-fat-diet-induced obesity
KW - Skeletal muscle function
KW - Fiber type
KW - Fatty acid metabolism
KW - Oxidative phosphorylation
KW - Troponin T
KW - CHAIN ACYL-COA
KW - SKELETAL-MUSCLE
KW - INSULIN-RESISTANCE
KW - OXIDATIVE CAPACITY
KW - TROPONIN-T
KW - SARCOPLASMIC-RETICULUM
KW - FED RATS
KW - METABOLISM
KW - MITOCHONDRIA
KW - ISOFORMS
U2 - 10.1016/j.jnutbio.2014.09.014
DO - 10.1016/j.jnutbio.2014.09.014
M3 - Article
SN - 0955-2863
VL - 26
SP - 155
EP - 164
JO - Journal of Nutritional Biochemistry
JF - Journal of Nutritional Biochemistry
IS - 2
ER -