• Title/Summary/Keyword: 약용식물

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Germinated Rhynchosia nulubilis Hydrolysate Ameliorates Dexamethasone-induced Muscle Atrophy by Downregulating MAFbx Expression in C2C12 Cells and C57BL/6 Mice (발아 서목태 가수분해물의 근위축 억제 효과)

  • Won Keong Lee;Eun Ji Kim;Sang Gon Kim;Young Min Goo;Young Sook Kil;Seung Mi Sin;Min Ju Ahn;Min Cheol Kang;Young-Sool Hah
    • Journal of Life Science
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    • v.33 no.3
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    • pp.277-286
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    • 2023
  • Sarcopenia is the age-related loss of muscle mass and function. It is a natural part of aging and can lead to decreased mobility and increased frailty. The ubiquitin-proteasome pathway, which is involved in muscle protein degradation, is closely linked to sarcopenia. Germinated Rhynchosia nulubilis hydrolysate (GRH) has been reported to have anti-inflammatory and antioxidant properties, but there have been no reports on its inhibitory effect on muscle reduction. However, no study has yet explored the relationship between GRH and muscle loss inhibition. In this study, we evaluated the effects of GRH on muscle atrophy inhibitory activity in dexamethasone (Dexa)-induced muscle atrophy C2C12 myotubes and mouse models. Moreover, we identified a molecular pathway underlying the effects of GRH on skeletal muscle. May Grunwald-Giemsa staining showed that the length and area of myotubes increased in the groups treated with GRH. In addition, the GRH-treated group significantly reduced the expression of muscle ring finger protein 1 and muscular atrophy F-box (MAFbx) in the Dexa-induced muscular atrophy C2C12 model. GRH also improved muscle strength in C57BL/6 mice with Dexa-induced muscle atrophy, resulting in prolonged running exhaustive time and increased grip strength. We found that muscle strengthening by GRH was correlated with a decreased expression of the MAFbx gene in mouse muscle tissue. In conclusion, GRH can attenuate Dexa-induced muscle atrophy by inhibiting the ubiquitin-proteasome pathway via downregulation of the MAFbx gene expression.

Isoalantolactone Inhibits the Formation of Multicellular Tumor Spheroids Derived From Human Hepatocellular Carcinoma Hep3B Cells Through the Induction of ROS-dependent Apoptosis (ROS 의존적 세포사멸 유도를 통한 isoalantolactone의 인간 간세포암종 Hep3B 세포 유래 다세포 종양 spheroid 형성의 억제)

  • Min Yeong Kim;Byunwoo Son;Sang-Hyup Lee;Sang Eun Park;Su Hyun Hong;Sang Hoon Hong;Eunjeong Kim;Yung Hyun Choi;Hyun Hwangbo
    • Journal of Life Science
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    • v.34 no.7
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    • pp.476-484
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    • 2024
  • Although two-dimensional (2D) monolayer cell culture models are still widely used as the optimal models for anticancer activity research, three-dimensional (3D) multicellular tumor spheroid (3D MTS) models that can better approximate the tumor environment can offer an alternative to bridge the gap between in vitro and animal model studies. Isoalantolactone is among the sesquiterpene lactones found in medicinal plants, including the roots of Elecampane (Inula helenium L.), and is known to have various pharmacological activities, including anticancer activity. In this study, we investigated whether the anticancer activity of isoalantolactone observed in 2D models could be reproduced in a 3D MTS model derived from human hepatocellular carcinoma (HCC) Hep3B cells. According to our results, isoalantolactone inhibited the formation of MTSs in a manner dependent on the treatment concentration, which was accompanied by an increase in reactive oxygen species (ROS) generation. In particular, as isoalantolactone treatment and the culture time increased, the area of proliferating cells was replaced by cells in which apoptosis was induced. Additionally, in MTSs, isoalantolactone increased the expression of death-receptor-related proteins and the activity of caspase-3, and it decreased the expression of the Bax/Bcl-2 expression ratio and total poly(ADP-ribose) polymerase. However, when the production of ROS was artificially blocked, all these changes caused by isoalantolactone were attenuated and the cell survival rate of MTS cells was restored. Therefore, the results of this study suggest that the induction of apoptosis in Hep3B cell-derived MTSs by isoalantolactone is achieved through the activation of extrinsic and intrinsic pathways and is ROS-dependent.