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The Purinergic Receptor P2rx3 is Required for Spiral Ganglion Neuron Branch Refinement during Development.嘌呤能受体 P2rx3 是发育过程中螺旋神经节神经元分支细化所必需的。
eNeuro. 2020 Aug 10;7(4). doi: 10.1523/ENEURO.0179-20.2020. Print 2020 Jul/Aug.
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Characterization of the development of the mouse cochlear epithelium at the single cell level.在单细胞水平上对小鼠耳蜗上皮发育的特征描述。
Nat Commun. 2020 May 13;11(1):2389. doi: 10.1038/s41467-020-16113-y.
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Purinergic signaling in cochlear supporting cells reduces hair cell excitability by increasing the extracellular space.嘌呤能信号在耳蜗支持细胞中通过增加细胞外空间来降低毛细胞的兴奋性。
Elife. 2020 Jan 8;9:e52160. doi: 10.7554/eLife.52160.
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Visual Cortex Gains Independence from Peripheral Drive before Eye Opening.视觉皮层在睁眼前获得与外周驱动的独立性。
Neuron. 2019 Nov 20;104(4):711-723.e3. doi: 10.1016/j.neuron.2019.08.015. Epub 2019 Sep 24.
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Strengthening of the Efferent Olivocochlear System Leads to Synaptic Dysfunction and Tonotopy Disruption of a Central Auditory Nucleus.传出橄榄耳蜗系统的增强导致中枢听觉核的突触功能障碍和音位错位。
J Neurosci. 2019 Sep 4;39(36):7037-7048. doi: 10.1523/JNEUROSCI.2536-18.2019. Epub 2019 Jun 19.
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Prenatal activity from thalamic neurons governs the emergence of functional cortical maps in mice.来自丘脑神经元的产前活动控制着小鼠功能性皮质图谱的出现。
Science. 2019 Jun 7;364(6444):987-990. doi: 10.1126/science.aav7617. Epub 2019 May 2.
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Mapping developmental maturation of inner hair cell ribbon synapses in the apical mouse cochlea.绘制顶端小鼠耳蜗内毛细胞带状突触发育成熟图谱。
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Neuron. 2018 Dec 5;100(5):1059-1065.e4. doi: 10.1016/j.neuron.2018.10.011. Epub 2018 Nov 1.
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Intercellular Ca signalling in the adult mouse cochlea.成年小鼠耳蜗细胞间 Ca 信号转导。
J Physiol. 2019 Jan;597(1):303-317. doi: 10.1113/JP276400. Epub 2018 Nov 22.
10
Hair Cell Mechanotransduction Regulates Spontaneous Activity and Spiral Ganglion Subtype Specification in the Auditory System.毛细胞机械转导调控听觉系统中的自发性活动和螺旋神经节亚型分化。
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嘌呤能信号在整个早期发育过程中控制听觉系统的自发性活动。

Purinergic Signaling Controls Spontaneous Activity in the Auditory System throughout Early Development.

机构信息

Solomon H. Snyder Department of Neuroscience, Johns Hopkins University, Baltimore, Maryland 21205.

Department of Biology, Georgetown University, Washington, DC 20007.

出版信息

J Neurosci. 2021 Jan 27;41(4):594-612. doi: 10.1523/JNEUROSCI.2178-20.2020. Epub 2020 Dec 10.

DOI:10.1523/JNEUROSCI.2178-20.2020
PMID:33303678
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC7842760/
Abstract

Spontaneous bursts of electrical activity in the developing auditory system arise within the cochlea before hearing onset and propagate through future sound-processing circuits of the brain to promote maturation of auditory neurons. Studies in isolated cochleae revealed that this intrinsically generated activity is initiated by ATP release from inner supporting cells (ISCs), resulting in activation of purinergic autoreceptors, K efflux, and subsequent depolarization of inner hair cells. However, it is unknown when this activity emerges or whether different mechanisms induce activity during distinct stages of development. Here we show that spontaneous electrical activity in mouse cochlea from both sexes emerges within ISCs during the late embryonic period, preceding the onset of spontaneous correlated activity in inner hair cells and spiral ganglion neurons, which begins at birth and follows a base to apex developmental gradient. At all developmental ages, pharmacological inhibition of P2Y1 purinergic receptors dramatically reduced spontaneous activity in these three cell types. Moreover, imaging within the inferior colliculus revealed that auditory neurons within future isofrequency zones exhibit coordinated neural activity at birth. The frequency of these discrete bursts increased progressively during the postnatal prehearing period yet remained dependent on P2RY1. Analysis of mice with disrupted cholinergic signaling in the cochlea indicate that this efferent input modulates, rather than initiates, spontaneous activity before hearing onset. Thus, the auditory system uses a consistent mechanism involving ATP release from ISCs and activation of P2RY1 autoreceptors to elicit coordinated excitation of neurons that will process similar frequencies of sound. In developing sensory systems, groups of neurons that will process information from similar sensory space exhibit highly correlated electrical activity that is critical for proper maturation and circuit refinement. Defining the period when this activity is present, the mechanisms responsible and the features of this activity are crucial for understanding how spontaneous activity influences circuit development. We show that, from birth to hearing onset, the auditory system relies on a consistent mechanism to elicit correlate firing of neurons that will process similar frequencies of sound. Targeted disruption of this activity will increase our understanding of how these early circuits mature and may provide insight into processes responsible for developmental disorders of the auditory system.

摘要

在听觉出现之前,发育中的听觉系统中的电活动自发爆发于耳蜗内,并通过大脑未来的声音处理回路传播,以促进听觉神经元的成熟。在分离的耳蜗中进行的研究表明,这种内在产生的活动是由来自内支持细胞 (ISCs) 的 ATP 释放引发的,导致嘌呤能自受体的激活、K+外流以及随后的内毛细胞去极化。然而,目前尚不清楚这种活动何时出现,或者在发育的不同阶段是否存在不同的机制来诱导这种活动。在这里,我们表明,来自雌雄两性的小鼠耳蜗中的自发电活动在胚胎晚期就出现在 ISC 中,早于内毛细胞和螺旋神经节神经元自发相关活动的出现,后者始于出生并遵循基底到顶点的发育梯度。在所有发育年龄,P2Y1 嘌呤能受体的药理学抑制都显著降低了这三种细胞类型的自发性活动。此外,在内侧膝状体的成像显示,未来等频区的听觉神经元在出生时表现出协调的神经活动。这些离散爆发的频率在出生后的听力前阶段逐渐增加,但仍然依赖于 P2RY1。对耳蜗中胆碱能信号传导中断的小鼠进行分析表明,这种传出输入调节而不是启动听觉出现前的自发性活动。因此,听觉系统使用一种一致的机制,涉及 ISC 中 ATP 的释放和 P2RY1 自受体的激活,以引发将处理相似频率声音的神经元的协调兴奋。在发育中的感觉系统中,将处理来自相似感觉空间的信息的神经元组表现出高度相关的电活动,这对于适当的成熟和电路细化至关重要。确定存在这种活动的时期、负责的机制以及这种活动的特征对于理解自发活动如何影响电路发育至关重要。我们表明,从出生到听觉出现,听觉系统依赖于一种一致的机制来引发将处理相似频率声音的神经元的相关放电。这种活动的靶向破坏将增加我们对这些早期电路成熟的理解,并可能为理解听觉系统发育障碍的过程提供线索。