Just Nathalie
Danish Research Centre for Magnetic Resonance, Copenhagen University Hospital, Copenhagen, Denmark.
Front Neurosci. 2024 Sep 9;18:1433468. doi: 10.3389/fnins.2024.1433468. eCollection 2024.
This study aimed to characterize blood oxygen level-dependent (BOLD) effects in proton magnetic resonance (H-MR) spectra obtained during optogenetic activation of the rat forelimb cortex to correct and estimate the accurate changes in metabolite concentration.
For a more comprehensive understanding of BOLD effects detected with functional magnetic resonance spectroscopy (fMRS) and to optimize the correction method, a 1 Hz line-narrowing effect was simulated. Then, proton functional magnetic resonance spectroscopy (H-fMRS) data acquired using stimulated echo acquisition mode (STEAM) at 9.4T in rats ( = 8) upon optogenetic stimulation of the primary somatosensory cortex were utilized. The data were analyzed using MATLAB routines and LCModel. Uncorrected and corrected H-MR spectra from the simulated and data were quantified and compared. BOLD-corrected difference spectra were also calculated and analyzed. Additionally, the effects of stimulated and non-stimulated water on the quantification of metabolite concentration swere investigated.
Significant mean increases in water and N-acetylaspartate (NAA) peak heights (+1.1% and +4.5%, respectively) were found to be accompanied by decreased linewidths (-0.5 Hz and -2.8%) upon optogenetic stimulation. These estimates were used for further defining an accurate line-broadening (lb) factor. The usage of a non-data-driven lb introduced false-positive errors in the metabolite concentration change estimates, thereby altering the specificity of the findings. The water and metabolite BOLD contributions were separated using different water scalings within LCModel.
The linewidth-matching procedure using a precise lb factor remains the most effective approach for accurately quantifying small (±0.3 μmol/g) metabolic changes in H-fMRS studies. A simple and preliminary compartmentation of BOLD effects was proposed, but it will require validation.
本研究旨在表征在对大鼠前肢皮层进行光遗传学激活期间获得的质子磁共振(H-MR)谱中的血氧水平依赖(BOLD)效应,以校正和估计代谢物浓度的准确变化。
为了更全面地理解功能磁共振波谱(fMRS)检测到的BOLD效应并优化校正方法,模拟了1 Hz的线宽变窄效应。然后,利用在9.4T下采用刺激回波采集模式(STEAM)在大鼠(n = 8)的初级体感皮层进行光遗传学刺激时获取的质子功能磁共振波谱(H-fMRS)数据。使用MATLAB程序和LCModel对数据进行分析。对模拟数据和实验数据的未校正和校正后的H-MR谱进行定量和比较,并计算和分析BOLD校正后的差异谱。此外,还研究了受刺激水和未受刺激水对代谢物浓度定量的影响。
发现在光遗传学刺激时,水和N-乙酰天门冬氨酸(NAA)峰高显著平均增加(分别为+1.1%和+4.5%),同时线宽减小(-0.5 Hz和-2.8%)。这些估计值用于进一步确定准确的线宽展宽(lb)因子。使用非数据驱动的lb会在代谢物浓度变化估计中引入假阳性误差,从而改变研究结果的特异性。在LCModel中使用不同的水标度来分离水和代谢物的BOLD贡献。
使用精确的lb因子进行线宽匹配程序仍然是在H-fMRS研究中准确定量小(±0.3 μmol/g)代谢变化的最有效方法。提出了一种简单且初步的BOLD效应分区方法,但需要进行验证。