Suppr超能文献

感觉输入引导初级听觉皮层的空间和时间可塑性。

Sensory input directs spatial and temporal plasticity in primary auditory cortex.

作者信息

Kilgard M P, Pandya P K, Vazquez J, Gehi A, Schreiner C E, Merzenich M M

机构信息

Neuroscience Program, School of Human Development, University of Texas at Dallas, Richardson, Texas 75083-0688, USA.

出版信息

J Neurophysiol. 2001 Jul;86(1):326-38. doi: 10.1152/jn.2001.86.1.326.

Abstract

The cortical representation of the sensory environment is continuously modified by experience. Changes in spatial (receptive field) and temporal response properties of cortical neurons underlie many forms of natural learning. The scale and direction of these changes appear to be determined by specific features of the behavioral tasks that evoke cortical plasticity. The neural mechanisms responsible for this differential plasticity remain unclear partly because important sensory and cognitive parameters differ among these tasks. In this report, we demonstrate that differential sensory experience directs differential plasticity using a single paradigm that eliminates the task-specific variables that have confounded direct comparison of previous studies. Electrical activation of the basal forebrain (BF) was used to gate cortical plasticity mechanisms. The auditory stimulus paired with BF stimulation was systematically varied to determine how several basic features of the sensory input direct plasticity in primary auditory cortex (A1) of adult rats. The distributed cortical response was reconstructed from a dense sampling of A1 neurons after 4 wk of BF-sound pairing. We have previously used this method to show that when a tone is paired with BF activation, the region of the cortical map responding to that tone frequency is specifically expanded. In this report, we demonstrate that receptive-field size is determined by features of the stimulus paired with BF activation. Specifically, receptive fields were narrowed or broadened as a systematic function of both carrier-frequency variability and the temporal modulation rate of paired acoustic stimuli. For example, the mean bandwidth of A1 neurons was increased (+60%) after pairing BF stimulation with a rapid train of tones and decreased (-25%) after pairing unmodulated tones of different frequencies. These effects are consistent with previous reports of receptive-field plasticity evoked by natural learning. The maximum cortical following rate and minimum response latency were also modified as a function of stimulus modulation rate and carrier-frequency variability. The cortical response to a rapid train of tones was nearly doubled if BF stimulation was paired with rapid trains of random carrier frequency, while no following rate plasticity was observed if a single carrier frequency was used. Finally, we observed significant increases in response strength and total area of functionally defined A1 following BF activation paired with certain classes of stimuli and not others. These results indicate that the degree and direction of cortical plasticity of temporal and receptive-field selectivity are specified by the structure and schedule of inputs that co-occur with basal forebrain activation and suggest that the rules of cortical plasticity do not operate on each elemental stimulus feature independently of others.

摘要

感觉环境的皮质表征会因经验而不断改变。皮质神经元空间(感受野)和时间响应特性的变化是多种自然学习形式的基础。这些变化的规模和方向似乎由引发皮质可塑性的行为任务的特定特征决定。造成这种差异可塑性的神经机制仍不清楚,部分原因是这些任务中的重要感觉和认知参数有所不同。在本报告中,我们使用单一范式证明了差异感觉经验引导差异可塑性,该范式消除了混淆先前研究直接比较的任务特定变量。使用基底前脑(BF)的电激活来控制皮质可塑性机制。与BF刺激配对的听觉刺激被系统地改变,以确定感觉输入的几个基本特征如何引导成年大鼠初级听觉皮层(A1)的可塑性。在BF-声音配对4周后,从A1神经元的密集采样中重建分布式皮质反应。我们之前使用这种方法表明,当一个音调与BF激活配对时,皮质图中对该音调频率做出反应的区域会特异性扩大。在本报告中,我们证明感受野大小由与BF激活配对的刺激特征决定。具体而言,感受野会随着载波频率变异性和配对声学刺激的时间调制率的系统函数而变窄或变宽。例如,将BF刺激与快速音列配对后,A1神经元的平均带宽增加(+60%),而将不同频率的未调制音调配对后,平均带宽减少(-25%)。这些效应与先前关于自然学习诱发的感受野可塑性的报告一致。最大皮质跟随率和最小反应潜伏期也作为刺激调制率和载波频率变异性的函数而改变。如果BF刺激与随机载波频率的快速音列配对,皮质对快速音列的反应几乎会加倍,而如果使用单一载波频率,则未观察到跟随率可塑性。最后,我们观察到在与某些类型的刺激而非其他刺激配对的BF激活后,功能定义的A1的反应强度和总面积显著增加。这些结果表明,时间和感受野选择性的皮质可塑性程度和方向由与基底前脑激活同时出现的输入结构和时间表决定,并表明皮质可塑性规则并非独立于其他元素对每个刺激特征起作用。

文献AI研究员

20分钟写一篇综述,助力文献阅读效率提升50倍。

立即体验

用中文搜PubMed

大模型驱动的PubMed中文搜索引擎

马上搜索

文档翻译

学术文献翻译模型,支持多种主流文档格式。

立即体验