标题: | 大脑抑制机制于不同脉络下空间与时序同步变化之关联性 The Associated Brain Dynamics in Spatial and Temporal Synchronization of the Inhibitory Mechanisms under Different Context |
作者: | 柯立伟 Ko Li-Wei 国立交通大学生物科技学系(所) |
关键字: | 抑制控制;功能性磁振造影;脑电波;讯号终止任务;压力;自然环境;神经网路传递模型;inhibitory control;fMRI;EEG;stop-signal task;stress;nature circumstance;brain connective model |
公开日期: | 2014 |
摘要: | 在人类的生活之中,为了适应环境所带来的变化,对动作进行抑制控制(inhibitory control)显得非常重要,许多抑制行为都不是经常性的发生,面临在短时间状况下的压 力,将会影响人在进行抑制时的能力,在过往抑制机制研究中,为避免其他因素干扰, 通常利用简单符号做为刺激典范,然而在实际应用中却无法避免这些干扰因素。本计 画将使用功能性磁振照影(functional magnetic resonance imaging, fMRI)及脑波 (Electroencephalography, EEG)技术作为研究方法,研究在瞬间压力下自然环境 (nature environment)大脑抑制的脑照影(fMRI)与脑电波(EEG)是否会有影响。在本计 画中,将以“讯号终止任务”(Stop-Signal task)为典范,以时间引发受测者短期之 压力,并应用于自然环境中,试图找出环境、压力和抑制之关联指标。本计画将分三 年完成,第一年计画探讨在典型讯号终止实验场景下fMRI 与EEG 讯号之基础分析; 第二年将探讨在压力情境下典型讯号终止实验场景fMRI 与EEG 讯号分析及大脑抑制 网路结构;第三年计画将整合前两年的研究结果,并将结果应用在实际环境下,建构 脑区功能神经网路传递模型,并检测在不同环境下之模型差异性,藉以提供于实际应 用下之重要指标。 In order for human lives to accustom to naturally environmental changes, inhibitory control becomes vital, since many of the suppression behavior is not frequently occurred, therefore, an instantly encountered pressure condition will affect the ability of human’s suppression mechanism. In several researches, based on the purpose of avoiding other interferences, such as complicated background, usually a practically simple symbol paradigm will be used to minimize them; however, the past studies are not applicable to real-life, as these interferences are inevitable in natural environment. This project uses synchronously measurement of functional magnetic resonance image (fMRI) and Electroencephalography (EEG) as a research approach, which study the brain inhibition of instant pressure under natural environment. We propose Stop Signal Tasks that are compatible to natural conditions with a timing constraint, which aims to induce short-term pressure to the participants, and attempt to find the indicator that, relate the concepts of environment, pressure, and suppression. This project will be completed in a 3-year timeline. First year, the fundamental analysis of fMRI and EEG will be established with a typical stop-signal scenario; second year, the typical experiment is not only applied, but also involve the factor of pressure. Subsequently, throughout the integrated analysis of fMRI and EEG, we construct the causal models to interpret the brain connective network; Third year, we bring together the previous works to enhance the brain connective model, which by introducing the practical experiment to a natural situation, empowers us to make comparison for changes in brain network under the nature circumstance. |
官方说明文件#: | NSC102-2420-H009-003-MY3 |
URI: | http://hdl.handle.net/11536/102411 https://www.grb.gov.tw/search/planDetail?id=8126201&docId=433813 |
显示于类别: | Research Plans |