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用于感音神经性听力损失治疗的基于活性氧的生物材料的进展。

Advancements of ROS-based biomaterials for sensorineural hearing loss therapy.

作者信息

Xu Baoying, Huang Yuqi, Yu Dehong, Chen Yu

机构信息

Materdicine Lab, School of Life Sciences, Shanghai University, Shanghai, 200444, China.

Materdicine Lab, School of Life Sciences, Shanghai University, Shanghai, 200444, China.

出版信息

Biomaterials. 2025 May;316:123026. doi: 10.1016/j.biomaterials.2024.123026. Epub 2024 Dec 15.

Abstract

Sensorineural hearing loss (SNHL) represents a substantial global health challenge, primarily driven by oxidative stress-induced damage within the auditory system. Excessive reactive oxygen species (ROS) play a pivotal role in this pathological process, leading to cellular damage and apoptosis of cochlear hair cells, culminating in irreversible hearing impairment. Recent advancements have introduced ROS-scavenging biomaterials as innovative, multifunctional platforms capable of mitigating oxidative stress. This comprehensive review systematically explores the mechanisms of ROS-mediated oxidative stress in SNHL, emphasizing etiological factors such as aging, acoustic trauma, and ototoxic medication exposure. Furthermore, it examines the therapeutic potential of ROS-scavenging biomaterials, positioning them as promising nanomedicines for targeted antioxidant intervention. By critically assessing recent advances in biomaterial design and functionality, this review thoroughly evaluates their translational potential for clinical applications. It also addresses the challenges and limitations of ROS-neutralizing strategies, while highlighting the transformative potential of these biomaterials in developing novel SNHL treatment modalities. This review advocates for continued research and development to integrate ROS-scavenging biomaterials into future clinical practice, aiming to address the unmet needs in SNHL management and potentially revolutionize the treatment landscape for this pervasive health issue.

摘要

感音神经性听力损失(SNHL)是一项重大的全球健康挑战,主要由听觉系统内氧化应激诱导的损伤所致。过量的活性氧(ROS)在这一病理过程中起关键作用,导致耳蜗毛细胞的细胞损伤和凋亡,最终造成不可逆的听力损害。最近的进展引入了ROS清除生物材料,作为能够减轻氧化应激的创新多功能平台。这篇综述系统地探讨了SNHL中ROS介导的氧化应激机制,强调了衰老、声学创伤和耳毒性药物暴露等病因。此外,它还研究了ROS清除生物材料的治疗潜力,将其定位为有前景的纳米药物用于靶向抗氧化干预。通过批判性地评估生物材料设计和功能的最新进展,本综述全面评估了它们在临床应用中的转化潜力。它还讨论了ROS中和策略的挑战和局限性,同时强调了这些生物材料在开发新型SNHL治疗方式方面的变革潜力。本综述主张持续开展研发工作,将ROS清除生物材料整合到未来的临床实践中,旨在满足SNHL管理中未满足的需求,并可能彻底改变这一普遍存在的健康问题的治疗格局。

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