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使用传统和频谱广义线性模型分析对长时间运动激活进行功能磁共振波谱分析。

Functional Magnetic Resonance Spectroscopy of Prolonged Motor Activation using Conventional and Spectral GLM Analyses.

作者信息

Morelli Maria, Dudzikowska Katarzyna, Deelchand Dinesh K, Quinn Andrew J, Mullins Paul G, Apps Matthew A J, Wilson Martin

机构信息

Centre for Human Brain Health and School of Psychology, University of Birmingham, Birmingham, UK.

Center for Magnetic Resonance Research and Department of Radiology, University of Minnesota Medical School, Minneapolis, MN, USA.

出版信息

bioRxiv. 2024 May 15:2024.05.15.594270. doi: 10.1101/2024.05.15.594270.

Abstract

BACKGROUND

Functional MRS (fMRS) is a technique used to measure metabolic changes in response to increased neuronal activity, providing unique insights into neurotransmitter dynamics and neuroenergetics. In this study we investigate the response of lactate and glutamate levels in the motor cortex during a sustained motor task using conventional spectral fitting and explore the use of a novel analysis approach based on the application of linear modelling directly to the spectro-temporal fMRS data.

METHODS

fMRS data were acquired at a field strength of 3 Tesla from 23 healthy participants using a short echo-time (28ms) semi-LASER sequence. The functional task involved rhythmic hand clenching over a duration of 8 minutes and standard MRS preprocessing steps, including frequency and phase alignment, were employed. Both conventional spectral fitting and direct linear modelling were applied, and results from participant-averaged spectra and metabolite-averaged individual analyses were compared.

RESULTS

We observed a 20% increase in lactate in response to the motor task, consistent with findings at higher magnetic field strengths. However, statistical testing showed some variability between the two averaging schemes and fitting algorithms. While lactate changes were supported by the direct spectral modelling approach, smaller increases in glutamate (2%) were inconsistent. Exploratory spectral modelling identified a 4% decrease in aspartate, aligning with conventional fitting and observations from prolonged visual stimulation.

CONCLUSION

We demonstrate that lactate dynamics in response to a prolonged motor task are observed using short-echo time semi-LASER at 3 Tesla, and that direct linear modelling of fMRS data is a useful complement to conventional analysis. Future work includes mitigating spectral confounds, such as scalp lipid contamination and lineshape drift, and further validation of our novel direct linear modelling approach through experimental and simulated datasets.

摘要

背景

功能磁共振波谱分析(fMRS)是一种用于测量因神经元活动增加而引起的代谢变化的技术,能为神经递质动力学和神经能量学提供独特的见解。在本研究中,我们使用传统的谱拟合方法研究了在持续运动任务期间运动皮层中乳酸和谷氨酸水平的变化,并探索了一种基于直接将线性模型应用于频谱 - 时间fMRS数据的新型分析方法。

方法

使用短回波时间(28毫秒)的半激光序列,在3特斯拉的场强下从23名健康参与者获取fMRS数据。功能任务包括持续8分钟的有节奏的手部握拳动作,并采用了标准的MRS预处理步骤,包括频率和相位对齐。同时应用了传统的谱拟合和直接线性建模方法,并比较了参与者平均谱和代谢物平均个体分析的结果。

结果

我们观察到运动任务导致乳酸增加了20%,这与在更高磁场强度下的研究结果一致。然而,统计测试表明两种平均方案和拟合算法之间存在一些差异。虽然直接谱建模方法支持乳酸的变化,但谷氨酸较小幅度的增加(2%)并不一致。探索性谱建模发现天冬氨酸减少了4%,这与传统拟合以及长时间视觉刺激的观察结果一致。

结论

我们证明了在3特斯拉场强下使用短回波时间半激光序列可以观察到长时间运动任务引起的乳酸动力学变化,并且fMRS数据的直接线性建模是对传统分析的有益补充。未来的工作包括减轻频谱干扰,如头皮脂质污染和线形漂移,并通过实验和模拟数据集进一步验证我们的新型直接线性建模方法。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/f122/11118477/7726f9c26da5/nihpp-2024.05.15.594270v1-f0001.jpg

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