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Tonic and Phasic Receptor Neurons in the Vertebrate Olfactory Epithelium

机译:脊椎动物嗅觉上皮细胞的强直和阶段性受体神经元

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摘要

Olfactory receptor neurons (ORNs) respond to odorants with characteristic patterns of action potentials that are relevant for odor coding. Prolonged odorant exposures revealed three populations of dissociated toad ORNs, which were mimicked by depolarizing currents: tonic (TN, displaying sustained firing, 49% of 102 cells), phasic (PN, exhibiting brief action potential trains, 36%) and intermediate neurons (IN, generating trains longer than PN, 15%). We studied the biophysical properties underlying the differences between TNs and PNs, the most extreme cases among ORNs. TNs and PNs possessed similar membrane capacitances (∼4 pF), but they differed in resting potential (−82 versus −64 mV), input resistance (4.2 versus 2.9 GΩ) and unspecific current, Iu (TNs: 0 < Iu ≤ 1 pA/pF; and PNs: Iu > 1 pA/pF). Firing behavior did not correlate with differences in voltage-gated conductances. We developed a mathematical model that accurately simulates tonic and phasic patterns. Whole cell recordings from rat ORNs in fragments (∼4 mm2) of olfactory epithelium showed that such a tissue normally contains tonic and phasic receptor neurons, suggesting that this feature is common across a wide range of vertebrates. Our findings show that the individual passive electrical properties can govern the firing patterns of ORNs.
机译:嗅觉受体神经元(ORNs)对气味物质作出反应,并具有与气味编码相关的动作电位特征模式。长时间暴露在气味中会发现三个解离的蟾蜍ORN,它们通过去极化电流来模拟:补药(TN,显示持续发射,占102个细胞的49%),相(PN,显示出短暂动作电位的训练,占36%)和中间神经元( IN,生成比PN长15%的火车)。我们研究了TN和PN之间差异的生物物理特性,这是ORN中最极端的情况。 TN和PN具有相似的膜电容(〜4 pF),但是它们的静息电位(-82 vs -64 mV),输入电阻(4.2 vs 2.9GΩ)和非特定电流Iu(TNs:0 1 pA / pF)。放电行为与电压门控电导的差异无关。我们开发了一个数学模型,可以准确地模拟进补和相位模式。大鼠嗅觉上皮碎片(约4 mm 2 )中的ORN的全细胞记录表明,这种组织通常含有滋补和阶段性受体神经元,表明这一特征在广泛的脊椎动物中很普遍。我们的发现表明,单个无源电特性可以控制ORN的发射模式。

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