Causal role of medial superior frontal cortex on enhancing neural information flow and self-agency judgments in the self-agency network

IF 4.7 2区 医学 Q1 NEUROIMAGING
Yingxin Jia , Kiwamu Kudo , Namasvi Jariwala , Phiroz Tarapore , Srikantan Nagarajan , Karuna Subramaniam
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引用次数: 0

Abstract

Self-agency is being aware of oneself as the agent of one’s thoughts and actions. Self-agency is necessary for successful interactions with the outside world (reality-monitoring). Prior research has shown that the medial superior prefrontal gyri (mPFC/SFG) may represent one neural correlate underlying self-agency judgments. However, the causal relationship remains unknown. Here, we applied high-frequency 10 Hz repetitive transcranial magnetic stimulation (rTMS) to modulate the excitability of the mPFC/SFG site that we have previously shown to mediate self-agency. For the first time, we delineate causal neural mechanisms, revealing precisely how rTMS modulates SFG excitability and impacts directional neural information flow in the self-agency network by implementing innovative magnetoencephalography (MEG) phase-transfer entropy (PTE) metrics, measured from pre-to-post rTMS. We found that, compared to control rTMS, enhancing SFG excitability by rTMS induced significant increases in information flow between SFG and specific cingulate and paracentral regions in the self-agency network in delta-theta, alpha, and gamma bands, which predicted improved self-agency judgments. This is the first multimodal imaging study in which we implement MEG PTE metrics of 5D imaging of space, frequency and time, to provide cutting-edge analyses of the causal neural mechanisms of how rTMS enhances SFG excitability and improves neural information flow between distinct regions in the self-agency network to potentiate improved self-agency judgments. Our findings provide a novel perspective for investigating causal neural mechanisms underlying self-agency and create a path towards developing novel neuromodulation interventions to improve self-agency that will be particularly useful for patients with psychosis who exhibit severe impairments in self-agency.
内侧额叶上皮层在自我代理网络中增强神经信息流和自我代理判断中的因果作用
自我代理是指意识到自己是自己思想和行为的代理人。自我代理是与外部世界成功互动的必要条件(现实监控)。先前的研究表明,内侧前额叶上回(mPFC/SFG)可能代表了自我代理判断的一个神经关联。然而,因果关系尚不清楚。在这里,我们使用高频10hz重复经颅磁刺激(rTMS)来调节mPFC/SFG部位的兴奋性,我们之前已经证明了该部位介导自我代理。我们首次描述了因果神经机制,通过实施创新的脑磁图(MEG)相转移熵(PTE)指标,精确揭示了rTMS如何调节SFG兴奋性,并影响自我代理网络中的定向神经信息流,从rTMS前到后测量。我们发现,与对照rTMS相比,rTMS增强SFG兴奋性诱导SFG与自我代理网络中特定扣带和旁中枢区域在delta-theta, alpha和gamma波段之间的信息流显著增加,这预示着自我代理判断的改善。这是第一个多模态成像研究,我们在空间、频率和时间的5D成像中实施MEG PTE指标,为rTMS如何增强SFG兴奋性和改善自我代理网络中不同区域之间的神经信息流以增强自我代理判断的因果神经机制提供前沿分析。我们的研究结果为研究自我代理的因果神经机制提供了一个新的视角,并为开发新的神经调节干预措施来改善自我代理创造了一条道路,这将对自我代理表现出严重损害的精神病患者特别有用。
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来源期刊
NeuroImage
NeuroImage 医学-核医学
CiteScore
11.30
自引率
10.50%
发文量
809
审稿时长
63 days
期刊介绍: NeuroImage, a Journal of Brain Function provides a vehicle for communicating important advances in acquiring, analyzing, and modelling neuroimaging data and in applying these techniques to the study of structure-function and brain-behavior relationships. Though the emphasis is on the macroscopic level of human brain organization, meso-and microscopic neuroimaging across all species will be considered if informative for understanding the aforementioned relationships.
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