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本文引用的文献

1
High Precision of Spike Timing across Olfactory Receptor Neurons Allows Rapid Odor Coding in Drosophila.果蝇嗅觉受体神经元间精确的峰电位时间实现快速气味编码
iScience. 2018 Jun 29;4:76-83. doi: 10.1016/j.isci.2018.05.009. Epub 2018 May 17.
2
Differential Processing by Two Olfactory Subsystems in the Honeybee Brain.两个嗅觉子系统在蜜蜂大脑中的差异处理。
Neuroscience. 2018 Mar 15;374:33-48. doi: 10.1016/j.neuroscience.2018.01.029. Epub 2018 Jan 31.
3
Cooperative defence operates by social modulation of biogenic amine levels in the honey bee brain.合作防御通过社会调节蜜蜂大脑中的生物胺水平来运作。
Proc Biol Sci. 2018 Jan 31;285(1871). doi: 10.1098/rspb.2017.2653.
4
A primacy code for odor identity.气味身份的首要代码。
Nat Commun. 2017 Nov 14;8(1):1477. doi: 10.1038/s41467-017-01432-4.
5
Pheromones modulate reward responsiveness and non-associative learning in honey bees.信息素调节蜜蜂的奖赏反应和非联想学习。
Sci Rep. 2017 Aug 29;7(1):9875. doi: 10.1038/s41598-017-10113-7.
6
Spatially resolved time-frequency analysis of odour coding in the insect antennal lobe.昆虫触角叶中气味编码的空间分辨时频分析
Eur J Neurosci. 2016 Sep;44(6):2387-95. doi: 10.1111/ejn.13344. Epub 2016 Aug 18.
7
The peripheral olfactory code in Drosophila larvae contains temporal information and is robust over multiple timescales.果蝇幼虫的外周嗅觉编码包含时间信息,并且在多个时间尺度上都很稳健。
Proc Biol Sci. 2016 May 25;283(1831). doi: 10.1098/rspb.2016.0665.
8
Honey Bees Modulate Their Olfactory Learning in the Presence of Hornet Predators and Alarm Component.蜜蜂在黄蜂捕食者和警报成分存在的情况下调节其嗅觉学习。
PLoS One. 2016 Feb 26;11(2):e0150399. doi: 10.1371/journal.pone.0150399. eCollection 2016.
9
DoOR 2.0--Comprehensive Mapping of Drosophila melanogaster Odorant Responses.DoOR 2.0——黑腹果蝇气味反应的全面图谱
Sci Rep. 2016 Feb 25;6:21841. doi: 10.1038/srep21841.
10
Differential Odour Coding of Isotopomers in the Honeybee Brain.在蜜蜂大脑中对同位素异构体进行差异气味编码。
Sci Rep. 2016 Feb 22;6:21893. doi: 10.1038/srep21893.

神经元反应潜伏期跨被试编码第一气味身份信息。

Neuronal Response Latencies Encode First Odor Identity Information across Subjects.

机构信息

Center for Mind/Brain Sciences, University of Trento, Rovereto 38068, Italy and

Center for Mind/Brain Sciences, University of Trento, Rovereto 38068, Italy and.

出版信息

J Neurosci. 2018 Oct 24;38(43):9240-9251. doi: 10.1523/JNEUROSCI.0453-18.2018. Epub 2018 Sep 10.

DOI:10.1523/JNEUROSCI.0453-18.2018
PMID:30201774
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC6705991/
Abstract

Odorants are coded in the primary olfactory processing centers by spatially and temporally distributed patterns of glomerular activity. Whereas the spatial distribution of odorant-induced responses is known to be conserved across individuals, the universality of its temporal structure is still debated. Via fast two-photon calcium imaging, we analyzed the early phase of neuronal responses in the form of the activity onset latencies in the antennal lobe projection neurons of honeybee foragers. We show that each odorant evokes a stimulus-specific response latency pattern across the glomerular coding space. Moreover, we investigate these early response features for the first time across animals, revealing that the order of glomerular firing onsets is conserved across individuals and allows them to reliably predict odorant identity, but not concentration. These results suggest that the neuronal response latencies provide the first available code for fast odor identification. Here, we studied early temporal coding in the primary olfactory processing centers of the honeybee brain by fast imaging of glomerular responses to different odorants across glomeruli and across individuals. Regarding the elusive role of rapid response dynamics in olfactory coding, we were able to clarify the following aspects: (1) the rank of glomerular activation is conserved across individuals, (2) its stimulus prediction accuracy is equal to that of the response amplitude code, and (3) it contains complementary information. Our findings suggest a substantial role of response latencies in odor identification, anticipating the static response amplitude code.

摘要

气味通过嗅球活动的时空分布模式在初级嗅觉处理中心被编码。虽然已知气味诱导反应的空间分布在个体之间是保守的,但它的时间结构的普遍性仍存在争议。通过快速双光子钙成像,我们分析了蜜蜂觅食者触角叶投射神经元早期阶段的神经元反应,以活性起始潜伏期的形式表现出来。我们表明,每种气味在嗅球编码空间中都会引起特定于刺激的反应潜伏期模式。此外,我们首次在动物间研究了这些早期反应特征,揭示了嗅球激发起始顺序在个体间是保守的,这使得它们能够可靠地预测气味的身份,但不能预测浓度。这些结果表明,神经元反应潜伏期为快速气味识别提供了第一个可用的代码。在这里,我们通过在不同嗅球和个体之间快速成像来研究蜜蜂大脑初级嗅觉处理中心的早期时间编码。关于快速反应动力学在嗅觉编码中的难以捉摸的作用,我们能够澄清以下几个方面:(1) 嗅球激活的等级在个体间是保守的,(2) 其刺激预测准确性与响应幅度编码相当,(3) 它包含互补信息。我们的发现表明,在气味识别中,反应潜伏期起着重要作用,预示着静态响应幅度编码。