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已鉴定的大鼠嗅球中间神经元对电刺激和气味刺激的细胞内反应。

Intracellular responses of identified rat olfactory bulb interneurons to electrical and odor stimulation.

作者信息

Wellis D P, Scott J W

机构信息

Department of Anatomy and Cell Biology, Emory University School of Medicine, Atlanta, Georgia 30322.

出版信息

J Neurophysiol. 1990 Sep;64(3):932-47. doi: 10.1152/jn.1990.64.3.932.

Abstract
  1. Intracellular recordings were made from 28 granule cells and 6 periglomerular cells of the rat olfactory bulb during odor stimulation and electrical stimulation of the olfactory nerve layer (ONL) and lateral olfactory tract (LOT). Neurons were identified by injection of horseradish peroxidase (HRP) or biocytin and/or intracellular response characteristics. Odorants were presented in a cyclic sniff paradigm, as reported previously. 2. All interneurons could be activated from a wide number of stimulation sites on the ONL, with distances exceeding their known dendritic spreads and the dispersion of nerve fibers within the ONL, indicating that multisynaptic pathways must also exist at the glomerular region. All types of interneurons also responded to odorant stimulation, showing a variety of responses. 3. Granule cells responded to electrical stimulation of the LOT and ONL as reported previously. However, intracellular potential, excitability, and conductance analysis suggested that the mitral cell-mediated excitatory postsynaptic potential (EPSP) is followed by a long inhibitory postsynaptic potential (IPSP). An early negative potential, before the EPSP, was also observed in every granule cell and correlated with component I of the extracellular LOT-induced field potential. We have interpreted this negativity as a "field effect," that may be diagnostic of granule cells. 4. Most granule cells exhibited excitatory responses to odorant stimulation. Odors could produce spiking responses that were either nonhabituating (response to every sniff) or rapidly habituating (response to first sniff only). Other granule cells, while spiking to electrical stimulation, showed depolarizations that did not evoke spikes to odor stimulation. These depolarizations were transient with each sniff or sustained across a series of sniffs. These physiological differences to odor stimulation correlated with granule cell position beneath the mitral cell layer for 12 cells, suggesting that morphological subtypes of granule cells may show physiological differences. Some features of the granule cell odor responses seem to correlate with some of the features we have observed in mitral/tufted cell intracellular recordings. Only one cell showed inhibition to odors. 5. Periglomerular (PG) cells showed a response to ONL stimulation that was unlike that found in other olfactory bulb neurons. There was a long-duration hyperpolarization after a spike and large depolarization or burst of spikes (20-30 ms in duration). Odor stimulation produced simple bursts of action potentials, Odor stimulation produced simple bursts of action potentials, suggesting that PG cells may simply follow input from the olfactory nerve.(ABSTRACT TRUNCATED AT 400 WORDS)
摘要
  1. 在对大鼠嗅球的28个颗粒细胞和6个球周细胞进行细胞内记录时,施加了气味刺激以及对嗅神经层(ONL)和外侧嗅束(LOT)的电刺激。通过注射辣根过氧化物酶(HRP)或生物胞素和/或细胞内反应特性来识别神经元。如先前报道,气味剂以周期性嗅吸模式呈现。2. 所有中间神经元都能从ONL上的大量刺激位点被激活,这些位点的距离超过了它们已知的树突分布范围以及ONL内神经纤维的分散范围,这表明在肾小球区域也必定存在多突触通路。所有类型的中间神经元也对气味剂刺激有反应,表现出多种反应。3. 如先前报道,颗粒细胞对LOT和ONL的电刺激有反应。然而,细胞内电位、兴奋性和电导分析表明,二尖瓣细胞介导的兴奋性突触后电位(EPSP)之后紧接着是一个长时抑制性突触后电位(IPSP)。在每个颗粒细胞中还观察到EPSP之前的早期负电位,它与细胞外LOT诱导的场电位的成分I相关。我们将这种负性解释为一种“场效应”,可能是颗粒细胞的诊断特征。4. 大多数颗粒细胞对气味剂刺激表现出兴奋性反应。气味可产生要么不适应(对每次嗅吸都有反应)要么快速适应(仅对第一次嗅吸有反应)的突发放电反应。其他颗粒细胞虽然对电刺激有突发放电,但对气味刺激时表现出的去极化并未引发突发放电。这些去极化在每次嗅吸时是短暂的,或者在一系列嗅吸过程中持续存在。这12个细胞对气味刺激的这些生理差异与颗粒细胞在二尖瓣细胞层下方的位置相关,表明颗粒细胞的形态学亚型可能表现出生理差异。颗粒细胞气味反应的一些特征似乎与我们在二尖瓣/簇状细胞细胞内记录中观察到的一些特征相关。只有一个细胞对气味表现出抑制。5. 球周(PG)细胞对ONL刺激的反应与在其他嗅球神经元中发现的不同。在一个锋电位之后有一个长时程超极化以及大的去极化或锋电位爆发(持续时间为20 - 30毫秒)。气味刺激产生简单的动作电位爆发,这表明PG细胞可能只是跟随来自嗅神经的输入。(摘要截选至400字)

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