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2
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J Neurosci. 2019 Jan 23;39(4):584-595. doi: 10.1523/JNEUROSCI.1798-18.2018.
3
Axonal sodium channel NaV1.2 drives granule cell dendritic GABA release and rapid odor discrimination.轴突钠离子通道 NaV1.2 驱动颗粒细胞树突 GABA 释放和快速气味辨别。
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4
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J Neurosci. 2017 Dec 6;37(49):11774-11788. doi: 10.1523/JNEUROSCI.2033-17.2017. Epub 2017 Oct 24.
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D3 Receptors Regulate Excitability in a Unique Class of Prefrontal Pyramidal Cells.D3受体在一类独特的前额叶锥体神经元中调节兴奋性。
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Rapid Feedforward Inhibition and Asynchronous Excitation Regulate Granule Cell Activity in the Mammalian Main Olfactory Bulb.快速前馈抑制和异步兴奋调节哺乳动物主嗅球中的颗粒细胞活动。
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Respiratory modulation of spontaneous subthreshold synaptic activity in olfactory bulb granule cells recorded in awake, head-fixed mice.在清醒、头部固定的小鼠中记录到的嗅球颗粒细胞自发阈下突触活动的呼吸调节。
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Local postsynaptic voltage-gated sodium channel activation in dendritic spines of olfactory bulb granule cells.局部突触后电压门控钠离子通道在嗅球颗粒细胞树突棘中的激活。
Neuron. 2015 Feb 4;85(3):590-601. doi: 10.1016/j.neuron.2014.12.051. Epub 2015 Jan 22.
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Cholinergic afferent stimulation induces axonal function plasticity in adult hippocampal granule cells.乙酰胆碱能传入刺激诱导成年海马颗粒细胞的轴突功能可塑性。
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10
Nanoscale distribution of presynaptic Ca(2+) channels and its impact on vesicular release during development.发育过程中突触前钙通道的纳米级分布及其对囊泡释放的影响。
Neuron. 2015 Jan 7;85(1):145-158. doi: 10.1016/j.neuron.2014.11.019. Epub 2014 Dec 18.

神经元树突的功能特化:无轴突嗅球颗粒细胞中动作电位起始区的鉴定。

Functional Specialization of Interneuron Dendrites: Identification of Action Potential Initiation Zone in Axonless Olfactory Bulb Granule Cells.

机构信息

Department of Neurosciences, Case Western Reserve University, Cleveland, Ohio 44106.

Department of Neurosciences, Case Western Reserve University, Cleveland, Ohio 44106

出版信息

J Neurosci. 2019 Dec 4;39(49):9674-9688. doi: 10.1523/JNEUROSCI.1763-19.2019. Epub 2019 Oct 29.

DOI:10.1523/JNEUROSCI.1763-19.2019
PMID:31662426
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC6891067/
Abstract

Principal cells in the olfactory bulb (OB), mitral and tufted cells, play key roles in processing and then relaying sensory information to downstream cortical regions. How OB local circuits facilitate odor-specific responses during odor discrimination is not known but involves GABAergic inhibition mediated by axonless granule cells (GCs), the most abundant interneuron in the OB. Most previous work on GCs has focused on defining properties of distal apical dendrites where these interneurons form reciprocal dendrodendritic connections with principal cells. Less is known about the function of the proximal dendritic compartments. In the present study, we identified the likely action potentials (AP) initiation zone by comparing electrophysiological properties of rat (either sex) GCs with apical dendrites severed at different locations. We find that truncated GCs with long apical dendrites had active properties that were indistinguishable from intact GCs, generating full-height APs and short-latency low-threshold Ca spikes. We then confirmed the presumed site of AP and low-threshold Ca spike initiation in the proximal apical dendrite using two-photon Ca photometry and focal TTX application. These results suggest that GCs incorporate two separate pathways for processing synaptic inputs: an already established dendrodendritic input to the distal apical dendrite and a novel pathway in which the cell body integrates proximal synaptic inputs, leading to spike generation in the proximal apical dendrite. Spikes generated by the proximal pathway likely enables GCs to regulate lateral inhibition by defining time windows when lateral inhibition is functional. The olfactory bulb plays a central role in processing sensory input transduced by receptor neurons. How local circuits in the bulb function to facilitate sensory processing during odor discrimination is not known but appears to involve inhibition mediated by granule cells, axonless GABAergic interneurons. Little is known about the active conductances in granule cells including where action potentials originate. Using a variety of experimental approaches, we find the Na-based action potentials originate in the proximal apical dendrite, a region targeted by cortical feedback afferents. We also find evidence for high expression of low-voltage activated Ca channels in the same region, intrinsic currents that enable GCs to spike rapidly in response to sensory input during each sniff cycle.

摘要

嗅球(OB)中的主细胞、僧帽细胞和丛状细胞在处理和随后将感觉信息传递到下游皮质区域方面发挥着关键作用。OB 局部回路如何在气味辨别过程中促进特定气味的反应尚不清楚,但涉及由无轴突颗粒细胞(GCs)介导的 GABA 能抑制,GCs 是 OB 中最丰富的中间神经元。以前大多数关于 GCs 的工作都集中在定义这些中间神经元与主细胞形成互感树突-树突连接的远端顶树突上的特性。关于近端树突区的功能知之甚少。在本研究中,我们通过比较在不同位置截断的大鼠(雌雄)GCs 的电生理特性,确定了可能的动作电位(AP)起始区。我们发现,具有长顶树突的截断 GC 具有与完整 GC 无法区分的活性特性,可产生全高 AP 和短潜伏期低阈值 Ca 波。然后,我们使用双光子 Ca 光度法和焦点 TTX 应用确认了近端顶树突中 AP 和低阈值 Ca 波起始的假定部位。这些结果表明,GCs 整合了两种用于处理突触输入的独立途径:一种已经建立的树突-树突输入到远端顶树突,以及一种新的途径,其中细胞体整合近端突触输入,导致在近端顶树突中产生尖峰。由近端途径产生的尖峰可能使 GCs 能够通过定义侧向抑制有效的时间窗口来调节侧向抑制。嗅球在处理由受体神经元转导的感觉输入方面起着核心作用。嗅球中的局部回路如何在气味辨别过程中促进感觉处理尚不清楚,但似乎涉及由颗粒细胞(无轴突 GABA 能中间神经元)介导的抑制。关于颗粒细胞中的主动电导率,包括动作电位起源的位置,知之甚少。使用各种实验方法,我们发现基于 Na 的动作电位起源于顶树突的近端,这是皮质反馈传入纤维的靶向区域。我们还发现同一区域存在高表达的低电压激活 Ca 通道的证据,这些内在电流使 GCs 能够在每个嗅探周期中快速响应感觉输入而产生尖峰。