Ginsenoside Rb1 Relieves Cellular Senescence and Pulmonary Fibrosis by Promoting NRF2/QKI/SMAD7 Axis

Qing Zheng1, Feng-Ping Lei1, Shan Hui1

  • 1Department of Geriatrics, Hunan Provincial People's Hospital, (The First Affiliated Hospital of Hunan Normal University), Changsha 410005, Hunan Province, P. R. China.

Insights

Ginsenoside Rb1 inhibits pulmonary fibrosis by activating the NRF2/QKI/SMAD7 pathway, reducing cellular senescence and fibrosis. This offers a potential therapeutic strategy for treating pulmonary fibrosis.

Area of Science:

  • Pulmonary Medicine
  • Cell Biology
  • Pharmacology

Background:

  • Cellular senescence is a key factor in the progression of pulmonary fibrosis (PF).
  • Ginsenoside Rb1 demonstrates inhibitory effects on both cellular senescence and PF.
  • Understanding the molecular mechanisms of Ginsenoside Rb1 in PF is crucial for therapeutic development.

Purpose of the Study:

  • To elucidate the molecular mechanisms underlying Ginsenoside Rb1's regulation of cellular senescence and pulmonary fibrosis.
  • To investigate the role of the NRF2/QKI/SMAD7 axis in Ginsenoside Rb1's therapeutic effects on PF.

Main Methods:

  • Established a pulmonary fibrosis mouse model using Bleomycin (BLM) and a cellular senescence model using Adriamycin RD (ARD) in MRC-5 cells.
  • Utilized Hematoxylin and Eosin (HE) staining, Masson staining, RT-qPCR, western blotting, and ELISA to assess fibrosis and gene/protein expression.
  • SA-β-gal staining was employed to quantify cellular senescence.

Main Results:

  • Ginsenoside Rb1 significantly suppressed BLM-induced PF in mice and ARD-induced senescence and fibrosis in MRC-5 cells.
  • ARD-induced senescence reduced NRF2, QKI, and SMAD7 expression; NRF2 overexpression alleviated these effects.
  • Ginsenoside Rb1 activated the NRF2/QKI/SMAD7 axis, with NRF2 enhancing SMAD7 mRNA stability via QKI.

Conclusions:

  • Ginsenoside Rb1 mitigates cellular senescence and fibrosis in PF by activating the NRF2/QKI/SMAD7 signaling pathway.
  • This study identifies a potential therapeutic strategy for PF treatment and elucidates its underlying molecular mechanism.

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