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多扫描仪磁共振波谱的标准化:ENIGMA联盟任务组的考量

Harmonization of multi-scanner magnetic resonance spectroscopy: ENIGMA consortium task group considerations.

作者信息

Harris Ashley D, Amiri Houshang, Bento Mariana, Cohen Ronald, Ching Christopher R K, Cudalbu Christina, Dennis Emily L, Doose Arne, Ehrlich Stefan, Kirov Ivan I, Mekle Ralf, Oeltzschner Georg, Porges Eric, Souza Roberto, Tam Friederike I, Taylor Brian, Thompson Paul M, Quidé Yann, Wilde Elisabeth A, Williamson John, Lin Alexander P, Bartnik-Olson Brenda

机构信息

Department of Radiology, University of Calgary, Calgary, AB, Canada.

Hotchkiss Brain Institute, Cumming School of Medicine, University of Calgary, Calgary, AB, Canada.

出版信息

Front Neurol. 2023 Jan 4;13:1045678. doi: 10.3389/fneur.2022.1045678. eCollection 2022.

Abstract

Magnetic resonance spectroscopy is a powerful, non-invasive, quantitative imaging technique that allows for the measurement of brain metabolites that has demonstrated utility in diagnosing and characterizing a broad range of neurological diseases. Its impact, however, has been limited due to small sample sizes and methodological variability in addition to intrinsic limitations of the method itself such as its sensitivity to motion. The lack of standardization from a data acquisition and data processing perspective makes it difficult to pool multiple studies and/or conduct multisite studies that are necessary for supporting clinically relevant findings. Based on the experience of the ENIGMA MRS work group and a review of the literature, this manuscript provides an overview of the current state of MRS data harmonization. Key factors that need to be taken into consideration when conducting both retrospective and prospective studies are described. These include (1) MRS acquisition issues such as pulse sequence, RF and B0 calibrations, echo time, and SNR; (2) data processing issues such as pre-processing steps, modeling, and quantitation; and (3) biological factors such as voxel location, age, sex, and pathology. Various approaches to MRS data harmonization are then described including meta-analysis, mega-analysis, linear modeling, ComBat and artificial intelligence approaches. The goal is to provide both novice and experienced readers with the necessary knowledge for conducting MRS data harmonization studies.

摘要

磁共振波谱学是一种强大的、非侵入性的定量成像技术,可用于测量脑代谢物,已证明其在诊断和表征多种神经系统疾病方面具有实用价值。然而,由于样本量小、方法学变异性以及该方法本身的内在局限性(如对运动的敏感性),其影响有限。从数据采集和数据处理的角度来看,缺乏标准化使得难以汇总多项研究和/或开展支持临床相关发现所需的多中心研究。基于ENIGMA MRS工作组的经验和文献综述,本文概述了MRS数据协调的现状。描述了在进行回顾性和前瞻性研究时需要考虑的关键因素。这些因素包括:(1)MRS采集问题,如脉冲序列、射频和B0校准、回波时间和信噪比;(2)数据处理问题,如预处理步骤、建模和定量;(3)生物学因素,如体素位置、年龄、性别和病理学。然后介绍了MRS数据协调的各种方法,包括荟萃分析、大型分析、线性建模、ComBat和人工智能方法。目标是为新手和有经验的读者提供进行MRS数据协调研究所需的知识。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/d2ed/9845632/fd99473800f2/fneur-13-1045678-g0001.jpg

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