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从大脑功能连接推断直接和多步有效连接及其与皮质几何结构的关系。

Inference of direct and multistep effective connectivities from functional connectivity of the brain and of relationships to cortical geometry.

作者信息

Mehta-Pandejee Grishma, Robinson P A, Henderson James A, Aquino K M, Sarkar Somwrita

机构信息

School of Physics, The University of Sydney, Sydney, New South Wales 2006, Australia; Center of Excellence for Integrative Brain Function, The University of Sydney, New South Wales 2006, Australia.

School of Physics, The University of Sydney, Sydney, New South Wales 2006, Australia; Center of Excellence for Integrative Brain Function, The University of Sydney, New South Wales 2006, Australia.

出版信息

J Neurosci Methods. 2017 May 1;283:42-54. doi: 10.1016/j.jneumeth.2017.03.014. Epub 2017 Mar 22.

Abstract

BACKGROUND

The problem of inferring effective brain connectivity from functional connectivity is under active investigation, and connectivity via multistep paths is poorly understood.

NEW METHOD

A method is presented to calculate the direct effective connection matrix (deCM), which embodies direct connection strengths between brain regions, from functional CMs (fCMs) by minimizing the difference between an experimental fCM and one calculated via neural field theory from an ansatz deCM based on an experimental anatomical CM.

RESULTS

The best match between fCMs occurs close to a critical point, consistent with independent published stability estimates. Residual mismatch between fCMs is identified to be largely due to interhemispheric connections that are poorly estimated in an initial ansatz deCM due to experimental limitations; improved ansatzes substantially reduce the mismatch and enable interhemispheric connections to be estimated. Various levels of significant multistep connections are then imaged via the neural field theory (NFT) result that these correspond to powers of the deCM; these are shown to be predictable from geometric distances between regions.

COMPARISON WITH EXISTING METHODS

This method gives insight into direct and multistep effective connectivity from fCMs and relating to physiology and brain geometry. This contrasts with other methods, which progressively adjust connections without an overarching physiologically based framework to deal with multistep or poorly estimated connections.

CONCLUSIONS

deCMs can be usefully estimated using this method and the results enable multistep connections to be investigated systematically.

摘要

背景

从功能连接推断有效脑连接的问题正在积极研究中,而通过多步路径的连接仍知之甚少。

新方法

提出了一种从功能连接矩阵(fCM)计算直接有效连接矩阵(deCM)的方法,该矩阵体现了脑区之间的直接连接强度,通过最小化实验fCM与基于实验解剖连接矩阵的假设deCM经神经场理论计算得到的fCM之间的差异来实现。

结果

fCM之间的最佳匹配出现在接近临界点处,与已发表的独立稳定性估计一致。fCM之间的残余不匹配被确定主要是由于实验限制,在初始假设deCM中对半球间连接估计不足;改进的假设显著减少了不匹配,并能够估计半球间连接。然后通过神经场理论(NFT)对各种显著水平的多步连接进行成像,结果表明这些连接对应于deCM的幂次;这些连接被证明可从区域间的几何距离预测。

与现有方法的比较

该方法深入了解了从fCM得到的直接和多步有效连接,并与生理学和脑几何学相关。这与其他方法形成对比,其他方法在没有基于生理学的总体框架来处理多步或估计不足的连接的情况下逐步调整连接。

结论

使用该方法可以有效地估计deCM,其结果能够系统地研究多步连接。

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