Perilipin 5 is dispensable for normal substrate metabolism and in the adaptation of skeletal muscle to exercise training

被引:21
|
作者
Mohktar, Ruzaidi A. M. [1 ,2 ,3 ]
Montgomery, Magda K. [1 ,2 ]
Murphy, Robyn M. [4 ]
Watt, Matthew J. [1 ,2 ]
机构
[1] Monash Univ, Monash Biomed Discovery Inst, Metab Dis & Obes Program, Clayton, Vic 3800, Australia
[2] Monash Univ, Dept Physiol, Clayton, Vic 3800, Australia
[3] Univ Malaysia Sabah, Biotechnol Res Inst, Jalan UMS, Sabah, Malaysia
[4] La Trobe Univ, La Trobe Inst Mol Sci, Dept Biochem & Genet, Melbourne, Vic, Australia
基金
英国医学研究理事会; 澳大利亚国家健康与医学研究理事会;
关键词
perilipin; 5; mitochondrial; lipid metabolism; triglyceride; ADIPOSE TRIGLYCERIDE LIPASE; FREE FATTY-ACID; INTRAMUSCULAR TRIACYLGLYCEROL; ENDURANCE EXERCISE; INSULIN-RESISTANCE; LIPID-METABOLISM; OXIDATION; HUMANS; TURNOVER; PROTEIN;
D O I
10.1152/ajpendo.00084.2016
中图分类号
R5 [内科学];
学科分类号
1002 ; 100201 ;
摘要
Cytoplasmic lipid droplets provide a reservoir for triglyceride storage and are a central hub for fatty acid trafficking in cells. The protein perilipin 5 (PLIN5) is highly expressed in oxidative tissues such as skeletal muscle and regulates lipid metabolism by coordinating the trafficking and the reversible interactions of effector proteins at the lipid droplet. PLIN5 may also regulate mitochondrial function, although this remains unsubstantiated. Hence, the aims of this study were to examine the role of PLIN5 in the regulation of skeletal muscle substrate metabolism during acute exercise and to determine whether PLIN5 is required for the metabolic adaptations and enhancement in exercise tolerance following endurance exercise training. Using muscle-specific Plin5 knockout mice (Plin5(MKO)), we show that PLIN5 is dispensable for normal substrate metabolism during exercise, as reflected by levels of blood metabolites and rates of glycogen and triglyceride depletion that were indistinguishable from control (lox/lox) mice. Plin5(MKO) mice exhibited a functional impairment in their response to endurance exercise training, as reflected by reduced maximal running capacity (20%) and reduced time to fatigue during prolonged submaximal exercise (15%). The reduction in exercise performance was not accompanied by alterations in carbohydrate and fatty acid metabolism during submaximal exercise. Similarly, mitochondrial capacity (mtDNA, respiratory complex proteins, citrate synthase activity) and mitochondrial function (oxygen consumption rate in muscle fiber bundles) were not different between lox/lox and Plin5(MKO) mice. Thus, PLIN5 is dispensable for normal substrate metabolism during exercise and is not required to promote mitochondrial biogenesis or enhance the cellular adaptations to endurance exercise training.
引用
收藏
页码:E128 / E137
页数:10
相关论文
共 50 条
  • [41] Skeletal muscle protein metabolism and resistance exercise
    Wolfe, RR
    JOURNAL OF NUTRITION, 2006, 136 (02): : 525S - 528S
  • [42] Endurance Exercise and the Regulation of Skeletal Muscle Metabolism
    Booth, Frank W.
    Ruegsegger, Gregory N.
    Toedebusch, Ryan G.
    Yan, Zhen
    MOLECULAR AND CELLULAR REGULATION OF ADAPTATION TO EXERCISE, 2015, 135 : 129 - 151
  • [43] Skeletal muscle metabolism during exercise in humans
    Hargreaves, M
    CLINICAL AND EXPERIMENTAL PHARMACOLOGY AND PHYSIOLOGY, 2000, 27 (03): : 225 - 228
  • [44] Skeletal muscle energy metabolism during exercise
    Mark Hargreaves
    Lawrence L. Spriet
    Nature Metabolism, 2020, 2 : 817 - 828
  • [45] Exercise training modifies skeletal muscle clock gene expression but not 24-hour rhythmicity in substrate metabolism of men with insulin resistance
    Harmsen, Jan-Frieder
    Kotte, Marit
    Habets, Ivo
    Bosschee, Frederieke
    Frenken, Koen
    Jorgensen, Johanna A.
    de Kam, Soraya
    Moonen-Kornips, Esther
    Cissen, Jochem
    Doligkeit, Daniel
    van de Weijer, Tineke
    Erazo-Tapia, Edmundo
    Buitinga, Mijke
    Hoeks, Joris
    Schrauwen, Patrick
    JOURNAL OF PHYSIOLOGY-LONDON, 2024, 602 (23): : 6417 - 6433
  • [46] Adaptations of skeletal muscle mitochondria to exercise training
    Lundby, Carsten
    Jacobs, Robert A.
    EXPERIMENTAL PHYSIOLOGY, 2016, 101 (01) : 17 - 22
  • [47] Apelin regulates skeletal muscle adaptation to exercise in a high-intensity interval training model
    Kilpio, Teemu
    Skarp, Sini
    Perjes, Abel
    Swan, Julia
    Kaikkonen, Leena
    Saarimaki, Samu
    Szokodi, Istvan
    Penninger, Josef M.
    Szabo, Zoltan
    Magga, Johanna
    Kerkela, Risto
    AMERICAN JOURNAL OF PHYSIOLOGY-CELL PHYSIOLOGY, 2024, 326 (05): : C1437 - C1450
  • [48] Autophagy is required for exercise training-induced skeletal muscle adaptation and improvement of physical performance
    Lira, Vitor A.
    Okutsu, Mitsuharu
    Zhang, Mei
    Greene, Nicholas P.
    Laker, Rhianna C.
    Breen, David S.
    Hoehn, Kyle L.
    Yan, Zhen
    FASEB JOURNAL, 2013, 27 (10): : 4184 - 4193
  • [49] The Skeletal Muscle Metabolome Reflects Resistance Exercise-induced Skeletal Muscle Adaptation
    Gehlert, Sebastian
    Weinisch, Patrick
    Roemisch-Margl, Werner
    Jaspers, Richard
    Artati, Anna
    Adamski, Jerzi
    Dyar, Kenneth A.
    Aussieker, Thorben
    Jacko, Daniel
    Bloch, Wilhelm
    Wackerhage, Henning
    Kastenmueller, Gabi
    MEDICINE & SCIENCE IN SPORTS & EXERCISE, 2022, 54 (09) : 531 - 531
  • [50] SKELETAL-MUSCLE SUBSTRATE UTILIZATION DURING SUBMAXIMAL EXERCISE IN MAN - EFFECT OF ENDURANCE TRAINING
    KIENS, B
    ESSENGUSTAVSSON, B
    CHRISTENSEN, NJ
    SALTIN, B
    JOURNAL OF PHYSIOLOGY-LONDON, 1993, 469 : 459 - 478