Muscle FOXO-specific overexpression and endurance exercise protects skeletal muscle and heart from defects caused by a high-fat diet in young Drosophila
Wen, D. t.; Chen, Y.-l.; Hou, W.-q.
Show abstract
Obesity appears to significantly reduce physical activity, but it remains unclear whether this is related to obesity-induced damage to skeletal muscle(SM) and heart muscle(HM). Endurance exercise(EE) reduces obesity-induced defects in SM and HM, but its molecular mechanism is poorly understood. The results showed that the structure and function of SM and HM were impaired by a high-fat diet(HFD) and muscle-FOXO-specific RNAi(MFSR), including reduced climbing speed and climbing endurance, reduced fractional shortening of the heart, damaged myofibrils, and reduced mitochondria in HM. Besides, a HFD and MFSR increased triglyceride level and MDA level, decreased the Sirt1 and FOXO protein level, and reduced CPT1, SOD, and CAT activity level, and they dow-regulated FOXO and bmm expression level in SM and HM. On the contrary, both muscle FOXO-specific overexpression(MFSO) and EE prevented abnormal changes of SM and HM in function, structure, or physiology caused by HFD and MFSR. Besides, EE also prevented defects of SM and HM induced by MFSR. Therefore, Current findings confirmed that MFSO and EE protected SM and heart from defects caused by a HFD via enhancing FOXO-realated antioxidant pathways and lipid catabolism. FOXO played a vital role in regulating HFD-induced defects in SM and HM, but FOXO was not a key regulatory gene of EE against damages in SM and HM. The mechanism was related to activity of Sirt1/FOXO/ SOD, CAT pathways and lipid catabolism in SM and HM.
Matching journals
The top 8 journals account for 50% of the predicted probability mass.
Similar papers in this journal
- The Gene Knockout of Angiotensin II Type 1a Receptor Improves High-fat Diet-Induced Obesity in rat via Promoting Adipose Lipolysis 95%
- Metabolic differences and differentially expressed genes between C57BL/6J and C57BL/6N mice substrains 95%
- Distribution of myogenic stem cell activator, hepatocyte growth factor, in skeletal muscle extracellular matrix and effect of short-term disuse and reloading 95%
Similar papers in this journal
- lncRNA DLEU2 acts as a miR-181a sponge regulated SEPP1 (may as a biomarker for sarcopenia) to inhibit skeletal muscle differentiation and regeneration 95%
- Metformin improves cognition of aged mice by promoting cerebral angiogenesis and neurogenesis 93%
- Physiological and Metabolic Features of Mice with CRISPR/Cas9-Mediated Loss-of-Function in Growth Hormone-Releasing Hormone 92%
Similar papers in this journal
- The protective roles of Eugenol on type 1 diabetes mellitus through NRF2 mediated oxidative stress pathway 95%
- A MSTNDel273C mutation with FGF5 knockout sheep by CRISPR/Cas9 promotes skeletal muscle myofiber hyperplasia 94%
- Eugenol mimics exercise to promote skeletal muscle fiber remodeling and myokine IL-15 expression by activating TRPV1 channel 94%
Similar papers in this journal
- Development of a Novel Japanese Eel Myoblast Cell Line for Application in Cultured Meat Production 93%
- Element accumulation in the tracheal and bronchial cartilages of monkeys 93%
- Anti-nucleolin aptamer, iSN04, inhibits the inflammatory responses in myoblasts by modulating the β-catenin/NF-κB signaling pathway 92%
Similar papers in this journal
- Enhanced expression of Dystrophin, IGF-1, CD44 and MYH3 in plasma and skeletal muscles including Diaphragm of mdx mice after oral administration of Neu REFIX Beta 1,3-1,6 glucan 94%
- Effects of different environmental intervention durations on the intestinal mucosal barrier and the brain-gut axis in rats with colorectal cancer 93%
- The combination of lipopolysaccharide and D-galactosamine administration show positive genotoxic effect in mice liver 93%
"Similar papers" are the closest papers from that journal in the model's embedding space. They show what the match is built on, but the ranking comes mostly from a classifier over the whole training set, not from these examples alone.