Inhibition of the NLRP3 inflammasome attenuates spiral ganglion neuron degeneration in aminoglycoside-induced hearing loss.

IF 5.9 2区 医学 Q2 CELL BIOLOGY
Neural Regeneration Research Pub Date : 2025-10-01 Epub Date: 2024-06-03 DOI:10.4103/NRR.NRR-D-23-01879
Jia Fang, Zhuangzhuang Li, Pengjun Wang, Xiaoxu Zhang, Song Mao, Yini Li, Dongzhen Yu, Xiaoyan Li, Yazhi Xing, Haibo Shi, Shankai Yin
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引用次数: 0

Abstract

JOURNAL/nrgr/04.03/01300535-202510000-00031/figure1/v/2024-11-26T163120Z/r/image-tiff Aminoglycosides are a widely used class of antibacterials renowned for their effectiveness and broad antimicrobial spectrum. However, their use leads to irreversible hearing damage by causing apoptosis of hair cells as their direct target. In addition, the hearing damage caused by aminoglycosides involves damage of spiral ganglion neurons upon exposure. To investigate the mechanisms underlying spiral ganglion neuron degeneration induced by aminoglycosides, we used a C57BL/6J mouse model treated with kanamycin. We found that the mice exhibited auditory deficits following the acute loss of outer hair cells. Spiral ganglion neurons displayed hallmarks of pyroptosis and exhibited progressive degeneration over time. Transcriptomic profiling of these neurons showed significant upregulation of genes associated with inflammation and immune response, particularly those related to the NLRP3 inflammasome. Activation of the canonical pyroptotic pathway in spiral ganglion neurons was observed, accompanied by infiltration of macrophages and the release of proinflammatory cytokines. Pharmacological intervention targeting NLRP3 using Mcc950 and genetic intervention using NLRP3 knockout ameliorated spiral ganglion neuron degeneration in the injury model. These findings suggest that NLRP3 inflammasome-mediated pyroptosis plays a role in aminoglycoside-induced spiral ganglion neuron degeneration. Inhibition of this pathway may offer a potential therapeutic strategy for treating sensorineural hearing loss by reducing spiral ganglion neuron degeneration.

抑制NLRP3炎性体可减轻氨基糖苷性听力损失的螺旋神经节神经元变性。
氨基糖苷类是一类广泛使用的抗菌药物,以其有效和广泛的抗菌谱而闻名。然而,它们的使用会导致作为直接靶点的毛细胞凋亡,从而导致不可逆的听力损伤。此外,氨基糖苷引起的听力损伤还包括接触后螺旋神经节神经元的损伤。为了研究氨基糖苷类诱导螺旋神经节神经元变性的机制,我们使用卡那霉素处理的C57BL/6J小鼠模型。我们发现小鼠在急性外毛细胞丢失后表现出听觉缺陷。螺旋神经节神经元表现出焦亡的特征,并随着时间的推移表现出进行性变性。这些神经元的转录组学分析显示,与炎症和免疫反应相关的基因显著上调,特别是与NLRP3炎症小体相关的基因。观察到螺旋神经节神经元典型焦亡通路的激活,伴随着巨噬细胞的浸润和促炎细胞因子的释放。使用Mcc950靶向NLRP3的药物干预和使用NLRP3基因敲除的基因干预改善了损伤模型中螺旋神经节神经元的变性。这些发现提示NLRP3炎症小体介导的焦亡在氨基糖苷诱导的螺旋神经节神经元变性中起作用。抑制该通路可能通过减少螺旋神经节神经元变性来治疗感音神经性听力损失。
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来源期刊
Neural Regeneration Research
Neural Regeneration Research CELL BIOLOGY-NEUROSCIENCES
CiteScore
8.00
自引率
9.80%
发文量
515
审稿时长
1.0 months
期刊介绍: Neural Regeneration Research (NRR) is the Open Access journal specializing in neural regeneration and indexed by SCI-E and PubMed. The journal is committed to publishing articles on basic pathobiology of injury, repair and protection to the nervous system, while considering preclinical and clinical trials targeted at improving traumatically injuried patients and patients with neurodegenerative diseases.
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