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A Doxorubicin-Induced Murine Model of Dilated Cardiomyopathy In Vivo
Published on: May 16, 2020
Doxorubicin Induces Inflammatory Modulation and Metabolic Dysregulation in Diabetic Skeletal Muscle
Rashmi Supriya1, Bjorn T Tam1, Xiao M Pei1
1Department of Health Technology and Informatics, Faculty of Health and Social Sciences, The Hong Kong Polytechnic University Hong Kong, China.
Abstract:
Anti-cancer agent doxorubicin (DOX) has been demonstrated to worsen insulin signaling, engender muscle atrophy, trigger pro-inflammation, and induce a shift to anaerobic glycolytic metabolism in skeletal muscle. The myotoxicity of DOX in diabetic skeletal muscle remains largely unclear. This study examined the effects of DOX on insulin signaling, muscle atrophy, pro-/anti-inflammatory microenvironment, and glycolysis metabolic regulation in skeletal muscle of db/db diabetic and db/+ non-diabetic mice. Non-diabetic db/+ mice and diabetic db/db mice were randomly assigned to the following groups: db/+CON, db/+DOX, db/dbCON, and db/dbDOX. Mice in db/+DOX and db/dbDOX groups were intraperitoneally injected with DOX at a dose of 15 mg per kg body weight whereas mice in db/+CON and db/dbCON groups were injected with the same volume of saline instead of DOX. Gastrocnemius was immediately harvested, weighed, washed with cold phosphate buffered saline, frozen in liquid nitrogen, and stored at -80°C for later analysis. The effects of DOX on diabetic muscle were neither seen in insulin signaling markers (Glut4, pIRS1Ser(636∕639), and pAktSer(473)) nor muscle atrophy markers (muscle mass, MuRF1 and MAFbx). However, DOX exposure resulted in enhancement of pro-inflammatory favoring microenvironment (as indicated by TNF-α, HIFα and pNFκBp65) accompanied by diminution of anti-inflammatory favoring microenvironment (as indicated by IL15, PGC1α and pAMPKβ1Ser108). Metabolism of diabetic muscle was shifted to anaerobic glycolysis after DOX exposure as demonstrated by our analyses of PDK4, LDH and pACCSer(79). Our results demonstrated that there might be a link between inflammatory modulation and the dysregulation of aerobic glycolytic metabolism in DOX-injured diabetic skeletal muscle. These findings help to understand the pathogenesis of DOX-induced myotoxicity in diabetic muscle.
Insights
Doxorubicin (DOX) worsens inflammation and shifts metabolism in diabetic muscle, but does not affect insulin signaling or muscle atrophy. This suggests a link between inflammation and metabolic changes in DOX-induced myotoxicity.
Area of Science:
- Biochemistry
- Molecular Biology
- Physiology
Background:
- Doxorubicin (DOX) is an anti-cancer drug with known side effects including myotoxicity.
- DOX can negatively impact insulin signaling, cause muscle atrophy, and promote inflammation.
- The specific effects of DOX on diabetic skeletal muscle are not well understood.
Purpose of the Study:
- To investigate the impact of DOX on insulin signaling, muscle atrophy, inflammation, and metabolism in diabetic skeletal muscle.
- To compare DOX effects in diabetic (db/db) and non-diabetic (db/+) mice.
- To elucidate the mechanisms underlying DOX-induced myotoxicity in a diabetic context.
Main Methods:
- Utilized db/db diabetic and db/+ non-diabetic mouse models.
- Administered DOX intraperitoneally (15 mg/kg) or saline as a control.
- Analyzed gastrocnemius muscle for markers of insulin signaling, muscle atrophy, inflammation, and glycolysis.
- Assessed protein expression and phosphorylation for key signaling molecules.
Main Results:
- DOX did not significantly alter insulin signaling markers (Glut4, pIRS1, pAkt) or muscle atrophy markers (muscle mass, MuRF1, MAFbx) in diabetic muscle.
- DOX exposure increased pro-inflammatory markers (TNF-α, HIFα, pNFκBp65) and decreased anti-inflammatory markers (IL15, PGC1α, pAMPKβ1).
- DOX induced a metabolic shift towards anaerobic glycolysis in diabetic muscle, evidenced by changes in PDK4, LDH, and pACC.
Conclusions:
- DOX-induced myotoxicity in diabetic skeletal muscle is characterized by enhanced inflammation and a shift to anaerobic glycolysis.
- These metabolic and inflammatory changes may be linked in the pathogenesis of DOX myotoxicity in diabetic individuals.
- Findings contribute to understanding DOX-induced muscle damage in diabetic patients.

