Key result
Doxorubicin significantly reduced skeletal muscle weight by 14% (95% CI 9.9-19.3) and muscle fibre cross-sectional area by 17% (95% CI 9.0-26.0) compared to vehicle controls in preclinical models.
Why the study?
Loss of skeletal muscle mass commonly occurs in cancer patients, prompting this study to quantify doxorubicin's effect on skeletal muscle and report proposed underlying molecular pathways.
Does doxorubicin induce skeletal muscle atrophy in preclinical models?
Meta-Analysis (n=20)
Does doxorubicin induce skeletal muscle atrophy in preclinical models?
Effect estimate: 14% reduction (95% CI 9.9-19.3)
Doxorubicin induces significant skeletal muscle atrophy in preclinical models, likely driven by mitochondrial dysfunction, ROS production, and activation of proteolytic systems.
Doxorubicin may increase muscle atrophy risk in treated patients; confirms consistent preclinical effects and supports translational research.
AIM: Loss of skeletal muscle mass is a common clinical finding in cancer patients. The purpose of this meta-analysis and systematic review was to quantify the effect of doxorubicin on skeletal muscle and report on the proposed molecular pathways possibly leading to doxorubicin-induced muscle atrophy in both human and animal models. METHODS: A systematic search of the literature was conducted in PubMed, EMBASE, Web of Science and CENTRAL databases. The internal validity of included studies was assessed using SYRCLE's risk of bias tool. RESULTS: Twenty eligible articles were identified. No human studies were identified as being eligible for inclusion. Doxorubicin significantly reduced skeletal muscle weight (ie EDL, TA, gastrocnemius and soleus) by 14% (95% CI: 9.9; 19.3) and muscle fibre cross-sectional area by 17% (95% CI: 9.0; 26.0) when compared to vehicle controls. Parallel to negative changes in muscle mass, muscle strength was even more decreased in response to doxorubicin administration. This review suggests that mitochondrial dysfunction plays a central role in doxorubicin-induced skeletal muscle atrophy. The increased production of ROS plays a key role within this process. Furthermore, doxorubicin activated all major proteolytic systems (ie calpains, the ubiquitin-proteasome pathway and autophagy) in the skeletal muscle. Although each of these proteolytic pathways contributes to doxorubicin-induced muscle atrophy, the activation of the ubiquitin-proteasome pathway is hypothesized to play a key role. Finally, a limited number of studies found that doxorubicin decreases protein synthesis by a disruption in the insulin signalling pathway. CONCLUSION: The results of the meta-analysis show that doxorubicin induces skeletal muscle atrophy in preclinical models. This effect may be explained by various interacting molecular pathways. Results from preclinical studies provide a robust setting to investigate a possible dose-response, separate the effects of doxorubicin from tumour-induced atrophy and to examine underlying molecular pathways. More research is needed to confirm the proposed signalling pathways in humans, paving the way for potential therapeutic approaches.
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Hiensch et al. (2019) conducted a meta-analysis in Doxorubicin-induced skeletal muscle atrophy (n=20). Doxorubicin vs. Vehicle controls was evaluated on Skeletal muscle weight (14% reduction, 95% CI 9.9-19.3). Doxorubicin significantly reduced skeletal muscle weight by 14% (95% CI 9.9-19.3) and muscle fibre cross-sectional area by 17% (95% CI 9.0-26.0) compared to vehicle controls in preclinical models.
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