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Metaanalytic connectivity modeling: delineating the functional connectivity of the human amygdala.

机译:元分析连通性建模:描述人类杏仁核的功能连通性。

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摘要

Functional neuroimaging has evolved into an indispensable tool for noninvasively investigating brain function. A recent development of such methodology is the creation of connectivity models for brain regions and related networks, efforts that have been inhibited by notable limitations. We present a new method for ascertaining functional connectivity of specific brain structures using metaanalytic connectivity modeling (MACM), along with validation of our method using a nonhuman primate database. Drawing from decades of neuroimaging research and spanning multiple behavioral domains, the method overcomes many weaknesses of conventional connectivity analyses and provides a simple, automated alternative to developing accurate and robust models of anatomically-defined human functional connectivity. Applying MACM to the amygdala, a small structure of the brain with a complex network of connections, we found high coherence with anatomical studies in nonhuman primates as well as human-based theoretical models of emotive-cognitive integration, providing evidence for this novel method's utility.
机译:功能性神经成像已发展成为非侵入性研究脑功能的必不可少的工具。这种方法的最新发展是创建了针对大脑区域和相关网络的连接模型,这些努力已受到显着局限性的限制。我们提出了一种新的方法,用于使用元分析连接模型(MACM)确定特定大脑结构的功能连接性,以及使用非人类灵长类动物数据库对我们的方法进行验证。通过数十年的神经影像学研究并跨越多个行为领域,该方法克服了传统连通性分析的许多弱点,并提供了一种简单,自动化的替代方法来开发解剖学定义的人类功能连通性的准确而强大的模型。将MACM应用于杏仁核(一个具有复杂连接网络的大脑小结构)后,我们发现与非人类灵长类动物的解剖学研究以及基于情感的认知整合的基于人的理论模型具有高度的一致性,这为该新方法的实用性提供了证据。

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