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Confounding Roles of ER Stress and the Unfolded Protein Response in Skeletal Muscle Atrophy

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MDPI
DOI: 10.3390/ijms22052567

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skeletal muscle; atrophy; muscle wasting; ER stress; UPR

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Skeletal muscle is a highly plastic tissue capable of adapting to various stimuli, with ER stress and activation of the unfolded protein response (UPR) being induced under conditions such as exercise, hypoxia, and calcium imbalances. The UPR in skeletal muscle is still being elucidated, as evidence suggests its involvement in various catabolic stimuli and potential roles in maintaining homeostasis or driving atrophy. Continued investigations into the individual molecules of this complex pathway are crucial for a full understanding of the mechanisms.
Skeletal muscle is an essential organ, responsible for many physiological functions such as breathing, locomotion, postural maintenance, thermoregulation, and metabolism. Interestingly, skeletal muscle is a highly plastic tissue, capable of adapting to anabolic and catabolic stimuli. Skeletal muscle contains a specialized smooth endoplasmic reticulum (ER), known as the sarcoplasmic reticulum, composed of an extensive network of tubules. In addition to the role of folding and trafficking proteins within the cell, this specialized organelle is responsible for the regulated release of calcium ions (Ca2+) into the cytoplasm to trigger a muscle contraction. Under various stimuli, such as exercise, hypoxia, imbalances in calcium levels, ER homeostasis is disturbed and the amount of misfolded and/or unfolded proteins accumulates in the ER. This accumulation of misfolded/unfolded protein causes ER stress and leads to the activation of the unfolded protein response (UPR). Interestingly, the role of the UPR in skeletal muscle has only just begun to be elucidated. Accumulating evidence suggests that ER stress and UPR markers are drastically induced in various catabolic stimuli including cachexia, denervation, nutrient deprivation, aging, and disease. Evidence indicates some of these molecules appear to be aiding the skeletal muscle in regaining homeostasis whereas others demonstrate the ability to drive the atrophy. Continued investigations into the individual molecules of this complex pathway are necessary to fully understand the mechanisms.

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