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本文引用的文献

1
What makes us tick? Functional and neural mechanisms of interval timing.是什么让我们如此行事?间隔计时的功能和神经机制。
Nat Rev Neurosci. 2005 Oct;6(10):755-65. doi: 10.1038/nrn1764.
2
Orbitofrontal ensemble activity monitors licking and distinguishes among natural rewards.眶额整体活动监测舔舐行为并区分自然奖赏。
J Neurophysiol. 2006 Jan;95(1):119-33. doi: 10.1152/jn.00467.2005. Epub 2005 Aug 24.
3
Genetic tracing shows segregation of taste neuronal circuitries for bitter and sweet.基因追踪显示苦味和甜味味觉神经回路的分离。
Science. 2005 Jul 29;309(5735):781-5. doi: 10.1126/science.1110787.
4
Ethanol modulates the VR-1 variant amiloride-insensitive salt taste receptor. I. Effect on TRC volume and Na+ flux.乙醇调节VR-1变体amiloride不敏感的盐味受体。I. 对味觉受体细胞体积和钠离子通量的影响。
J Gen Physiol. 2005 Jun;125(6):569-85. doi: 10.1085/jgp.200409213.
5
Layer-specific somatosensory cortical activation during active tactile discrimination.主动触觉辨别过程中特定层的体感皮层激活
Science. 2004 Jun 25;304(5679):1989-92. doi: 10.1126/science.1093318.
6
Neural signature of taste familiarity in the gustatory cortex of the freely behaving rat.自由活动大鼠味觉皮层中味觉熟悉度的神经特征
J Neurophysiol. 2004 Dec;92(6):3298-308. doi: 10.1152/jn.00198.2004. Epub 2004 Jun 22.
7
Cortical spatial aspects of optical intrinsic signals in response to sucrose and NaCl stimuli.响应蔗糖和氯化钠刺激时光学内在信号的皮质空间特征。
Neuroreport. 2004 Jan 19;15(1):17-20. doi: 10.1097/00001756-200401190-00005.
8
Experience-dependent neural integration of taste and smell in the human brain.人类大脑中味觉与嗅觉的经验依赖性神经整合
J Neurophysiol. 2004 Sep;92(3):1892-903. doi: 10.1152/jn.00050.2004. Epub 2004 Apr 21.
9
Representation in the human brain of food texture and oral fat.人类大脑中食物质地和口腔脂肪的表征。
J Neurosci. 2004 Mar 24;24(12):3086-93. doi: 10.1523/JNEUROSCI.0130-04.2004.
10
Dual separate pathways for sensory and hedonic aspects of taste.味觉的感觉和享乐方面的双重独立途径。
Brain Res Bull. 2004 Jan 15;62(4):271-83. doi: 10.1016/j.brainresbull.2003.10.004.

舔舐过程中味觉皮层的快速味觉反应。

Rapid taste responses in the gustatory cortex during licking.

作者信息

Stapleton Jennifer R, Lavine Michael L, Wolpert Robert L, Nicolelis Miguel A L, Simon Sidney A

机构信息

Department of Neurobiology, Duke University, Durham, North Carolina 27710, USA.

出版信息

J Neurosci. 2006 Apr 12;26(15):4126-38. doi: 10.1523/JNEUROSCI.0092-06.2006.

DOI:10.1523/JNEUROSCI.0092-06.2006
PMID:16611830
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC6673900/
Abstract

Rapid tastant detection is necessary to prevent the ingestion of potentially poisonous compounds. Behavioral studies have shown that rats can identify tastants in approximately 200 ms, although the electrophysiological correlates for fast tastant detection have not been identified. For this reason, we investigated whether neurons in the primary gustatory cortex (GC), a cortical area necessary for tastant identification and discrimination, contain sufficient information in a single lick cycle, or approximately 150 ms, to distinguish between tastants at different concentrations. This was achieved by recording neural activity in GC while rats licked four times without a liquid reward, and then, on the fifth lick, received a tastant (FR5 schedule). We found that 34% (61 of 178) of GC units were chemosensitive. The remaining neurons were activated during some phase of the licking cycle, discriminated between reinforced and unreinforced licks, or processed task-related information. Chemosensory neurons exhibited a latency of 70-120 ms depending on concentration, and a temporally precise phasic response that returned to baseline in tens of milliseconds. Tastant-responsive neurons were broadly tuned and responded to increasing tastant concentrations by either increasing or decreasing their firing rates. In addition, some responses were only evoked at intermediate tastant concentrations. In summary, these results suggest that the gustatory cortex is capable of processing multimodal information on a rapid timescale and provide the physiological basis by which animals may discriminate between tastants during a single lick cycle.

摘要

快速检测味觉物质对于防止摄入潜在有毒化合物至关重要。行为学研究表明,大鼠能够在约200毫秒内识别味觉物质,尽管快速味觉物质检测的电生理相关性尚未明确。因此,我们研究了初级味觉皮层(GC)中的神经元,该皮层区域是味觉物质识别和辨别所必需的,在单个舔舐周期(约150毫秒)内是否包含足够信息来区分不同浓度的味觉物质。这是通过在大鼠无液体奖励情况下舔舐四次,然后在第五次舔舐时接受一种味觉物质(固定比率5程序)的过程中记录GC中的神经活动来实现的。我们发现34%(178个中的61个)的GC神经元具有化学敏感性。其余神经元在舔舐周期的某个阶段被激活,区分强化舔舐和非强化舔舐,或处理与任务相关的信息。化学感觉神经元根据浓度表现出70 - 120毫秒的潜伏期,以及在几十毫秒内恢复到基线的时间精确的相位反应。味觉物质反应性神经元具有广泛的调谐范围,通过增加或降低放电频率对增加的味觉物质浓度做出反应。此外,一些反应仅在中等味觉物质浓度时被诱发。总之,这些结果表明味觉皮层能够在快速时间尺度上处理多模态信息,并为动物在单个舔舐周期内区分味觉物质提供了生理基础。