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在视觉刺激下对小鼠进行高时间分辨率功能磁共振波谱成像。

High temporal resolution functional magnetic resonance spectroscopy in the mouse upon visual stimulation.

机构信息

Champalimaud Research, Champalimaud Centre for the Unknown, Av. Brasilia, Lisbon 1400-038, Portugal.

Champalimaud Research, Champalimaud Centre for the Unknown, Av. Brasilia, Lisbon 1400-038, Portugal.

出版信息

Neuroimage. 2021 Jul 1;234:117973. doi: 10.1016/j.neuroimage.2021.117973. Epub 2021 Mar 21.

Abstract

Functional magnetic resonance spectroscopy (fMRS) quantifies metabolic variations upon presentation of a stimulus and can therefore provide complementary information compared to activity inferred from functional magnetic resonance imaging (fMRI). Improving the temporal resolution of fMRS can be beneficial to clinical applications where detailed information on metabolism can assist the characterization of brain function in healthy and sick populations as well as for neuroscience applications where information on the nature of the underlying activity could be potentially gained. Furthermore, fMRS with higher temporal resolution could benefit basic studies on animal models of disease and for investigating brain function in general. However, to date, fMRS has been limited to sustained periods of activation which risk adaptation and other undesirable effects. Here, we performed fMRS experiments in the mouse with high temporal resolution (12 s), and show the feasibility of such an approach for reliably quantifying metabolic variations upon activation. We detected metabolic variations in the superior colliculus of mice subjected to visual stimulation delivered in a block paradigm at 9.4 T. A robust modulation of glutamate is observed on the average time course, on the difference spectra and on the concentration distributions during active and recovery periods. A general linear model is used for the statistical analysis, and for exploring the nature of the modulation. Changes in NAAG, PCr and Cr levels were also detected. A control experiment with no stimulation reveals potential metabolic signal "drifts" that are not correlated with the functional activity, which should be taken into account when analyzing fMRS data in general. Our findings are promising for future applications of fMRS.

摘要

功能磁共振波谱(fMRS)量化了刺激呈现时的代谢变化,因此可以提供与功能磁共振成像(fMRI)推断的活动相比的补充信息。提高 fMRS 的时间分辨率对于临床应用是有益的,因为代谢的详细信息可以帮助描述健康和患病人群的大脑功能,以及对于神经科学应用,因为可以获得关于潜在活动性质的信息。此外,具有更高时间分辨率的 fMRS 可以受益于疾病动物模型的基础研究,并用于一般研究大脑功能。然而,迄今为止,fMRS 一直受到激活持续时间的限制,这可能会导致适应和其他不良影响。在这里,我们在小鼠中进行了具有高时间分辨率(12 秒)的 fMRS 实验,并展示了这种方法可靠地量化激活时代谢变化的可行性。我们在 9.4 T 下以块范式检测到视觉刺激下小鼠上丘的代谢变化。在平均时程、差谱和活跃期和恢复期的浓度分布上观察到谷氨酸的稳健调制。使用广义线性模型进行统计分析,并探索调制的性质。还检测到 NAAG、PCr 和 Cr 水平的变化。没有刺激的对照实验揭示了与功能活动不相关的潜在代谢信号“漂移”,在一般分析 fMRS 数据时应考虑这些漂移。我们的发现为未来的 fMRS 应用提供了希望。

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