Suppr超能文献

应用有向传递函数和网络形式主义评估工作记忆任务中的功能连接。

Application of directed transfer function and network formalism for the assessment of functional connectivity in working memory task.

机构信息

Department of Biomedical Physics, Warsaw University, Warsaw, Poland. katarzyna@

出版信息

Philos Trans A Math Phys Eng Sci. 2013 Jul 15;371(1997):20110614. doi: 10.1098/rsta.2011.0614. Print 2013 Aug 28.

Abstract

The dynamic pattern of functional connectivity during a working memory task was investigated by means of the short-time directed transfer function. A clear-cut picture of transmissions was observed with the main centres of propagation located in the frontal and parietal regions, in agreement with imaging studies and neurophysiological hypotheses concerning the mechanisms of working memory. The study of the time evolution revealed that most of the time short-range interactions prevailed, whereas the communication between the main centres of activity occurred more sparsely and changed dynamically in time. The patterns of connectivity were quantified by means of a network formalism based on assortative mixing--an approach novel in the field of brain networks study. By means of application of the above method, we have demonstrated the existence of a modular structure of brain networks. The strength of interaction inside the modules was higher than between modules. The obtained results are compatible with theories concerning metabolic energy saving and efficient wiring in the brain, which showed that preferred organization includes modular structure with dense connectivity inside the modules and more sparse connections between the modules. The presented detailed temporal and spatial patterns of propagation are in line with the neurophysiological hypotheses concerning the role of gamma and theta activity in information processing during a working memory task.

摘要

采用短时向转移函数研究了工作记忆任务中功能连接的动态模式。观察到了清晰的传播中心位于额叶和顶叶区域的传输图像,这与成像研究和关于工作记忆机制的神经生理学假设一致。对时间演化的研究表明,大多数时候短程相互作用占主导地位,而主要活动中心之间的通信则更为稀疏,并随时间动态变化。通过基于聚类混合的网络形式主义对连接模式进行了量化——这是脑网络研究领域的一种新颖方法。通过应用上述方法,我们证明了脑网络存在模块化结构。模块内的相互作用强度高于模块之间的相互作用强度。所得到的结果与关于大脑中代谢能量节省和有效布线的理论是一致的,这些理论表明,首选的组织包括模块结构,模块内具有密集的连接,模块之间的连接较为稀疏。所呈现的传播的详细时间和空间模式与关于γ和θ活动在工作记忆任务期间信息处理中的作用的神经生理学假设一致。

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