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体内准稳态 CEST 后处理校正——用于肿瘤 MT 和 APT 效应的稳健定量的饱和时间和弛豫延迟校正的初步验证。

Preliminary demonstration of in vivo quasi-steady-state CEST postprocessing-Correction of saturation time and relaxation delay for robust quantification of tumor MT and APT effects.

机构信息

Institute of Science and Technology for Brain-Inspired Intelligence, Key Laboratory of Computational Neuroscience and Brain-Inspired Intelligence, Ministry of Education, Fudan University, Shanghai, China.

Key Laboratory of Smart Drug Delivery, Ministry of Education, School of Pharmacy, Fudan University, Shanghai, China.

出版信息

Magn Reson Med. 2021 Aug;86(2):943-953. doi: 10.1002/mrm.28764. Epub 2021 Mar 15.

Abstract

PURPOSE

Chemical exchange saturation transfer (CEST) MRI is versatile for measuring the dilute labile protons and microenvironment properties. However, the use of insufficiently long RF saturation duration (Ts) and relaxation delay (Td) may underestimate the CEST measurement. This study proposed a quasi-steady-state (QUASS) CEST analysis for robust CEST quantification.

METHODS

The CEST signal evolution was modeled as a function of the longitudinal relaxation rate during Td and spin-lock relaxation rate during Ts, from which the QUASS-CEST effect is derived. Numerical simulation and in vivo rat glioma MRI experiments were conducted at 11.7 T to compare the apparent and QUASS-CEST results obtained under different Ts/Td of 2 seconds/2 seconds and 4 seconds/4 seconds. Magnetization transfer and amide proton transfer effects were resolved using a multipool Lorentzian fitting and evaluated in contralateral normal tissue and tumor regions.

RESULTS

The simulation showed the dependence of the apparent CEST effect on Ts and Td, and such reliance was mitigated with the QUASS algorithm. Animal experiment results showed that the apparent magnetization transfer and amide proton transfer effects and their contrast between contralateral normal tissue and tumor regions increased substantially with Ts and Td. In comparison, the QUASS magnetization transfer and amide proton transfer effects and their difference between contralateral normal tissue and tumor exhibited little dependence on Ts and Td. In addition, the apparent magnetization transfer and amide proton transfer were significantly smaller than the corresponding QUASS indices (P < .05).

CONCLUSION

The QUASS-CEST algorithm enables robust CEST quantification and offers a straightforward approach to standardize CEST experiments.

摘要

目的

化学交换饱和传递(CEST)MRI 可用于测量稀有的易变质子和微环境特性,功能多样。然而,RF 饱和时间(Ts)和弛豫延迟(Td)不足可能会低估 CEST 测量值。本研究提出了一种准稳态(QUASS)CEST 分析方法,用于稳健的 CEST 定量。

方法

CEST 信号的演化被建模为 Td 期间的纵向弛豫率和 Ts 期间的自旋锁定弛豫率的函数,由此得出 QUASS-CEST 效应。在 11.7T 下进行数值模拟和大鼠脑胶质瘤 MRI 实验,比较不同 Ts/Td(2 秒/2 秒和 4 秒/4 秒)下获得的表观和 QUASS-CEST 结果。采用多池洛伦兹拟合来分辨磁化转移和酰胺质子转移效应,并在对侧正常组织和肿瘤区域进行评估。

结果

模拟结果表明,表观 CEST 效应依赖于 Ts 和 Td,而 QUASS 算法减轻了这种依赖性。动物实验结果表明,表观磁化转移和酰胺质子转移效应及其在对侧正常组织和肿瘤之间的对比随着 Ts 和 Td 的增加而显著增加。相比之下,QUASS 磁化转移和酰胺质子转移效应及其在对侧正常组织和肿瘤之间的差异对 Ts 和 Td 的依赖性较小。此外,表观磁化转移和酰胺质子转移明显小于相应的 QUASS 指数(P<0.05)。

结论

QUASS-CEST 算法可实现稳健的 CEST 定量,并提供了一种标准化 CEST 实验的简单方法。

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