Tissue-specific and substrate-specific mitochondrial bioenergetics in feline cardiac and skeletal muscles

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Standard

Tissue-specific and substrate-specific mitochondrial bioenergetics in feline cardiac and skeletal muscles. / Christiansen, Liselotte Bruun; Dela, Flemming; Koch, Jørgen; Yokota, Takashi.

I: Journal of Veterinary Medical Science, Bind 77, Nr. 6, 11.02.2015, s. 669-675.

Publikation: Bidrag til tidsskriftTidsskriftartikelForskningfagfællebedømt

Harvard

Christiansen, LB, Dela, F, Koch, J & Yokota, T 2015, 'Tissue-specific and substrate-specific mitochondrial bioenergetics in feline cardiac and skeletal muscles', Journal of Veterinary Medical Science, bind 77, nr. 6, s. 669-675. https://doi.org/10.1292/jvms.14-0573

APA

Christiansen, L. B., Dela, F., Koch, J., & Yokota, T. (2015). Tissue-specific and substrate-specific mitochondrial bioenergetics in feline cardiac and skeletal muscles. Journal of Veterinary Medical Science, 77(6), 669-675. https://doi.org/10.1292/jvms.14-0573

Vancouver

Christiansen LB, Dela F, Koch J, Yokota T. Tissue-specific and substrate-specific mitochondrial bioenergetics in feline cardiac and skeletal muscles. Journal of Veterinary Medical Science. 2015 feb. 11;77(6):669-675. https://doi.org/10.1292/jvms.14-0573

Author

Christiansen, Liselotte Bruun ; Dela, Flemming ; Koch, Jørgen ; Yokota, Takashi. / Tissue-specific and substrate-specific mitochondrial bioenergetics in feline cardiac and skeletal muscles. I: Journal of Veterinary Medical Science. 2015 ; Bind 77, Nr. 6. s. 669-675.

Bibtex

@article{f458773ef48c49cb8b237f776d1f1786,
title = "Tissue-specific and substrate-specific mitochondrial bioenergetics in feline cardiac and skeletal muscles",
abstract = "No studies have investigated the mitochondrial function in permeabilized muscle fiber from cats. The aim of this study was to investigate tissue-specific and substrate-specific characteristics of mitochondrial oxidative phosphorylation (OXPHOS) capacity in feline permeabilized oxidative muscle fibers. Biopsies of left ventricular cardiac muscle and soleus muscle, a type I-rich oxidative skeletal muscle, were obtained from 15 healthy domestic cats. Enzymatic activity of citrate synthase (CS), a biomarker of mitochondrial content, was measured. Mitochondrial OXPHOS capacity with various kinds of non-fatty-acid substrates and fatty-acid substrate in permeabilized muscle fiber was measured by using high-resolution respirometry. CS activity in the heart was 3 times higher than in the soleus muscle. Mitochondrial state 3 respiration, ADP-stimulated respiration, with complex I-linked and complex I+II-linked substrates, respectively, was significantly higher in the heart than in the soleus muscle when normalized for muscle mass, but not for CS activity, indicating that greater capacity for mitochondrial OXPHOS with these non-fatty-acid substrates in the heart may depend on higher mitochondrial content. In contrast, the soleus muscle had higher mitochondrial state 3 respiration with fatty acids than the heart when normalized for CS activity, indicating greater capacity for fatty-acid oxidation per mitochondrion in the soleus. Our findings suggest that there are tissue- specific and substrate-specific quantitative and qualitative differences in mitochondrial OXPHOS capacity between the different types of oxidative muscles from cats.",
author = "Christiansen, {Liselotte Bruun} and Flemming Dela and J{\o}rgen Koch and Takashi Yokota",
year = "2015",
month = feb,
day = "11",
doi = "10.1292/jvms.14-0573",
language = "English",
volume = "77",
pages = "669--675",
journal = "Journal of Veterinary Medical Science",
issn = "0916-7250",
publisher = "Japanese Society of Veterinary Science",
number = "6",

}

RIS

TY - JOUR

T1 - Tissue-specific and substrate-specific mitochondrial bioenergetics in feline cardiac and skeletal muscles

AU - Christiansen, Liselotte Bruun

AU - Dela, Flemming

AU - Koch, Jørgen

AU - Yokota, Takashi

PY - 2015/2/11

Y1 - 2015/2/11

N2 - No studies have investigated the mitochondrial function in permeabilized muscle fiber from cats. The aim of this study was to investigate tissue-specific and substrate-specific characteristics of mitochondrial oxidative phosphorylation (OXPHOS) capacity in feline permeabilized oxidative muscle fibers. Biopsies of left ventricular cardiac muscle and soleus muscle, a type I-rich oxidative skeletal muscle, were obtained from 15 healthy domestic cats. Enzymatic activity of citrate synthase (CS), a biomarker of mitochondrial content, was measured. Mitochondrial OXPHOS capacity with various kinds of non-fatty-acid substrates and fatty-acid substrate in permeabilized muscle fiber was measured by using high-resolution respirometry. CS activity in the heart was 3 times higher than in the soleus muscle. Mitochondrial state 3 respiration, ADP-stimulated respiration, with complex I-linked and complex I+II-linked substrates, respectively, was significantly higher in the heart than in the soleus muscle when normalized for muscle mass, but not for CS activity, indicating that greater capacity for mitochondrial OXPHOS with these non-fatty-acid substrates in the heart may depend on higher mitochondrial content. In contrast, the soleus muscle had higher mitochondrial state 3 respiration with fatty acids than the heart when normalized for CS activity, indicating greater capacity for fatty-acid oxidation per mitochondrion in the soleus. Our findings suggest that there are tissue- specific and substrate-specific quantitative and qualitative differences in mitochondrial OXPHOS capacity between the different types of oxidative muscles from cats.

AB - No studies have investigated the mitochondrial function in permeabilized muscle fiber from cats. The aim of this study was to investigate tissue-specific and substrate-specific characteristics of mitochondrial oxidative phosphorylation (OXPHOS) capacity in feline permeabilized oxidative muscle fibers. Biopsies of left ventricular cardiac muscle and soleus muscle, a type I-rich oxidative skeletal muscle, were obtained from 15 healthy domestic cats. Enzymatic activity of citrate synthase (CS), a biomarker of mitochondrial content, was measured. Mitochondrial OXPHOS capacity with various kinds of non-fatty-acid substrates and fatty-acid substrate in permeabilized muscle fiber was measured by using high-resolution respirometry. CS activity in the heart was 3 times higher than in the soleus muscle. Mitochondrial state 3 respiration, ADP-stimulated respiration, with complex I-linked and complex I+II-linked substrates, respectively, was significantly higher in the heart than in the soleus muscle when normalized for muscle mass, but not for CS activity, indicating that greater capacity for mitochondrial OXPHOS with these non-fatty-acid substrates in the heart may depend on higher mitochondrial content. In contrast, the soleus muscle had higher mitochondrial state 3 respiration with fatty acids than the heart when normalized for CS activity, indicating greater capacity for fatty-acid oxidation per mitochondrion in the soleus. Our findings suggest that there are tissue- specific and substrate-specific quantitative and qualitative differences in mitochondrial OXPHOS capacity between the different types of oxidative muscles from cats.

U2 - 10.1292/jvms.14-0573

DO - 10.1292/jvms.14-0573

M3 - Journal article

C2 - 25716052

VL - 77

SP - 669

EP - 675

JO - Journal of Veterinary Medical Science

JF - Journal of Veterinary Medical Science

SN - 0916-7250

IS - 6

ER -

ID: 140535280