4.8 Article

Mild mitochondrial uncoupling impacts cellular aging in human muscles in vivo

出版社

NATL ACAD SCIENCES
DOI: 10.1073/pnas.0610131104

关键词

magnetic resonance spectroscopy; optical spectroscopy; oxidative phosphorylation

资金

  1. NIAMS NIH HHS [R01 AR 41928, R01 AR 45184, R01 AR 36281, R01 AR036281, R01 AR041928] Funding Source: Medline
  2. NIA NIH HHS [AG 00057, K01 AG022385, R01 AG 022385, R01 AG028455, T32 AG000057] Funding Source: Medline

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Faster aging is predicted in more active tissues and animals because of greater reactive oxygen species generation. Yet age-related cell loss is greater in less active cell types, such as type II muscle fibers. Mitochondrial uncoupling has been proposed as a mechanism that reduces reactive oxygen species production and could account for this paradox between longevity and activity. We distinguished these hypotheses by using innovative optical and magnetic resonance spectroscopic methods applied to noninvasively measured ATP synthesis and O-2 uptake in vivo in human muscle. Here we show that mitochondrial function is unchanged with age in mildly uncoupled tibialis anterior muscle (75% type I) despite a high respiratory rate in adults. In contrast, substantial uncoupling and loss of cellular [ATP] indicative of mitochondrial dysfunction with age was found in the lower respiring and well coupled first dorsal interosseus (43-50% type II) of the same subjects. These results reject respiration rate as the sole factor impacting the tempo of cellular aging. Instead, they support mild uncoupling as a mechanism protecting mitochondrial function and contributing to the paradoxical longevity of the most active muscle fibers.

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