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Published on: May 12, 2023
An interplay between UCP2 and ROS protects cells from high-salt-induced injury through autophagy stimulation
Maurizio Forte1, Franca Bianchi2, Maria Cotugno2
1IRCCS Neuromed, Pozzilli, Isernia, Italy. maurizio.forte@neuromed.it.
Abstract:
The mitochondrial uncoupling protein 2 (UCP2) plays a protective function in the vascular disease of both animal models and humans. UCP2 downregulation upon high-salt feeding favors vascular dysfunction in knock-out mice, and accelerates cerebrovascular and renal damage in the stroke-prone spontaneously hypertensive rat. Overexpression of UCP2 counteracts the negative effects of high-salt feeding in both animal models. We tested in vitro the ability of UCP2 to stimulate autophagy and mitophagy as a mechanism mediating its protective effects upon high-salt exposure in endothelial and renal tubular cells. UCP2 silencing reduced autophagy and mitophagy, whereas the opposite was true upon UCP2 overexpression. High-salt exposure increased level of reactive oxygen species (ROS), UCP2, autophagy and autophagic flux in both endothelial and renal tubular cells. In contrast, high-salt was unable to induce autophagy and autophagic flux in UCP2-silenced cells, concomitantly with excessive ROS accumulation. The addition of an autophagy inducer, Tat-Beclin 1, rescued the viability of UCP2-silenced cells even when exposed to high-salt. In summary, UCP2 mediated the interaction between high-salt-induced oxidative stress and autophagy to preserve viability of both endothelial and renal tubular cells. In the presence of excessive ROS accumulation (achieved upon UCP2 silencing and high-salt exposure of silenced cells) autophagy was turned off. In this condition, an exogenous autophagy inducer rescued the cellular damage induced by excess ROS level. Our data confirm the protective role of UCP2 toward high-salt-induced vascular and renal injury, and they underscore the role of autophagy/mitophagy as a mechanism counteracting the high-salt-induced oxidative stress damage.
Insights
Mitochondrial uncoupling protein 2 (UCP2) protects against high-salt damage by stimulating autophagy and mitophagy, preventing cell death and preserving vascular and renal health.
Area of Science:
- Cellular Biology
- Physiology
- Mitochondrial Function
Background:
- Mitochondrial uncoupling protein 2 (UCP2) is recognized for its protective role in vascular disease.
- UCP2 downregulation exacerbates vascular dysfunction and organ damage, particularly under high-salt conditions.
- Previous studies suggest UCP2's involvement in mitigating negative effects of high-salt diets.
Purpose of the Study:
- To investigate the role of UCP2 in stimulating autophagy and mitophagy.
- To elucidate the mechanism by which UCP2 exerts protective effects against high-salt exposure.
- To examine the interplay between UCP2, oxidative stress, and autophagy in endothelial and renal cells.
Main Methods:
- In vitro studies using endothelial and renal tubular cells.
- UCP2 gene silencing and overexpression experiments.
- Assessment of autophagy and mitophagy markers, reactive oxygen species (ROS) levels, and cell viability.
- Treatment with high-salt and an autophagy inducer (Tat-Beclin 1).
Main Results:
- UCP2 overexpression enhanced autophagy and mitophagy, while silencing UCP2 reduced these processes.
- High-salt increased ROS, UCP2, autophagy, and autophagic flux in cells.
- UCP2-silenced cells exposed to high-salt showed impaired autophagy and excessive ROS accumulation.
- An exogenous autophagy inducer rescued the viability of UCP2-silenced cells under high-salt conditions.
Conclusions:
- UCP2 plays a critical role in mediating the cellular response to high-salt-induced oxidative stress through autophagy and mitophagy.
- Autophagy is inhibited by excessive ROS accumulation, highlighting a critical threshold for cellular protection.
- UCP2's protective function against high-salt-induced vascular and renal injury is significantly linked to its ability to maintain autophagic flux and counteract oxidative damage.
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