De Faveri Francesca, Ceriani Federico, Marcotti Walter
School of Biosciences, University of Sheffield, Sheffield, S10 2TN, UK.
Neuroscience Institute, University of Sheffield, Sheffield, S10 2TN, UK.
Nat Commun. 2025 Jan 2;16(1):29. doi: 10.1038/s41467-024-55519-w.
The refinement of neural circuits towards mature function is driven during development by patterned spontaneous calcium-dependent electrical activity. In the auditory system, this sensory-independent activity arises in the pre-hearing cochlea and regulates the survival and refinement of the auditory pathway. However, the origin and interplay of calcium signals during cochlear development is unknown in vivo. Here we show how calcium dynamics in the cochlear neuroepithelium of live pre-hearing mice shape the activity of the inner hair cells (IHCs) and their afferent synapses. Both IHCs and supporting cells (SCs) generate spontaneous calcium-dependent activity. Calcium waves from SCs synchronise the activity of nearby IHCs, which then spreads longitudinally recruiting several additional IHCs via a calcium wave-independent mechanism. This synchronised IHC activity in vivo increases the probability of afferent terminal recruitment. Moreover, the modiolar-to-pillar segregation in sound sensitivity of mature auditory nerve fibres appears to be primed at pre-hearing ages.
在发育过程中,神经回路向成熟功能的细化是由模式化的自发钙依赖性电活动驱动的。在听觉系统中,这种与感觉无关的活动出现在听力形成前的耳蜗中,并调节听觉通路的存活和细化。然而,在体内,耳蜗发育过程中钙信号的起源和相互作用尚不清楚。在这里,我们展示了听力形成前的活体小鼠耳蜗神经上皮中的钙动力学如何塑造内毛细胞(IHC)及其传入突触的活动。IHC和支持细胞(SC)都会产生自发的钙依赖性活动。来自SC的钙波使附近IHC的活动同步,然后通过一种不依赖钙波的机制纵向传播,招募另外几个IHC。这种体内同步的IHC活动增加了传入终末被招募的概率。此外,成熟听觉神经纤维在声音敏感性上从蜗轴到支柱的分离似乎在听力形成前的年龄就已初步形成。