Department of Biomedical Engineering, Johns Hopkins University, Baltimore, MD 21205, USA.
Department of Biology, University of Maryland, College Park, MD 20742, USA.
Cereb Cortex. 2022 Jun 16;32(13):2816-2830. doi: 10.1093/cercor/bhab383.
Sensory deprivation from the periphery impacts cortical development. Otoferlin deficiency leads to impaired cochlear synaptic transmission and is associated with progressive hearing loss in adults. However, it remains elusive how sensory deprivation due to otoferlin deficiency impacts the early development of the auditory cortex (ACX) especially before the onset of low threshold hearing. To test that, we performed in vivo imaging of the ACX in awake mice lacking otoferlin (Otof-/-) during the first and second postnatal weeks and found that spontaneous and sound-driven cortical activity were progressively impaired. We then characterized the effects on developing auditory cortical circuits by performing in vitro recordings from subplate neurons (SPN), the first primary targets of thalamocortical inputs. We found that in Otof-/- pups, SPNs received exuberant connections from excitatory and inhibitory neurons. Moreover, as a population, SPNs showed higher similarity with respect to their circuit topology in the absence of otoferlin. Together, our results show that otoferlin deficiency results in impaired hearing and has a powerful influence on cortical connections and spontaneous activity in early development even before complete deafness. Therefore, peripheral activity has the potential to sculpt cortical structures from the earliest ages, even before hearing impairment is diagnosed.
外周感觉剥夺会影响皮质发育。耳蝸钙黏蛋白缺乏会导致耳蜗突触传递受损,与成人进行性听力丧失有关。然而,由于耳蝸钙黏蛋白缺乏导致的感觉剥夺如何影响听觉皮层(ACX)的早期发育(尤其是在低阈值听力出现之前)仍然难以捉摸。为了验证这一点,我们在出生后第一周和第二周的缺乏耳蝸钙黏蛋白(Otof-/-)的清醒小鼠中进行了活体 ACX 成像,发现自发性和声音驱动的皮质活动逐渐受损。然后,我们通过对来自基板神经元(SPN)的体外记录来描述对发育中的听觉皮质回路的影响,SPN 是丘脑皮质输入的第一个主要靶标。我们发现,在 Otof-/-幼鼠中,SPN 从兴奋性和抑制性神经元接收过度的连接。此外,作为一个群体,SPN 在没有耳蝸钙黏蛋白的情况下,其在电路拓扑方面表现出更高的相似性。总之,我们的研究结果表明,耳蝸钙黏蛋白缺乏会导致听力受损,并对早期发育中的皮质连接和自发性活动产生强大影响,甚至在完全失聪之前。因此,外周活动有可能从最早的年龄塑造皮质结构,甚至在听力障碍被诊断之前。