Unlocking near-whole-brain, layer-specific functional connectivity with 3D VAPER fMRI

Y. Chai, A. T. Morgan, Hua Xie, Linqing Li, Laurentius Huber, Peter A. Bandettini, Bradley P. Sutton
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Abstract

Abstract Neuroscientific investigations at the cortical layer level not only enrich our knowledge of cortical micro-circuitry in vivo, but also help bridge the gap between macroscopic (e.g., conventional fMRI, behavior) and microscopic (e.g., extracellular recordings) measures of brain function. While laminar fMRI studies have extensively explored the evoked cortical response in multiple subsystems, the investigation of the laminar component of functional networks throughout the entire brain has been hindered due to constraints in high-resolution layer-fMRI imaging methodologies. Our study addresses this gap by introducing an innovative layer-specific 3D VAPER (integrated VASO and Perfusion contrast) technique in humans at 7 T, for achieving fMRI at high resolution (800 µm isotropic), high specificity (not biased toward unspecific vein signals as BOLD), high sensitivity (robust measurement at submillimeter resolution), high spatial accuracy (analysis in native fMRI space), near-whole-brain coverage (cerebellum not included), and eventually extending layer fMRI to more flexible connectivity-based experiment designs. To demonstrate its effectiveness, we collected 0.8-mm isotropic fMRI data during both resting-state and movie-watching scenarios, established a layer-specific functional connectivity analysis pipeline from individual to group levels, and explored the role of different cortical layers in maintaining functional networks. Our results revealed distinct layer-specific connectivity patterns within the default mode, somatomotor, and visual networks, as well as at the global hubness level. The cutting-edge technique and insights derived from our exploration into near-whole-brain layer-specific connectivity provide unparalleled understanding of the organization principles and underlying mechanisms governing communication between different brain regions.
利用 3D VAPER fMRI 解锁近全脑、特定层的功能连接性
摘要 在皮层水平进行的神经科学研究不仅丰富了我们对体内皮层微电路的了解,而且有助于弥合大脑功能的宏观测量(如传统的 fMRI、行为学)与微观测量(如细胞外记录)之间的差距。虽然层状 fMRI 研究已广泛探索了多个子系统的诱发皮层反应,但由于高分辨率层状 fMRI 成像方法的限制,对整个大脑功能网络的层状成分的研究一直受到阻碍。我们的研究针对这一缺陷,在 7 T 下的人体中引入了创新性的特定层三维 VAPER(集成 VASO 和灌注对比)技术,以实现高分辨率(800 微米各向同性)、高特异性(不偏向 BOLD 等非特异性静脉信号)、高灵敏度(亚毫米分辨率下的稳健测量)、高空间精度(在原生 fMRI 空间中进行分析)、近乎全脑覆盖(不包括小脑)的 fMRI,并最终将层 fMRI 扩展到更灵活的基于连接性的实验设计中。为了证明其有效性,我们收集了静息状态和观影场景下的 0.8 毫米各向同性 fMRI 数据,建立了从个体到群体层面的特定层功能连通性分析管道,并探索了不同皮层在维持功能网络中的作用。我们的研究结果表明,在默认模式、躯体运动和视觉网络中,以及在全局枢纽水平上,都存在不同的特定层连接模式。我们对近全脑特定层连接性的探索所采用的前沿技术和得出的见解,为我们了解不同脑区之间沟通的组织原理和潜在机制提供了无与伦比的认识。
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