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Pou3f4 表达的耳嵴间质细胞促进出生后小鼠耳蜗内螺旋神经节神经元的存活。

Pou3f4-expressing otic mesenchyme cells promote spiral ganglion neuron survival in the postnatal mouse cochlea.

机构信息

Department of Biology, Georgetown University, Washington, District of Columbia.

Department of Otorhinolaryngology Head and Neck Surgery, University of Maryland School of Medicine, University of Maryland, Baltimore, Maryland.

出版信息

J Comp Neurol. 2020 Aug;528(12):1967-1985. doi: 10.1002/cne.24867. Epub 2020 Feb 7.

Abstract

During inner ear development, primary auditory neurons named spiral ganglion neurons (SGNs) are surrounded by otic mesenchyme cells, which express the transcription factor Pou3f4. Mutations in Pou3f4 are associated with DFNX2, the most common form of X-linked deafness and typically include developmental malformations of the middle ear and inner ear. It is known that interactions between Pou3f4-expressing mesenchyme cells and SGNs are important for proper axon bundling during development. However, Pou3f4 continues to be expressed through later phases of development, and potential interactions between Pou3f4 and SGNs during this period had not been explored. To address this, we documented Pou3f4 protein expression in the early postnatal mouse cochlea and compared SGNs in Pou3f4 knockout mice and littermate controls. In Pou3f4 mice, SGN density begins to decline by the end of the first postnatal week, with approximately 25% of SGNs ultimately lost. This period of SGN loss in Pou3f4 cochleae coincides with significant elevations in SGN apoptosis. Interestingly, this period also coincides with the presence of a transient population of Pou3f4-expressing cells around and within the spiral ganglion. To determine if Pou3f4 is normally required for SGN peripheral axon extension into the sensory domain, we used a genetic sparse labeling approach to track SGNs and found no differences compared with controls. We also found that Pou3f4 loss did not lead to changes in the proportions of Type I SGN subtypes. Overall, these data suggest that otic mesenchyme cells may play a role in maintaining SGN populations during the early postnatal period.

摘要

在内耳发育过程中,初级听觉神经元(螺旋神经节神经元,SGN)被耳胚间充质细胞包围,这些细胞表达转录因子 Pou3f4。Pou3f4 突变与 DFNX2 相关,DFNX2 是最常见的 X 连锁耳聋形式,通常包括中耳和内耳的发育畸形。已知 Pou3f4 表达的间充质细胞与 SGN 之间的相互作用对于发育过程中轴突的正确束集很重要。然而,Pou3f4 在发育后期仍持续表达,在此期间 Pou3f4 和 SGN 之间的潜在相互作用尚未被探索。为了解决这个问题,我们记录了早期新生小鼠耳蜗中 Pou3f4 蛋白的表达,并比较了 Pou3f4 敲除小鼠和同窝对照小鼠的 SGN。在 Pou3f4 敲除小鼠中,SGN 密度在出生后第一周结束时开始下降,最终约有 25%的 SGN 丢失。在 Pou3f4 耳蜗中,SGN 丢失的这段时间与 SGN 凋亡的显著增加相吻合。有趣的是,这段时间也与螺旋神经节周围和内部短暂存在的 Pou3f4 表达细胞群相吻合。为了确定 Pou3f4 是否通常需要 SGN 外周轴突延伸到感觉区域,我们使用了一种遗传稀疏标记方法来追踪 SGN,并发现与对照组相比没有差异。我们还发现,Pou3f4 缺失不会导致 I 型 SGN 亚型的比例发生变化。总的来说,这些数据表明,耳胚间充质细胞可能在新生后早期发挥作用,维持 SGN 群体。

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