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静息状态下的中枢自主神经网络:揭示自主神经传出随时间变化的功能磁共振相关物。

The central autonomic network at rest: Uncovering functional MRI correlates of time-varying autonomic outflow.

机构信息

Bioengineering and Robotics Research Centre "E. Piaggio", University of Pisa, Pisa, Italy; Dept. of Information Engineering, University of Pisa, Pisa, Italy.

Athinoula A. Martinos Center for Biomedical Imaging, Department of Radiology, Massachusetts General Hospital, Harvard Medical School, Charlestown, MA, USA; Department of Radiology, Logan University, Chesterfield MOU, USA.

出版信息

Neuroimage. 2019 Aug 15;197:383-390. doi: 10.1016/j.neuroimage.2019.04.075. Epub 2019 May 3.

Abstract

Peripheral measures of autonomic nervous system (ANS) activity at rest have been extensively employed as putative biomarkers of autonomic cardiac control. However, a comprehensive characterization of the brain-based central autonomic network (CAN) sustaining cardiovascular oscillations at rest is missing, limiting the interpretability of these ANS measures as biomarkers of cardiac control. We evaluated combined cardiac and fMRI data from 34 healthy subjects from the Human Connectome Project to detect brain areas functionally linked to cardiovagal modulation at rest. Specifically, we combined voxel-wise fMRI analysis with instantaneous heartbeat and spectral estimates obtained from inhomogeneous linear point-process models. We found exclusively negative associations between cardiac parasympathetic activity at rest and a widespread network including bilateral anterior insulae, right dorsal middle and left posterior insula, right parietal operculum, bilateral medial dorsal and ventrolateral posterior thalamic nuclei, anterior and posterior mid-cingulate cortex, medial frontal gyrus/pre-supplementary motor area. Conversely, we found only positive associations between instantaneous heart rate and brain activity in areas including frontopolar cortex, dorsomedial prefrontal cortex, anterior, middle and posterior cingulate cortices, superior frontal gyrus, and precuneus. Taken together, our data suggests a much wider involvement of diverse brain areas in the CAN at rest than previously thought, which could reflect a differential (both spatially and directionally) CAN activation according to the underlying task. Our insight into CAN activity at rest also allows the investigation of its impairment in clinical populations in which task-based fMRI is difficult to obtain (e.g., comatose patients or infants).

摘要

静息状态下自主神经系统 (ANS) 活动的外周测量已被广泛用作自主心脏控制的潜在生物标志物。然而,缺乏对维持静息时心血管波动的基于大脑的中枢自主神经网络 (CAN) 的全面描述,限制了这些 ANS 测量作为心脏控制的生物标志物的可解释性。我们评估了来自人类连接组计划的 34 名健康受试者的联合心脏和 fMRI 数据,以检测与静息时心脏迷走神经调节功能相关的大脑区域。具体来说,我们将体素水平 fMRI 分析与从非均匀线性点过程模型获得的即时心跳和频谱估计相结合。我们发现,静息时心脏副交感神经活动与一个广泛的网络之间存在显著的负相关,该网络包括双侧前岛叶、右侧背侧中岛叶和左侧后岛叶、右侧顶下小叶、双侧内侧背侧和腹外侧丘脑核、前扣带和后扣带皮质、内侧额回/辅助运动区。相反,我们发现即时心率与包括额极皮层、背内侧前额叶皮层、前扣带、中扣带和后扣带皮质、额上回和楔前叶在内的大脑区域之间仅存在正相关。总的来说,我们的数据表明,在静息状态下,CAN 涉及的大脑区域比以前认为的要广泛得多,这可能反映了根据潜在任务,CAN 激活的差异(无论是空间上还是方向上)。我们对静息状态下 CAN 活动的深入了解还允许研究其在难以获得基于任务的 fMRI 的临床人群(例如昏迷患者或婴儿)中的障碍。

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