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Updated: Mar 22, 2026

Renal Ischaemia Reperfusion Injury: A Mouse Model of Injury and Regeneration
Published on: June 7, 2014
σ1-Receptor Agonism Protects against Renal Ischemia-Reperfusion Injury
Adam Hosszu1,2, Zsuzsanna Antal2, Lilla Lenart1
1MTA-SE Lendulet Diabetes Research Group and.
Abstract:
Mechanisms of renal ischemia-reperfusion injury remain unresolved, and effective therapies are lacking. We previously showed that dehydroepiandrosterone protects against renal ischemia-reperfusion injury in male rats. Here, we investigated the potential role of σ1-receptor activation in mediating this protection. In rats, pretreatment with either dehydroepiandrosterone or fluvoxamine, a high-affinity σ1-receptor agonist, improved survival, renal function and structure, and the inflammatory response after sublethal renal ischemia-reperfusion injury. In human proximal tubular epithelial cells, stimulation by fluvoxamine or oxidative stress caused the σ1-receptor to translocate from the endoplasmic reticulum to the cytosol and nucleus. Fluvoxamine stimulation in these cells also activated nitric oxide production that was blocked by σ1-receptor knockdown or Akt inhibition. Similarly, in the postischemic rat kidney, σ1-receptor activation by fluvoxamine triggered the Akt-nitric oxide synthase signaling pathway, resulting in time- and isoform-specific endothelial and neuronal nitric oxide synthase activation and nitric oxide production. Concurrently, intravital two-photon imaging revealed prompt peritubular vasodilation after fluvoxamine treatment, which was blocked by the σ1-receptor antagonist or various nitric oxide synthase blockers. In conclusion, in this rat model of ischemia-reperfusion injury, σ1-receptor agonists improved postischemic survival and renal function via activation of Akt-mediated nitric oxide signaling in the kidney. Thus, σ1-receptor activation might provide a therapeutic option for renoprotective therapy.
Insights
Sigma-1 receptor (σ1R) activation protects kidneys from ischemia-reperfusion injury by enhancing nitric oxide signaling. This suggests σ1R agonists may offer a renoprotective therapy option.
Area of Science:
- Nephrology
- Pharmacology
- Cell Biology
Background:
- Renal ischemia-reperfusion injury (IRI) mechanisms are unclear, and treatments are limited.
- Dehydroepiandrosterone (DHEA) previously showed renoprotective effects in male rats.
- The role of sigma-1 receptor (σ1R) activation in DHEA's protective effects requires investigation.
Purpose of the Study:
- To investigate if σ1R activation mediates the renoprotective effects of DHEA.
- To explore the signaling pathways involved in σ1R-mediated protection against renal IRI.
Main Methods:
- Rats were pretreated with DHEA or fluvoxamine (a σ1R agonist) before inducing renal IRI.
- Human proximal tubular epithelial cells were used to study σ1R translocation and nitric oxide (NO) production.
- Intravital two-photon imaging assessed peritubular vasodilation in post-ischemic rat kidneys.
Main Results:
- DHEA and fluvoxamine improved survival, renal function, and structure in rats post-IRI.
- Fluvoxamine induced σ1R translocation and NO production in human kidney cells, dependent on Akt signaling.
- In rats, fluvoxamine activated the Akt-nitric oxide synthase (NOS) pathway, increasing NO and causing vasodilation, which was blocked by σ1R antagonists or NOS inhibitors.
Conclusions:
- σ1R activation, via agonists like fluvoxamine, protects against renal IRI in rats.
- The protective mechanism involves Akt-mediated activation of NOS signaling, leading to increased NO production and vasodilation.
- σ1R agonists represent a potential therapeutic strategy for renoprotection in renal IRI.
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