Fujita Shohei, Cencini Matteo, Buonincontri Guido, Takei Naoyuki, Schulte Rolf F, Fukunaga Issei, Uchida Wataru, Hagiwara Akifumi, Kamagata Koji, Hagiwara Yasuhiro, Matsuyama Yutaka, Abe Osamu, Tosetti Michela, Aoki Shigeki
Department of Radiology, Juntendo University, Tokyo, Japan.
Department of Radiology, The University of Tokyo, Tokyo, Japan.
Cereb Cortex. 2023 Jan 5;33(3):729-739. doi: 10.1093/cercor/bhac096.
Relaxation times and morphological information are fundamental magnetic resonance imaging-derived metrics of the human brain that reflect the status of the underlying tissue. Magnetic resonance fingerprinting (MRF) enables simultaneous acquisition of T1 and T2 maps inherently aligned to the anatomy, allowing whole-brain relaxometry and morphometry in a single scan. In this study, we revealed the feasibility of 3D MRF for simultaneous brain structure-wise morphometry and relaxometry. Comprehensive test-retest scan analyses using five 1.5-T and three 3.0-T systems from a single vendor including different scanner types across 3 institutions demonstrated that 3D MRF-derived morphological information and relaxation times are highly repeatable at both 1.5 T and 3.0 T. Regional cortical thickness and subcortical volume values showed high agreement and low bias across different field strengths. The ability to acquire a set of regional T1, T2, thickness, and volume measurements of neuroanatomical structures with high repeatability and reproducibility facilitates the ability of longitudinal multicenter imaging studies to quantitatively monitor changes associated with underlying pathologies, disease progression, and treatments.
弛豫时间和形态学信息是磁共振成像衍生的反映人脑潜在组织状态的基本指标。磁共振指纹识别(MRF)能够同时采集与解剖结构固有对齐的T1和T2图谱,从而在单次扫描中实现全脑弛豫测量和形态测量。在本研究中,我们揭示了三维MRF用于同时进行脑结构形态测量和弛豫测量的可行性。使用来自单一供应商的五个1.5T和三个3.0T系统(包括3个机构的不同扫描仪类型)进行的全面重测扫描分析表明,三维MRF衍生的形态学信息和弛豫时间在1.5T和3.0T时都具有高度可重复性。区域皮质厚度和皮质下体积值在不同场强下显示出高度一致性和低偏差。以高重复性和再现性获取一组神经解剖结构的区域T1、T2、厚度和体积测量值的能力,有助于纵向多中心成像研究定量监测与潜在病理、疾病进展和治疗相关的变化。