4.7 Article

Lifelong Ulk1-Mediated Autophagy Deficiency in Muscle Induces Mitochondrial Dysfunction and Contractile Weakness

期刊

出版社

MDPI
DOI: 10.3390/ijms22041937

关键词

aging; mitophagy; autophagy flux; neuromuscular junction; sarcopenia

资金

  1. Georgia Partners in Medicine REM seed grant
  2. Department of Defense, through the Clinical & Rehabilitative Medicine Research Program, FY17 Neuromusculoskeletal Injuries Rehabilitation Research Award [W81XWH-18-1-0710]
  3. National Science Foundation Graduate Research Fellowship Program [DGE-1650441]

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This study investigated the role of Ulk1-mediated autophagy in skeletal muscle aging by using muscle-specific Ulk1 knockout mice. Findings suggest that under Ulk1 deficiency, muscle contractile and metabolic function are impaired, leading to mitochondrial damage and oxidative stress. Additionally, lower activation of Ulk1 in aging muscles may contribute to decreased autophagy flux and accumulation of dysfunctional mitochondria.
The accumulation of damaged mitochondria due to insufficient autophagy has been implicated in the pathophysiology of skeletal muscle aging. Ulk1 is an autophagy-related kinase that initiates autophagosome assembly and may also play a role in autophagosome degradation (i.e., autophagy flux), but the contribution of Ulk1 to healthy muscle aging is unclear. Therefore, the purpose of this study was to investigate the role of Ulk1-mediated autophagy in skeletal muscle aging. At age 22 months (80% survival rate), muscle contractile and metabolic function were assessed using electrophysiology in muscle-specific Ulk1 knockout mice (MKO) and their littermate controls (LM). Specific peak-isometric torque of the ankle dorsiflexors (normalized by tibialis anterior muscle cross-sectional area) and specific force of the fast-twitch extensor digitorum longus muscles was reduced in MKO mice compared to LM mice (p < 0.03). Permeabilized muscle fibers from MKO mice had greater mitochondrial content, yet lower mitochondrial oxygen consumption and greater reactive oxygen species production compared to fibers from LM mice (p <= 0.04). Alterations in neuromuscular junction innervation patterns as well as changes to autophagosome assembly and flux were explored as possible contributors to the pathological features in Ulk1 deficiency. Of primary interest, we found that Ulk1 phosphorylation (activation) to total Ulk1 protein content was reduced in older muscles compared to young muscles from both human and mouse, which may contribute to decreased autophagy flux and an accumulation of dysfunctional mitochondria. Results from this study support the role of Ulk1-mediated autophagy in aging skeletal muscle, reflecting Ulk1 ' s dual role in maintaining mitochondrial integrity through autophagosome assembly and degradation.

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