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Morroniside Inhibits H2O2-Induced Podocyte Apoptosis by Down-Regulating NOX4 Expression Controlled by Autophagy In
Abstract:
Podocyte apoptosis is the common pathological basis for the progression of various kidney diseases. The overexpression of NOX4, a key enzyme involved in oxidative stress, has been proved to participate in the occurrence of podocyte apoptosis. Autophagy is a kind of adaptive response of cells under stress. However, as a "double-edged sword", the effect of autophagy on apoptosis in different cells and conditions is complex and variable, which has not been fully explained yet. Morroniside, extracted from the traditional medicinal plant Cornus officinalis, has remarkable antioxidant and anti-apoptosis effects, and has been proven to inhibit the overexpression of NOX4 in kidney tissue. Therefore, H2O2 was used in this study to explore the effects of autophagy on podocyte NOX4 overexpression and apoptosis induced by oxidative stress, as well as the protection mechanism of morroniside in podocytes. The results showed that the autophagy activator rapamycin, as well as the autophagy inhibitor chloroquine, could induce podocyte apoptosis cultured in normal condition, and chloroquine could also significantly increase the NOX4 expression. The NOX4 expression and apoptosis rate of podocytes increased after H2O2 treatment, the expression of LC3-II decreased, and the expressions of p62, mTOR, and p-mTOR increased. The intervention of morroniside and rapamycin improved autophagy activity and inhibited NOX4 overexpression and apoptosis induced by H2O2. And chloroquine reversed the inhibitory effect of morroniside on NOX4 overexpression and podocyte apoptosis. Taken together, our results suggest that the expression level of NOX4 in podocytes is regulated by autophagy activity. Morroniside can reduce oxidative stress induced podocyte apoptosis by restoring the damaged autophagy flux and inhibit the overexpression of NOX4.
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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