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Memory-related cognitive modulation of human auditory cortex: Magnetoencephalography-based validation of a computational model.

机译:人类听觉皮层的记忆相关认知调节:基于脑磁图的计算模型验证。

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摘要

It is well known that cognitive functions exert task-specific modulation of the response properties of human auditory cortex. However, the underlying neuronal mechanisms are not well understood yet. In this dissertation I present a novel approach for integrating 'bottom-up' (neural network modeling) and 'top-down' (experiment) methods to study the dynamics of cortical circuits correlated to short-term memory (STM) processing that underlie the task-specific modulation of human auditory perception during performance of the delayed-match-to-sample (DMS) task. The experimental approach measures high-density magnetoencephalography (MEG) signals from human participants to investigate the modulation of human auditory evoked responses (AER) induced by the overt processing of auditory STM during task performance. To accomplish this goal, a new signal processing method based on independent component analysis (ICA) was developed for removing artifact contamination in the MEG recordings and investigating the functional neural circuits underlying the task-specific modulation of human AER. The computational approach uses a large-scale neural network model based on the electrophysiological knowledge of the involved brain regions to simulate system-level neural dynamics related to auditory object processing and performance of the corresponding tasks. Moreover, synthetic MEG and functional magnetic resonance imaging (fMRI) signals were simulated with forward models and compared to current and previous experimental findings. Consistently, both simulation and experimental results demonstrate a DMS-specific suppressive modulation of the AER and corresponding increased connectivity between the temporal auditory and frontal cognitive regions. Overall, the integrated approach illustrates how biologically-plausible neural network models of the brain can increase our understanding of brain mechanisms and their computations at multiple levels from sensory input to behavioral output with the intermediate steps defined.
机译:众所周知,认知功能会对人类听觉皮层的响应特性产生特定的任务调节。然而,潜在的神经元机制尚不十分清楚。在本文中,我提出了一种整合“自下而上”(神经网络建模)和“自上而下”(实验)方法的新颖方法,以研究与短时记忆(STM)处理相关的皮质回路的动力学。延迟匹配样本(DMS)任务执行期间人类听觉感知的任务特定调制。该实验方法测量了人类参与者的高密度脑磁图(MEG)信号,以研究任务执行过程中对听觉STM的公开处理所诱发的人类听觉诱发反应(AER)的调制。为了实现此目标,开发了一种基于独立成分分析(ICA)的新信号处理方法,以消除MEG记录中的伪影污染并调查人类AER的任务特定调制背后的功能神经回路。该计算方法基于涉及的大脑区域的电生理知识使用大规模神经网络模型来模拟与听觉对象处理和相应任务的执行有关的系统级神经动力学。此外,使用正向模型模拟了合成的MEG和功能性磁共振成像(fMRI)信号,并将其与当前和先前的实验结果进行了比较。一致地,仿真和实验结果均证明了AER的DMS特异性抑制性调制以及颞听觉和额叶认知区之间相应的增加的连通性。总体而言,集成方法说明了大脑的生物学上可行的神经网络模型如何在定义了中间步骤的情况下,从感官输入到行为输出的多个级别上增加我们对大脑机制及其计算的理解。

著录项

  • 作者

    Rong, Feng.;

  • 作者单位

    University of Maryland, College Park.;

  • 授予单位 University of Maryland, College Park.;
  • 学科 Neurosciences.
  • 学位 Ph.D.
  • 年度 2008
  • 页码 188 p.
  • 总页数 188
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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