Anti-muscle atrophy effect of fermented Tenebrio molitor larvae extract by modulating the PI3K-Akt-mTOR/FoxO3α pathway in mice treated with dexamethasone.
Biomed Pharmacother
; 178: 117266, 2024 Sep.
Article
em En
| MEDLINE
| ID: mdl-39137649
ABSTRACT
This study investigated the anti-sarcopenic effect of fermented Tenebrio molitor larvae (mealworms) extract (FME) in both dexamethasone (DEX)-treated C2C12 cells and mice. FME (100⯵g/mL) increased the diameter of myotubes and inhibited the gene and protein expression of atrogin-1 compared to DEX- or non-fermented mealworms extract (ME)-treated C2C12 cells. Male C57BL/6N mice were divided into five groups Normal Control (NC), DEX (10â¯mg/kg, intraperitoneal), and three groups of DEX+FME (100, 200, or 500â¯mg FME/kg/day, oral) for two weeks. FME at doses of 200 and 500â¯mg/kg effectively improved grip strength when compared to the DEX group. Histological analysis of the quadriceps muscle showed a larger muscle fiber size in the DEX+FME groups compared to DEX group. FME (200 and 500â¯mg/kg) significantly increased cross-sectional area of the muscle fiber compared to DEX group. FME (500â¯mg/kg) significantly decreased the ubiquitin, atrogin-1 and MuRF-1 protein levels, and increased levels of MHC and MyoG in DEX-treated mice. The puromycin labeling assay revealed that FME increased protein synthesis in DEX-induced muscle atrophy. The FME treatment demonstrated significant upregulation in phosphorylation levels, including mTOR, FoxO3α, Akt, and PI3K compared to DEX group. In conclusion, FME inhibited the increase in proteins associated with muscle atrophy, including, atrogin-1 and MuRF-1, by regulating the PI3K-Akt-FoxO3α pathway. FME improved the PI3K-Akt-mTOR signaling pathway, which was reduced by DEX. This study suggests that FME has the potential for use in sarcopenia therapy, possibly serving as a natural agent that counteracts the negative effects of DEX on muscle tissue.
Palavras-chave
Texto completo:
1
Coleções:
01-internacional
Base de dados:
MEDLINE
Assunto principal:
Tenebrio
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Dexametasona
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Atrofia Muscular
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Transdução de Sinais
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Proteína Forkhead Box O3
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Larva
Limite:
Animals
Idioma:
En
Revista:
Biomed Pharmacother
Ano de publicação:
2024
Tipo de documento:
Article