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弛豫校正的大分子模型可在 9.4T 下测定人脑代谢物的 H 纵向 T -弛豫时间和浓度。

Relaxation-corrected macromolecular model enables determination of H longitudinal T -relaxation times and concentrations of human brain metabolites at 9.4T.

机构信息

High-Field Magnetic Resonance, Max Planck Institute for Biological Cybernetics, Tübingen, Germany.

IMPRS for Cognitive & Systems Neuroscience, Tübingen, Germany.

出版信息

Magn Reson Med. 2022 Jan;87(1):33-49. doi: 10.1002/mrm.28958. Epub 2021 Aug 10.

Abstract

PURPOSE

Ultrahigh field MRS has improved characterization of the neurochemical profile. To compare results obtained at 9.4T to those from lower field strengths, it is of interest to quantify the concentrations of metabolites measured. Thus, measuring T -relaxation times is necessary to correct for T -weighting that occurs in acquisitions for single-voxel spectroscopy and spectroscopic imaging. A macromolecule (MM) simulation model was developed to fit MM contributions to the short TE inversion series used to measure T -relaxation times.

METHODS

An inversion series with seven time points was acquired with metabolite-cycled STEAM to estimate T -relaxation times of metabolites. A short TE was employed in this study to retain signals from metabolites with short T -relaxation times and J-couplings. The underlying macromolecule spectrum was corrected by developing a sequence-specific, relaxation-corrected simulated MM model. Quantification of metabolite peaks was performed using internal water referencing and relaxation corrections.

RESULTS

T -relaxation times for metabolites range from approximately 750 to approximately 2000 ms and approximately 1000 to approximately 2400 ms in gray matter (GM)- and white matter (WM)- rich voxels, respectively. Quantification of metabolites was compared between GM and WM voxels, as well as between results that used a simulated MM spectrum against those that used an experimentally acquired MM spectrum. Metabolite concentrations are reported in mmol/kg quantities.

CONCLUSION

T -relaxation times are reported for nonsinglet resonances for the first time at 9.4T by use of a MM simulation model to account for contributions from the MM spectrum. In addition to T -relaxation times, quantification results of metabolites from GM- and WM-rich voxels are reported.

摘要

目的

超高场 MRS 提高了神经化学特征的描述能力。为了将在 9.4T 获得的结果与较低场强下的结果进行比较,量化测量代谢物的浓度是很有意义的。因此,测量 T -弛豫时间对于校正单体素波谱和波谱成像采集过程中的 T -权重是必要的。开发了一种大分子(MM)模拟模型,以拟合 MM 对用于测量 T -弛豫时间的短 TE 反转系列的贡献。

方法

使用代谢物循环 STEAM 采集具有七个时间点的反转序列,以估计代谢物的 T -弛豫时间。本研究采用短 TE,以保留具有短 T -弛豫时间和 J 耦合的代谢物的信号。通过开发序列特异性、弛豫校正的模拟 MM 模型来校正潜在的大分子谱。使用内部水参考和弛豫校正来量化代谢物峰的定量。

结果

代谢物的 T -弛豫时间在灰质(GM)和白质(WM)丰富的体素中分别约为 750 至约 2000 毫秒和约 1000 至约 2400 毫秒。在 GM 和 WM 体素之间以及在使用模拟 MM 谱和使用实验获得的 MM 谱之间比较了代谢物的定量结果。代谢物浓度以 mmol/kg 为单位报告。

结论

首次使用 MM 模拟模型报告了 9.4T 下非单峰共振的 T -弛豫时间,以解释 MM 谱的贡献。除了 T -弛豫时间外,还报告了 GM 和 WM 丰富体素中代谢物的定量结果。

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