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Exercise attenuates juvenile irradiation-induced skeletal muscle decline by improving calcium handling and decreasing mitochondrial stress

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O'Connor, TN; Kallenbach, JG; Chakkalakal, JV; Dirksen, RT
Published in: The Journal of general physiology
September 5, 2022

Proper skeletal muscle development, maintenance, and function is necessary for movement. Decline in muscle function with age and disease is directly associated with a diminished quality of life. Radiation therapy is commonly used to treat certain forms of childhood cancer based on the cytotoxic effects of radiation on cancerous tissue. However, the adverse effects elicited by radiation are not always constrained to the diseased tissue and can accelerate muscle wasting and decline, which is particularly detrimental to juvenile cancer survivors. Exercise is effective at limiting muscle decline and improving muscle function in various diseases. Thus, we hypothesized 1 mo of voluntary endurance exercise following juvenile radiation treatment will reduce muscle damage and restore functional deficits that occur following radiation. Here, we show that following juvenile radiation, 1 mo of voluntary wheel running significantly improved muscle function in mice by promoting adaptations in intracellular calcium handling, improving mitochondrial turnover and reducing oxidative stress resulting from radiation-induced mitochondrial damage. These findings help guide caregivers in their approach to childhood cancer survivor recovery and have implications for other diseases where similar mechanisms of calcium handling and mitochondrial function are disrupted.

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Published In

The Journal of general physiology

DOI

EISSN

1540-7748

Publication Date

September 5, 2022

Volume

154

Issue

9

Related Subject Headings

  • Physiology
  • 3208 Medical physiology
  • 3109 Zoology
  • 3101 Biochemistry and cell biology
  • 1116 Medical Physiology
  • 0606 Physiology
 

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O’Connor, T. N., Kallenbach, J. G., Chakkalakal, J. V., & Dirksen, R. T. (2022). Exercise attenuates juvenile irradiation-induced skeletal muscle decline by improving calcium handling and decreasing mitochondrial stress (Accepted). The Journal of general physiology. https://doi.org/10.1085/jgp.2021ecc21
O’Connor, T. N., J. G. Kallenbach, J. V. Chakkalakal, and R. T. Dirksen. “Exercise attenuates juvenile irradiation-induced skeletal muscle decline by improving calcium handling and decreasing mitochondrial stress (Accepted).” The Journal of General Physiology, September 5, 2022. https://doi.org/10.1085/jgp.2021ecc21.
O’Connor TN, Kallenbach JG, Chakkalakal JV, Dirksen RT. Exercise attenuates juvenile irradiation-induced skeletal muscle decline by improving calcium handling and decreasing mitochondrial stress (Accepted). Vol. 154, The Journal of general physiology. 2022.
O’Connor, T. N., et al. “Exercise attenuates juvenile irradiation-induced skeletal muscle decline by improving calcium handling and decreasing mitochondrial stress (Accepted).” The Journal of General Physiology, vol. 154, no. 9, 5 Sept. 2022. Scopus, doi:10.1085/jgp.2021ecc21.
O’Connor TN, Kallenbach JG, Chakkalakal JV, Dirksen RT. Exercise attenuates juvenile irradiation-induced skeletal muscle decline by improving calcium handling and decreasing mitochondrial stress (Accepted). The Journal of general physiology. 2022.

Published In

The Journal of general physiology

DOI

EISSN

1540-7748

Publication Date

September 5, 2022

Volume

154

Issue

9

Related Subject Headings

  • Physiology
  • 3208 Medical physiology
  • 3109 Zoology
  • 3101 Biochemistry and cell biology
  • 1116 Medical Physiology
  • 0606 Physiology