在 3 和 7 T 条件下使用物理信息网络进行基于磁共振的电特性断层扫描。

IF 2.7 4区 医学 Q2 BIOPHYSICS NMR in Biomedicine Pub Date : 2024-08-01 Epub Date: 2024-03-04 DOI:10.1002/nbm.5137
Mengxuan Zheng, Feiyang Lou, Yiman Huang, Sihong Pan, Xiaotong Zhang
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引用次数: 0

摘要

磁共振电特性断层成像有望在体内无创定量检索电特性,为组织特征描述和病理诊断提供有价值的信息。然而,B1 测量精度、基础模型不准确导致的重建伪影以及严格的硬件/软件要求等因素阻碍了其临床应用。为了应对这些挑战,我们提出了一种新方法,旨在通过使用物理信息网络(PIN-wEPT),根据含水量图重建精确的高分辨率 EPs。所提出的方法利用了标准临床方案和临床上常规配备的传统多通道接收阵列,因此无需专门的射频序列/线圈配置。与原始的 wEPT 方法相比,该网络生成的精确含水量图有效消除了 B → 1 + $$ {\overrightarrow{B}}_1^{+} $$ 和 B → 1 - $$ {\overrightarrow{B}}_1^{-} $$ 的影响。通过将数据错配与亥姆霍兹方程得出的电动约束结合起来,得出了 $$。随后的回归分析在各类脑组织的含水量和 EPs 之间建立了广泛的关系。结果显示,正常脑组织的含水量归一化均方误差低于 1.0%,电导率低于 11.7%,介电常数重建低于 1.1%。此外,在 3 T 和 7 T 下对五名健康受试者进行的活体验证显示,白质、灰质和脑脊液的 EPs 值与经验值具有相当好的一致性。PIN-wEPT 方法的有效性、灵活性以及与当前磁共振成像扫描仪的兼容性均已得到证实,在未来的临床应用中大有可为。
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MR-based electrical property tomography using a physics-informed network at 3 and 7 T.

Magnetic resonance electrical propert tomography promises to retrieve electrical properties (EPs) quantitatively and non-invasively in vivo, providing valuable information for tissue characterization and pathology diagnosis. However, its clinical implementation has been hindered by, for example, B1 measurement accuracy, reconstruction artifacts resulting from inaccuracies in underlying models, and stringent hardware/software requirements. To address these challenges, we present a novel approach aimed at accurate and high-resolution EPs reconstruction based on water content maps by using a physics-informed network (PIN-wEPT). The proposed method utilizes standard clinical protocols and conventional multi-channel receive arrays that have been routinely equipped in clinical settings, thus eliminating the need for specialized RF sequence/coil configurations. Compared with the original wEPT method, the network generates accurate water content maps that effectively eliminate the influence of B 1 + and B 1 - by incorporating data mismatch with electrodynamic constraints derived from the Helmholtz equation. Subsequent regression analysis develops a broad relationship between water content and EPs across various types of brain tissue. A series of numerical simulations was conducted at 7 T to assess the feasibility and performance of the method, which encompassed four normal head models and models with tumorous tissues incorporated, and the results showed normalized mean square error below 1.0% in water content, below 11.7% in conductivity, and below 1.1% in permittivity reconstructions for normal brain tissues. Moreover, in vivo validations conducted over five healthy subjects at both 3 and 7 T showed reasonably good consistency with empirical EPs values across the white matter, gray matter, and cerebrospinal fluid. The PIN-wEPT method, with its demonstrated efficacy, flexibility, and compatibility with current MRI scanners, holds promising potential for future clinical application.

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来源期刊
NMR in Biomedicine
NMR in Biomedicine 医学-光谱学
CiteScore
6.00
自引率
10.30%
发文量
209
审稿时长
3-8 weeks
期刊介绍: NMR in Biomedicine is a journal devoted to the publication of original full-length papers, rapid communications and review articles describing the development of magnetic resonance spectroscopy or imaging methods or their use to investigate physiological, biochemical, biophysical or medical problems. Topics for submitted papers should be in one of the following general categories: (a) development of methods and instrumentation for MR of biological systems; (b) studies of normal or diseased organs, tissues or cells; (c) diagnosis or treatment of disease. Reports may cover work on patients or healthy human subjects, in vivo animal experiments, studies of isolated organs or cultured cells, analysis of tissue extracts, NMR theory, experimental techniques, or instrumentation.
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