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A proof-of-concept study for developing integrated two-photon microscopic and magnetic resonance imaging modality at ultrahigh field of 16.4 tesla

机译:在16.4特斯拉超高场开发双光子显微和磁共振成像集成模式的概念验证研究

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摘要

Functional magnetic resonance imaging (fMRI) based on the blood oxygen level dependent (BOLD) contrast has gained a prominent position in neuroscience for imaging neuronal activity and studying effective brain connectivity under working state and functional connectivity at resting state. However, the fundamental questions in regards to fMRI technology: how the BOLD signal inferences the underlying microscopic neuronal activity and physiological changes and what is the ultimate specificity of fMRI for functional mapping of microcircuits, remain unanswered. The capability of simultaneous fMRI measurement and functional microscopic imaging in a live brain thus holds the key to link the microscopic and mesoscopic neural dynamics to the macroscopic brain activity at the central nervous system level. Here we report the first demonstration to integrate high-resolution two-photon fluorescence microscopy (TPM) with a 16.4 tesla MRI system, which proves the concept and feasibility for performing simultaneous high-resolution fMRI and TPM imaging at ultrahigh magnetic field.
机译:基于血氧水平依赖性(BOLD)对比的功能磁共振成像(fMRI)在神经科学中获得了显着地位,可用于成像神经元活动并研究工作状态下的有效大脑连通性和静止状态下的功能连通性。然而,有关fMRI技术的基本问题:BOLD信号如何推断潜在的微观神经元活动和生理变化,以及fMRI对微电路功能图的最终特异性是什么,仍未得到解答。因此,在活的大脑中同时进行fMRI测量和功能性显微成像的能力是将微观和中观神经动力学与中枢神经系统水平的宏观大脑活动联系起来的关键。在这里,我们报告了第一个将高分辨率双光子荧光显微镜(TPM)与16.4特斯拉MRI系统集成的演示,它证明了在超高磁场下同时执行高分辨率fMRI和TPM成像的概念和可行性。

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