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成年小鼠耳蜗内源性 AAV 基因治疗:内毛细胞完全转导而不损害耳蜗功能。

Cochlear gene therapy with ancestral AAV in adult mice: complete transduction of inner hair cells without cochlear dysfunction.

机构信息

Department of Otology and Laryngology, Harvard Medical School, Boston, MA 02115, USA.

Eaton-Peabody Laboratories, Massachusetts Eye &Ear Infirmary, Boston, MA 02114, USA.

出版信息

Sci Rep. 2017 Apr 3;7:45524. doi: 10.1038/srep45524.

Abstract

The use of viral vectors for inner ear gene therapy is receiving increased attention for treatment of genetic hearing disorders. Most animal studies to date have injected viral suspensions into neonatal ears, via the round window membrane. Achieving transduction of hair cells, or sensory neurons, throughout the cochlea has proven difficult, and no studies have been able to efficiently transduce sensory cells in adult ears while maintaining normal cochlear function. Here, we show, for the first time, successful transduction of all inner hair cells and the majority of outer hair cells in an adult cochlea via virus injection into the posterior semicircular canal. We used a "designer" AAV, AAV2/Anc80L65, in which the main capsid proteins approximate the ancestral sequence state of AAV1, 2, 8, and 9. Our injections also transduced ~10% of spiral ganglion cells and a much larger fraction of their satellite cells. In the vestibular sensory epithelia, the virus transduced large numbers of hair cells and virtually all the supporting cells, along with close to half of the vestibular ganglion cells. We conclude that this viral vector and this delivery route hold great promise for gene therapy applications in both cochlear and vestibular sense organs.

摘要

病毒载体在内耳基因治疗中的应用因其治疗遗传性听力障碍的潜力而受到越来越多的关注。迄今为止,大多数动物研究都通过圆窗膜将病毒混悬液注入新生耳中。在整个耳蜗中实现毛细胞或感觉神经元的转导非常困难,并且没有研究能够在维持正常耳蜗功能的同时有效地转导成年耳朵中的感觉细胞。在这里,我们首次展示了通过将病毒注入后半规管,成功转导成年耳蜗中的所有内毛细胞和大多数外毛细胞。我们使用了一种“设计”的 AAV,即 AAV2/Anc80L65,其主要衣壳蛋白接近 AAV1、2、8 和 9 的原始序列状态。我们的注射还转导了约 10%的螺旋神经节细胞及其卫星细胞的更大部分。在前庭感觉上皮中,病毒转导了大量的毛细胞和几乎所有的支持细胞,以及近一半的前庭神经节细胞。我们得出结论,这种病毒载体和这种给药途径在内耳和前庭感觉器官的基因治疗应用中具有巨大的潜力。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/7209/5377419/064ce2bc8c8c/srep45524-f1.jpg

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