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本文引用的文献

1
Physiological noise facilitates multiplexed coding of vibrotactile-like signals in somatosensory cortex.生理噪声促进了躯体感觉皮层中类似振动触觉信号的多路编码。
Proc Natl Acad Sci U S A. 2022 Sep 13;119(37):e2118163119. doi: 10.1073/pnas.2118163119. Epub 2022 Sep 6.
2
The neural basis of tactile texture perception.触觉纹理感知的神经基础。
Curr Opin Neurobiol. 2022 Oct;76:102621. doi: 10.1016/j.conb.2022.102621. Epub 2022 Aug 23.
3
Texture is encoded in precise temporal spiking patterns in primate somatosensory cortex.纹理信息在灵长类感觉皮层中以精确的时间尖峰模式进行编码。
Nat Commun. 2022 Mar 14;13(1):1311. doi: 10.1038/s41467-022-28873-w.
4
A common computational principle for vibrotactile pitch perception in mouse and human.在鼠标和人类中,振动触觉音高感知的常见计算原理。
Nat Commun. 2021 Sep 9;12(1):5336. doi: 10.1038/s41467-021-25476-9.
5
Effect of scanning speed on texture-elicited vibrations.扫描速度对纹理诱发振动的影响。
J R Soc Interface. 2020 Jun;17(167):20190892. doi: 10.1098/rsif.2019.0892. Epub 2020 Jun 10.
6
Emergence of an Invariant Representation of Texture in Primate Somatosensory Cortex.灵长类动物体感皮层中纹理不变表示的出现。
Cereb Cortex. 2020 May 14;30(5):3228-3239. doi: 10.1093/cercor/bhz305.
7
Feeling fooled: Texture contaminates the neural code for tactile speed.感觉受骗了:质地污染了触觉速度的神经编码。
PLoS Biol. 2019 Aug 27;17(8):e3000431. doi: 10.1371/journal.pbio.3000431. eCollection 2019 Aug.
8
Differentially synchronized spiking enables multiplexed neural coding.差异同步发放使多路复用神经编码成为可能。
Proc Natl Acad Sci U S A. 2019 May 14;116(20):10097-10102. doi: 10.1073/pnas.1812171116. Epub 2019 Apr 26.
9
Feature-selective encoding of substrate vibrations in the forelimb somatosensory cortex.前肢体感皮层中底物振动的特征选择性编码。
Nature. 2019 Mar;567(7748):384-388. doi: 10.1038/s41586-019-1015-8. Epub 2019 Mar 13.
10
High-dimensional representation of texture in somatosensory cortex of primates.灵长类动物体感皮层中纹理的高维表示。
Proc Natl Acad Sci U S A. 2019 Feb 19;116(8):3268-3277. doi: 10.1073/pnas.1818501116. Epub 2019 Feb 4.

解析灵长类感觉皮层中的时间和率码

Disentangling Temporal and Rate Codes in the Primate Somatosensory Cortex.

机构信息

Committee on Computational Neuroscience, University of Chicago, Chicago, Illinois 60627

Department of Organismal Biology and Anatomy, University of Chicago, Chicago, Illinois 60627.

出版信息

J Neurosci. 2024 Sep 18;44(38):e0036242024. doi: 10.1523/JNEUROSCI.0036-24.2024.

DOI:10.1523/JNEUROSCI.0036-24.2024
PMID:39164107
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC11411585/
Abstract

Millisecond-scale temporal spiking patterns encode sensory information in the periphery, but their role in the neocortex remains controversial. The sense of touch provides a window into temporal coding because tactile neurons often exhibit precise, repeatable, and informative temporal spiking patterns. In the somatosensory cortex (S1), responses to skin vibrations exhibit phase locking that faithfully carries information about vibratory frequency. However, the respective roles of spike timing and rate in frequency coding are confounded because vibratory frequency shapes both the timing and rates of responses. To disentangle the contributions of these two neural features, we measured S1 responses as rhesus macaques performed frequency discrimination tasks in which differences in frequency were accompanied by orthogonal variations in amplitude. We assessed the degree to which the strength and timing of responses could account for animal performance. First, we showed that animals can discriminate frequency, but their performance is biased by amplitude variations. Second, rate-based representations of frequency are susceptible to changes in amplitude but in ways that are inconsistent with the animals' behavioral biases, calling into question a rate-based neural code for frequency. In contrast, timing-based representations are highly informative about frequency but impervious to changes in amplitude, which is also inconsistent with the animals' behavior. We account for the animals' behavior with a model wherein frequency coding relies on a temporal code, but frequency judgments are biased by perceived magnitude. We conclude that information about vibratory frequency is not encoded in S1 firing rates but primarily in temporal patterning on millisecond timescales.

摘要

毫秒级时间尖峰模式在周围区域编码感觉信息,但它们在新皮层中的作用仍存在争议。触觉为时间编码提供了一个窗口,因为触觉神经元通常表现出精确、可重复和信息丰富的时间尖峰模式。在躯体感觉皮层(S1)中,对皮肤振动的反应表现出相位锁定,忠实地携带有关振动频率的信息。然而,由于振动频率同时塑造了反应的时间和速率,因此在频率编码中尖峰时间和速率的各自作用是混淆的。为了理清这两个神经特征的贡献,我们在恒河猴执行频率辨别任务时测量了 S1 的反应,其中频率的差异伴随着幅度的正交变化。我们评估了反应的强度和时间可以在多大程度上解释动物的表现。首先,我们表明动物可以辨别频率,但它们的表现受到幅度变化的影响。其次,基于速率的频率表示对幅度变化很敏感,但方式与动物的行为偏差不一致,这对基于速率的频率神经编码提出了质疑。相比之下,基于时间的表示在很大程度上与频率有关,但不受幅度变化的影响,这也与动物的行为不一致。我们用一个模型来解释动物的行为,该模型表明频率编码依赖于时间编码,但频率判断受到感知幅度的影响。我们得出的结论是,关于振动频率的信息不是在 S1 放电率中编码的,而是主要在毫秒级时间尺度上的时间模式中编码的。