Impact of Cancer Cachexia on Cardiac and Skeletal Muscle: Role of Exercise Training
Abstract
:Simple Summary
Abstract
1. Introduction
2. Mechanisms/Pathophysiology
2.1. Altered Energy Balance
2.2. Tumor-Driven Inflammation
3. Skeletal Muscle Wasting during Cachexia
4. Cardiac Dysfunction Induced by Cancer Cachexia
5. Main Effects of Exercises in Muscle
5.1. Inflammation
5.2. Oxidative Stress
5.3. Protein Homeostasis
5.4. Gene Regulation
6. Exercise Modalities and Therapeutic Benefit in Cancer Cachexia
7. Multimodal Approach in Cachexia
8. Conclusions
Author Contributions
Funding
Conflicts of Interest
References
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Trial | Study Design | Characteristics of Included Patients | Physical Exercise Intervention | Other Interventions | Main Results |
---|---|---|---|---|---|
MENAC [88] Study Director: Kaasa S. and Fallon M. | RCT, phase III, open-label, multicenter | Inclusion criteria: NSCLC stage III or IV or pancreatic cancer stage III or IV due to commence first- or second-line anticancer therapy, KPS > 70 | Interventional arm: functional resistance training three times each week and aerobic training twice a week. | Interventional arm: ONS with EPA and DHA, nutritional counselling, and ibuprofen Control arm: usual care | Identifier: NCT02330926 Primary outcome: change in body weight |
MIRACLE Principal Investigator: Lee K.Y. | RCT, phase II, open-label | Inclusion criteria: GI and LC; first- or second-line chemotherapy; patients classified as normal, pre-cachexia, or cachexia | Interventional arm: Weekly physical exercise by physiatrist (60 min per visit) | Interventional arm: Ibuprofen, omega-3-fatty-acid, ONS, Bojungikki-tang, nutritional counselling, psychiatric intervention Control arm: conventional palliative care | Identifier: NCT04907864 Primary outcome: change in body mass and handgrip strength |
NEXTAC-III Principal investigator: Naito T. | RCT, phase II, open-label | Inclusion criteria: ≥70 years old, local advanced or metastatic NSCLC or pancreatic cancer, cancer cachexia with an indication of anamorelin hydrochloride, new systemic chemotherapy (first-line in NSCLC and second-line in pancreatic cancer) | Interventional arm: home-based resistance training for 12 weeks | Interventional arm: Anamorelin hydrochloride, nutritional counselling | Identifier: JPRN-jRCTs041210053 Primary outcome: proportion of patients with a clinically meaningful reduction in 6 min walking distance |
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Bordignon, C.; dos Santos, B.S.; Rosa, D.D. Impact of Cancer Cachexia on Cardiac and Skeletal Muscle: Role of Exercise Training. Cancers 2022, 14, 342. https://doi.org/10.3390/cancers14020342
Bordignon C, dos Santos BS, Rosa DD. Impact of Cancer Cachexia on Cardiac and Skeletal Muscle: Role of Exercise Training. Cancers. 2022; 14(2):342. https://doi.org/10.3390/cancers14020342
Chicago/Turabian StyleBordignon, Cláudia, Bethânia S. dos Santos, and Daniela D. Rosa. 2022. "Impact of Cancer Cachexia on Cardiac and Skeletal Muscle: Role of Exercise Training" Cancers 14, no. 2: 342. https://doi.org/10.3390/cancers14020342