Chen Min, Fan Shuwen, Mao Jiabao, Huang Linhan, Tursun Nafisa, Zhang Chen, Li Wen, Li Shufeng
ENT Institute and Department of Otolaryngology, Eye & ENT Hospital of Fudan University, Shanghai, 200031, China.
NHC Key Laboratory of Hearing Medicine Research, Fudan University, Shanghai, 200031, China.
Adv Sci (Weinh). 2025 Mar;12(9):e2412349. doi: 10.1002/advs.202412349. Epub 2025 Jan 14.
Tinnitus, a widespread condition affecting numerous individuals worldwide, remains a significant challenge due to limited effective therapeutic interventions. Intriguingly, patients using cochlear implants (CIs) have reported significant relief from tinnitus symptoms, although the underlying mechanisms remain unclear and intracochlear implantation risks cochlear damage and hearing loss. This study demonstrates that targeted intracochlear electrical stimulation (ES) in guinea pigs with noise-induced hearing loss reversed tinnitus-related maladaptive plasticity in the cochlear nucleus (CN), characterized by reduced auditory innervation, increased somatosensory innervation, and diminished inhibitory neural networks. Additionally, a customized extracochlear ES delivered by a newly designed extracochlear electrode array to guinea pigs with salicylate-induced tinnitus also reversed the aforementioned maladaptive plasticity and alleviated tinnitus without causing additional cochlear damage or hearing loss. These findings suggest that CI-delivered ES may alleviate tinnitus by reversing maladaptive CN plasticity. Additionally, the extracochlear ES strategy offers a promising tinnitus treatment with minimal risk to hearing.
耳鸣是一种在全球范围内影响众多人的普遍病症,由于有效的治疗干预措施有限,它仍然是一个重大挑战。有趣的是,使用人工耳蜗(CI)的患者报告称耳鸣症状得到了显著缓解,尽管其潜在机制尚不清楚,而且耳蜗内植入存在耳蜗损伤和听力损失的风险。本研究表明,在患有噪声性听力损失的豚鼠中进行靶向性耳蜗内电刺激(ES)可逆转耳蜗核(CN)中与耳鸣相关的适应性不良可塑性,其特征为听觉神经支配减少、体感神经支配增加以及抑制性神经网络减弱。此外,通过新设计的耳蜗外电极阵列向患有水杨酸盐诱导性耳鸣的豚鼠提供定制的耳蜗外ES,也逆转了上述适应性不良可塑性并减轻了耳鸣,且未造成额外的耳蜗损伤或听力损失。这些发现表明,人工耳蜗提供的电刺激可能通过逆转耳蜗核的适应性不良可塑性来缓解耳鸣。此外,耳蜗外电刺激策略为耳鸣治疗提供了一种前景广阔且听力风险最小的方法。