[Ginsenoside F1 inhibits cholesterol overload in oxidative-damaged cells through SREBP2/HMGCR pathway]

Di Liu1, Zhe Zhang1, Tong Peng1

  • 1Academy of Basic Medicine, Jilin Medical University, Jilin 132013, China.

Abstract

Insights

Ginsenoside F1 protects HepG2 cells from oxidative stress by scavenging oxygen free radicals and preserving mitochondrial function. It also regulates cholesterol metabolism by inhibiting the SREBP2/HMGCR pathway.

Area of Science:

  • Biochemistry
  • Cell Biology
  • Pharmacology

Context:

  • Oxidative stress and cholesterol metabolism disorders are implicated in various liver diseases.
  • Hydrogen peroxide is a common inducer of cellular oxidative damage.
  • HepG2 cells are a widely used model for studying liver function and disease.

Purpose:

  • To investigate the protective mechanisms of ginsenoside F1 against hydrogen peroxide-induced oxidative stress and cholesterol disorder in HepG2 cells.
  • To evaluate the effect of ginsenoside F1 on free radical scavenging, mitochondrial membrane potential, and key proteins in cholesterol synthesis.

Summary:

  • Ginsenoside F1 demonstrated significant oxygen radical absorbance capacity (ORAC), comparable to Trolox.
  • Pretreatment with ginsenoside F1 protected HepG2 cells from hydrogen peroxide-induced damage, evidenced by increased mitochondrial membrane potential and reduced SREBP2 expression.
  • Ginsenoside F1 also lowered cholesterol levels and HMGCR protein expression in a dose-dependent manner, suggesting intervention in cholesterol synthesis.

Impact:

  • Ginsenoside F1 exhibits potential therapeutic benefits for conditions involving oxidative stress and dyslipidemia.
  • The study elucidates a novel mechanism for ginsenoside F1 involving the SREBP2/HMGCR pathway in regulating cellular cholesterol anabolism.
  • Findings contribute to understanding the role of natural compounds in managing metabolic disorders.

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