School of Biomedical Engineering, Guangdong Provincial Key Laboratory of Medical Image Processing, Key Laboratory of Mental Health of the Ministry of Education, Southern Medical University, Guangzhou, China; Institute of Neuroscience, CAS Center for Excellence in Brain Sciences and Intelligence Technology, Chinese Academy of Sciences, Shanghai, China.
Institute of Neuroscience, CAS Center for Excellence in Brain Sciences and Intelligence Technology, Chinese Academy of Sciences, Shanghai, China.
Neuroimage. 2019 Oct 15;200:405-413. doi: 10.1016/j.neuroimage.2019.07.006. Epub 2019 Jul 4.
Task based and resting state fMRI has been widely utilized to study brain functions. As the foundation of fMRI, the underlying neural basis of the BOLD signal has been extensively studied, but the detailed mechanism remains elusive, particularly during the resting state. To examine the neurovascular coupling, it is important to simultaneously record neural and vascular signals. Here we developed a novel setup of camera based, scalable simultaneous calcium fiber photometry and fMRI in rats. Using this setup, we recorded calcium signals of superior colliculus (SC) and lateral geniculate nucleus (LGN) and fMRI simultaneously during visual stimulation and the resting state. Our results revealed robust, region-specific coupling between calcium and BOLD signals in the task state and weaker, whole brain correlation in the resting state. Interestingly, the spatial specificity of such correlation in the resting state was improved upon regression of white matter, ventricle signals and global signals in fMRI data. Overall, our results suggest differential coupling of calcium and BOLD signals for subcortical regions between evoked and resting states, and the coupling relationship in the resting state was related with resting state BOLD preprocessing strategies.
任务态和静息态 fMRI 已被广泛用于研究大脑功能。作为 fMRI 的基础,BOLD 信号的潜在神经基础已被广泛研究,但详细机制仍不清楚,特别是在静息状态下。为了研究神经血管耦合,同时记录神经和血管信号非常重要。在这里,我们开发了一种新型的基于相机的大鼠钙光纤光度法和 fMRI 可扩展同步记录装置。使用该装置,我们在视觉刺激和静息状态下同时记录了上丘 (SC) 和外侧膝状体 (LGN) 的钙信号和 fMRI。我们的结果显示,在任务状态下,钙信号和 BOLD 信号之间存在强大的、具有区域特异性的耦合,而在静息状态下,耦合较弱,且与全脑相关。有趣的是,通过对 fMRI 数据中的白质、脑室信号和全局信号进行回归,静息状态下这种相关性的空间特异性得到了提高。总的来说,我们的结果表明,在诱发和静息状态下,皮质下区域的钙和 BOLD 信号的耦合存在差异,静息状态下的耦合关系与静息状态 BOLD 预处理策略有关。