Morroniside Inhibits H2O2-Induced Podocyte Apoptosis by Down-Regulating NOX4 Expression Controlled by Autophagy In

Xue Gao1,2, Yi Liu2,3, Lin Wang4

  • 1Beijing University of Chinese Medicine, Beijing, China.

Frontiers in Pharmacology
|October 19, 2020
PubMed

Insights

Morroniside protects against oxidative stress-induced podocyte apoptosis by restoring autophagy and inhibiting NOX4 overexpression. This study reveals autophagy

Area of Science:

  • Nephrology
  • Cell Biology
  • Pharmacology

Background:

  • Podocyte apoptosis drives kidney disease progression.
  • NOX4 (NADPH oxidase 4) overexpression and oxidative stress contribute to podocyte apoptosis.
  • Autophagy's role in apoptosis is complex and context-dependent.

Purpose of the Study:

  • Investigate autophagy's effect on oxidative stress-induced podocyte apoptosis and NOX4 overexpression.
  • Elucidate morroniside's protective mechanism in podocytes.

Main Methods:

  • Utilized H2O2 to induce oxidative stress in cultured podocytes.
  • Assessed apoptosis rates, NOX4 expression, and autophagy markers (LC3-II, p62, mTOR).
  • Examined effects of autophagy modulator rapamycin, inhibitor chloroquine, and morroniside.

Main Results:

  • H2O2 increased podocyte apoptosis and NOX4 expression, while impairing autophagy (decreased LC3-II, increased p62/mTOR).
  • Morroniside and rapamycin attenuated H2O2-induced apoptosis and NOX4 overexpression by improving autophagy.
  • Chloroquine exacerbated H2O2 effects and reversed morroniside's benefits, indicating autophagy's critical role.

Conclusions:

  • Autophagy activity regulates NOX4 expression in podocytes.
  • Morroniside protects against oxidative stress by restoring autophagy flux and inhibiting NOX4, offering a potential therapeutic strategy for kidney diseases.

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