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Pioglitazone Represents an Effective Therapeutic Target in Preventing Oxidative/Inflammatory Cochlear Damage Induced
Fabiola Paciello1,2,3, Anna Rita Fetoni1,2,3, Rolando Rolesi1
1Fondazione Policlinico Universitario A. Gemelli, IRCCS, Rome, Italy.
Abstract:
Recent progress in hearing loss research has provided strong evidence for the imbalance of cellular redox status and inflammation as common predominant mechanisms of damage affecting the organ of Corti including noise induced hearing loss. The discovery of a protective molecule acting on both mechanisms is challenging. The thiazolidinediones, a class of antidiabetic drugs including pioglitazone and rosiglitazone, have demonstrated diverse pleiotrophic effects in many tissues where they exhibit anti-inflammatory, anti-proliferative, tissue protective effects and regulators of redox balance acting as agonist of peroxisome proliferator-activated receptors (PPARs). They are members of the family of ligand regulated nuclear hormone receptors that are also expressed in several cochlear cell types, including the outer hair cells. In this study, we investigated the protective capacity of pioglitazone in a model of noise-induced hearing loss in Wistar rats and the molecular mechanisms underlying this protective effects. Specifically, we employed a formulation of pioglitazone in a biocompatible thermogel providing rapid, uniform and sustained inner ear drug delivery via transtympanic injection. Following noise exposure (120 dB, 10 kHz, 1 h), different time schedules of treatment were employed: we explored the efficacy of pioglitazone given immediately (1 h) or at delayed time points (24 and 48 h) after noise exposure and the time course and extent of hearing recovery were assessed. We found that pioglitazone was able to protect auditory function at the mid-high frequencies and to limit cell death in the cochlear basal/middle turn, damaged by noise exposure. Immunofluorescence and western blot analysis provided evidence that pioglitazone mediates both anti-inflammatory and anti-oxidant effects by decreasing NF-κB and IL-1β expression in the cochlea and opposing the oxidative damage induced by noise insult. These results suggest that intratympanic pioglitazone can be considered a valid therapeutic strategy for attenuating noise-induced hearing loss and cochlear damage, reducing inflammatory signaling and restoring cochlear redox balance.
Insights
Pioglitazone protects against noise-induced hearing loss by reducing inflammation and oxidative stress in the cochlea. This drug, delivered via inner ear injection, shows promise for treating hearing damage.
Area of Science:
- Oto-neurology
- Pharmacology
- Cellular Biology
Background:
- Noise-induced hearing loss (NIHL) involves redox imbalance and inflammation in the organ of Corti.
- Thiazolidinediones, like pioglitazone, are known for anti-inflammatory and redox-balancing properties via PPAR activation.
- These receptors are present in cochlear cells, suggesting a potential therapeutic role.
Purpose of the Study:
- To investigate pioglitazone's protective effects against NIHL in Wistar rats.
- To elucidate the underlying anti-inflammatory and antioxidant molecular mechanisms.
- To assess the efficacy of a novel sustained-release inner ear drug delivery system.
Main Methods:
- Wistar rats were subjected to noise exposure (120 dB, 10 kHz, 1 h).
- Pioglitazone was administered intratympanically via a thermogel formulation at various time points post-exposure.
- Auditory function, cell death, NF-κB, IL-1β expression, and oxidative damage markers were assessed.
Main Results:
- Pioglitazone treatment preserved auditory function at mid-high frequencies.
- It significantly reduced cell death in the basal/middle turns of the cochlea.
- Molecular analysis confirmed decreased NF-κB and IL-1β, indicating reduced inflammation and oxidative stress.
Conclusions:
- Intratympanic pioglitazone demonstrates significant protective effects against NIHL.
- The drug acts by mitigating cochlear inflammation and restoring redox balance.
- This presents a potential therapeutic strategy for managing noise-induced hearing damage.
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