Institut Pasteur, Université Paris Cité, INSERM, Institut de l'Audition, Plasticity of Central Auditory Circuits, F-75012 Paris, France.
Institut Pasteur, Université Paris Cité, INSERM, Institut de l'Audition, Auditory Therapies Innovation Laboratory, F-75012 Paris, France.
Proc Natl Acad Sci U S A. 2023 Jun 27;120(26):e2221744120. doi: 10.1073/pnas.2221744120. Epub 2023 Jun 20.
Functional molecular characterization of the cochlea has mainly been driven by the deciphering of the genetic architecture of sensorineural deafness. As a result, the search for curative treatments, which are sorely lacking in the hearing field, has become a potentially achievable objective, particularly cochlear gene and cell therapies. To this end, a complete inventory of cochlear cell types, with an in-depth characterization of their gene expression profiles right up to their final differentiation, is indispensable. We therefore generated a single-cell transcriptomic atlas of the mouse cochlea based on an analysis of more than 120,000 cells on postnatal day 8 (P8), during the prehearing period, P12, corresponding to hearing onset, and P20, when cochlear maturation is almost complete. By combining whole-cell and nuclear transcript analyses with extensive in situ RNA hybridization assays, we characterized the transcriptomic signatures covering nearly all cochlear cell types and developed cell type-specific markers. Three cell types were discovered; two of them contribute to the modiolus which houses the primary auditory neurons and blood vessels, and the third one consists in cells lining the scala vestibuli. The results also shed light on the molecular basis of the tonotopic gradient of the biophysical characteristics of the basilar membrane that critically underlies cochlear passive sound frequency analysis. Finally, overlooked expression of deafness genes in several cochlear cell types was also unveiled. This atlas paves the way for the deciphering of the gene regulatory networks controlling cochlear cell differentiation and maturation, essential for the development of effective targeted treatments.
功能分子耳蜗的特征主要是通过解码感觉神经性耳聋的遗传结构来驱动的。因此,寻找治疗方法,特别是耳蜗基因和细胞治疗,已成为一个潜在可行的目标。为此,必须对耳蜗细胞类型进行全面盘点,并对其基因表达谱进行深入描述,直至其最终分化。因此,我们基于对出生后第 8 天(P8)、听力起始期 P12 以及耳蜗成熟几乎完成的 P20 期间的超过 120,000 个细胞进行分析,生成了小鼠耳蜗的单细胞转录组图谱。通过将全细胞和核转录分析与广泛的原位 RNA 杂交测定相结合,我们对几乎涵盖所有耳蜗细胞类型的转录组特征进行了描述,并开发了细胞类型特异性标记物。发现了三种细胞类型;其中两种有助于容纳主要听觉神经元和血管的蜗轴,第三种由前庭阶的细胞组成。研究结果还揭示了基底膜生物物理特性的音高梯度的分子基础,这是耳蜗被动声音频率分析的关键。最后,还揭示了几个耳蜗细胞类型中耳聋基因的被忽视表达。这个图谱为解码控制耳蜗细胞分化和成熟的基因调控网络铺平了道路,这对于开发有效的靶向治疗方法至关重要。