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小鼠嗅球球旁细胞中气味诱发钙瞬变的狭窄局限和肾小球特异性起始潜伏期。

Narrowly Confined and Glomerulus-Specific Onset Latencies of Odor-Evoked Calcium Transients in the Juxtaglomerular Cells of the Mouse Main Olfactory Bulb.

机构信息

Department of Neurobiology and Anatomy, McGovern Medical School at the University of Texas Health Science Center at Houston, Houston, Texas 77030.

Britton Chance Center for Biomedical Photonics, Huazhong University of Science and Technology, Wuhan 430074, China.

出版信息

eNeuro. 2019 Feb 28;6(1). doi: 10.1523/ENEURO.0387-18.2019. eCollection 2019 Jan-Feb.

Abstract

Odor information is transmitted from olfactory sensory neurons to principal neurons at the glomeruli of the olfactory bulb. The intraglomerular neuronal circuit also includes hundreds of interneurons referred to as juxtaglomerular (JG) cells. Stimulus selectivity is well correlated among many JG cells that are associated with the same glomerulus, consistent with their highly homogeneous sensory inputs. However, much less is known about the temporal aspects of their activity, including the temporal coordination of their odor-evoked responses. As many JG cells within a glomerular module respond to the same stimulus, the extent to which their activity is temporally aligned will affect the temporal profile of their population inhibitory inputs. Using random-access high-speed two-photon microscopy, we recorded the odor-evoked calcium transients of mouse JG cells and compared the onset latency and rise time among neurons putatively associated with the same and different glomeruli. Whereas the overall onset latencies of odor-evoked transients were distributed across a ∼150 ms time window, those from cells putatively associated with the same glomerulus were confined to a much narrower window of several tens of milliseconds. This result suggests that onset latency primarily depends on the associated glomerulus. We also observed glomerular specificity in the rise time. The glomerulus-specific temporal pattern of odor-evoked activity implies that the temporal patterns of inputs from the intraglomerular circuit are unique to individual glomerulus-odor pairs, which may contribute to efficient shaping of the temporal pattern of activity in the principal neurons.

摘要

气味信息由嗅感觉神经元传递到嗅球的肾小球中的主神经元。肾小球内神经元回路还包括数百个称为近球(JG)细胞的中间神经元。与同一肾小球相关的许多 JG 细胞之间的刺激选择性相关性很好,这与它们高度同质的感觉输入一致。然而,关于它们的活动的时间方面,包括它们的气味诱发反应的时间协调,人们知之甚少。由于一个肾小球模块内的许多 JG 细胞对相同的刺激有反应,它们的活动在时间上的对齐程度将影响它们的群体抑制输入的时间分布。使用随机访问高速双光子显微镜,我们记录了小鼠 JG 细胞的气味诱发钙瞬变,并比较了假定与同一和不同肾小球相关的神经元的起始潜伏期和上升时间。虽然气味诱发瞬变的总起始潜伏期分布在约 150 毫秒的时间窗口内,但那些假定与同一肾小球相关的细胞则局限于数十毫秒的更窄窗口内。这一结果表明,起始潜伏期主要取决于相关的肾小球。我们还观察到上升时间的肾小球特异性。气味诱发活动的肾小球特异性时间模式表明,来自肾小球内回路的输入的时间模式对于单个肾小球-气味对是独特的,这可能有助于主神经元活动的时间模式的有效形成。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/8630/6397951/45a3526441e4/enu0011928660001.jpg

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