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基于人诱导多能干细胞的模块化平台,用于挑战感觉神经性听力损失。

A human induced pluripotent stem cell-based modular platform to challenge sensorineural hearing loss.

机构信息

Laboratory of Bioengineering and Nanoscience, LBN, University of Montpellier, Montpellier, France.

Department of Biology, CLAS, University of Iowa, Iowa City, Iowa, USA.

出版信息

Stem Cells. 2021 Jun;39(6):697-706. doi: 10.1002/stem.3346. Epub 2021 Feb 8.

Abstract

The sense of hearing depends on a specialized sensory organ in the inner ear, called the cochlea, which contains the auditory hair cells (HCs). Noise trauma, infections, genetic factors, side effects of ototoxic drugs (ie, some antibiotics and chemotherapeutics), or simply aging lead to the loss of HCs and their associated primary neurons. This results in irreversible sensorineural hearing loss (SNHL) as in mammals, including humans; the inner ear lacks the capacity to regenerate HCs and spiral ganglion neurons. SNHL is a major global health problem affecting millions of people worldwide and provides a growing concern in the aging population. To date, treatment options are limited to hearing aids and cochlear implants. A major bottleneck for development of new therapies for SNHL is associated to the lack of human otic cell bioassays. Human induced pluripotent stem cells (hiPSCs) can be induced in two-dimensional and three-dimensional otic cells in vitro models that can generate inner ear progenitors and sensory HCs and could be a promising preclinical platform from which to work toward restoring SNHL. We review the potential applications of hiPSCs in the various biological approaches, including disease modeling, bioengineering, drug testing, and autologous stem cell based-cell therapy, that offer opportunities to understand the pathogenic mechanisms of SNHL and identify novel therapeutic strategies.

摘要

听觉依赖于内耳的一个专门的感觉器官,称为耳蜗,其中包含听觉毛细胞(HCs)。噪声创伤、感染、遗传因素、耳毒性药物(即一些抗生素和化疗药物)的副作用,或仅仅是衰老,都会导致 HCs 及其相关的初级神经元丧失。这导致了哺乳动物(包括人类)中不可逆的感音神经性听力损失(SNHL);内耳缺乏再生 HCs 和螺旋神经节神经元的能力。SNHL 是一个全球性的主要健康问题,影响着全球数百万人,在老龄化人口中引起了越来越多的关注。迄今为止,治疗选择仅限于助听器和人工耳蜗植入。SNHL 新疗法发展的一个主要瓶颈与缺乏人类耳细胞生物测定有关。人类诱导多能干细胞(hiPSCs)可以在二维和三维的耳细胞体外模型中诱导产生内耳祖细胞和感觉 HCs,这可能是一个很有前途的临床前平台,可以从恢复 SNHL 的角度开展工作。我们综述了 hiPSCs 在各种生物学方法中的潜在应用,包括疾病建模、生物工程、药物测试和自体干细胞为基础的细胞治疗,这些方法为理解 SNHL 的发病机制和确定新的治疗策略提供了机会。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/b022/8359331/5c0ec2deecd5/STEM-39-697-g004.jpg

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