In vivo mitochondrial function in aging skeletal muscle: capacity, flux, and patterns of use

被引:29
|
作者
Kent, Jane A. [1 ]
Fitzgerald, Liam F. [1 ]
机构
[1] Univ Massachusetts, Dept Kinesiol, Muscle Physiol Lab, Amherst, MA 01003 USA
关键词
bioenergetics; biomechanics; glycolysis; mitochondria; physical activity; NUCLEAR-MAGNETIC-RESONANCE; NEAR-INFRARED SPECTROSCOPY; AGE-RELATED-CHANGES; OXIDATIVE CAPACITY; RESPIRATORY CAPACITY; VITRO MEASUREMENTS; PHYSICAL-ACTIVITY; P-31; NMR; OLD-AGE; PHOSPHOCREATINE RESYNTHESIS;
D O I
10.1152/japplphysiol.00583.2016
中图分类号
Q4 [生理学];
学科分类号
071003 ;
摘要
Because of the fundamental dependence of mammalian life on adequate mitochondrial function, the question of how and why mitochondria change in old age is the target of intense study. Given the importance of skeletal muscle for the support of mobility and health, this question extends to the need to understand mitochondrial changes in the muscle of older adults, as well. We and others have focused on clarifying the age-related changes in human skeletal muscle mitochondrial function in vivo. These changes include both the maximal capacity for oxidative production of energy (ATP), as well as the relative use of mitochondrial ATP production for powering muscular activity. It has been known for nearly 50 yr that muscle mitochondrial content is highly plastic; exercise training can induce an similar to 2-fold increase in mitochondrial content, while disuse has the opposite effect. Here, we suggest that a portion of the age-related changes in mitochondrial function that have been reported are likely the result of behavioral effects, as physical activity influences have not always been accounted for. Further, there is emerging evidence that various muscles may be affected differently by age-related changes in physical activity and movement patterns. In this review, we will focus on age-related changes in oxidative capacity and flux measured in vivo in human skeletal muscle.
引用
收藏
页码:996 / 1003
页数:8
相关论文
共 50 条
  • [21] Mitochondrial Energetics in Skeletal Muscle Are Associated With Leg Power and Cardiorespiratory Fitness in the Study of Muscle, Mobility and Aging
    Mau, Theresa
    Lui, Li-Yung
    Distefano, Giovanna
    Kramer, Philip A.
    Ramos, Sofhia, V
    Toledo, Frederico G. S.
    Santanasto, Adam J.
    Shankland, Eric G.
    Marcinek, David J.
    Jurczak, Michael J.
    Sipula, Ian
    Bello, Fiona M.
    Duchowny, Kate A.
    Molina, Anthony J. A.
    Sparks, Lauren M.
    Goodpaster, Bret H.
    Hepple, Russell T.
    Kritchevsky, Stephen B.
    Newman, Anne B.
    Cawthon, Peggy M.
    Cummings, Steven R.
    Coen, Paul M.
    JOURNALS OF GERONTOLOGY SERIES A-BIOLOGICAL SCIENCES AND MEDICAL SCIENCES, 2023, 78 (08): : 1367 - 1375
  • [22] Skeletal Muscle Mitochondrial Energetic Efficiency and Aging
    Crescenzo, Raffaella
    Bianco, Francesca
    Mazzoli, Arianna
    Giacco, Antonia
    Liverini, Giovanna
    Iossa, Susanna
    INTERNATIONAL JOURNAL OF MOLECULAR SCIENCES, 2015, 16 (05): : 10674 - 10685
  • [23] A Plasma Proteomic Signature of Skeletal Muscle Mitochondrial Function
    Zampino, Marta
    Tanaka, Toshiko
    Ubaida-Mohien, Ceereena
    Fantoni, Giovanna
    Candia, Julian
    Semba, Richard D.
    Ferrucci, Luigi
    INTERNATIONAL JOURNAL OF MOLECULAR SCIENCES, 2020, 21 (24) : 1 - 20
  • [24] Skeletal muscle mitochondrial function is preserved in young patients with chronic renal failure
    Miró, O
    Marrades, RM
    Roca, J
    Sala, E
    Masanés, F
    Campistol, JM
    Torregrosa, JV
    Casademont, J
    Wagner, PD
    Cardellach, F
    AMERICAN JOURNAL OF KIDNEY DISEASES, 2002, 39 (05) : 1025 - 1031
  • [25] Aerobic capacity and skeletal muscle function in children with asthma
    Villa, Fabiane
    Beltran Moschione Castro, Ana Paula
    Pastorino, Antonio Carlos
    Santarem, Jose Maria
    Martins, Milton Arruda
    Abe Jacob, Cristina Miuki
    Carvalho, Celso Ricardo
    ARCHIVES OF DISEASE IN CHILDHOOD, 2011, 96 (06) : 554 - 559
  • [26] Assessment of in vivo skeletal muscle mitochondrial respiratory capacity in humans by near-infrared spectroscopy: a comparison with in situ measurements
    Ryan, Terence E.
    Brophy, Patricia
    Lin, Chien-Te
    Hickner, Robert C.
    Neufer, P. Darrell
    JOURNAL OF PHYSIOLOGY-LONDON, 2014, 592 (15): : 3231 - 3241
  • [27] Significance of bilayer-forming phospholipids for skeletal muscle insulin sensitivity and mitochondrial function
    Grapentine, Sophie
    Bakovic, Marica
    JOURNAL OF BIOMEDICAL RESEARCH, 2020, 34 (01): : 1 - 13
  • [28] The combined effects of obesity and ageing on skeletal muscle function and tendon properties in vivo in men
    Tomlinson, David J.
    Erskine, Robert M.
    Morse, Christopher I.
    Pappachan, Joseph M.
    Sanderson-Gillard, Emmanuel
    Onambele-Pearson, Gladys L.
    ENDOCRINE, 2021, 72 (02) : 411 - 422
  • [29] Skeletal muscle mitochondrial function and exercise capacity are not impaired in mice with knockout of STAT3
    Dent, Jessica R.
    Hetrick, Byron
    Tahvilian, Shahriar
    Sathe, Abha
    Greyslak, Keenan
    LaBarge, Samuel A.
    Svensson, Kristoffer
    McCurdy, Carrie E.
    Schenk, Simon
    JOURNAL OF APPLIED PHYSIOLOGY, 2019, 127 (04) : 1117 - 1127
  • [30] Low intrinsic running capacity is associated with reduced skeletal muscle substrate oxidation and lower mitochondrial content in white skeletal muscle
    Rivas, Donato A.
    Lessard, Sarah J.
    Saito, Misato
    Friedhuber, Anna M.
    Koch, Lauren G.
    Britton, Steven L.
    Yaspelkis, Ben B., III
    Hawley, John A.
    AMERICAN JOURNAL OF PHYSIOLOGY-REGULATORY INTEGRATIVE AND COMPARATIVE PHYSIOLOGY, 2011, 300 (04) : R835 - R843