松弛法
磁铁
磁共振成像
生物医学工程
核磁共振
材料科学
物理
医学
放射科
自旋回波
量子力学
作者
Dion G. Thomas,Yu‐Chieh Tzeng,Petrik Galvosas,Freya G. Harrison,Mary J. Berry,Paul D. Teal,Sean Galvin,Sergei Obruchkov
出处
期刊:IEEE Transactions on Biomedical Engineering
[Institute of Electrical and Electronics Engineers]
日期:2023-02-01
卷期号:70 (2): 671-680
被引量:1
标识
DOI:10.1109/tbme.2022.3200626
摘要
We have developed a single-sided magnet system that allows Magnetic Resonance relaxation and diffusion parameters to be measured.A single-sided magnet system has been developed, using an array of permanent magnets. The magnet positions are optimised to produce a B0 magnetic field with a spot that is relatively homogenous and can project into a sample. NMR relaxometry experiments are used to measure quantitative parameters such as T2, T1 and apparent diffusion coefficient (ADC) on samples on the benchtop. To explore preclinical application, we test whether it can detect changes during acute global cerebral hypoxia in an ovine model.The magnet produces a 0.2 T field projected into the sample. Measurements of benchtop samples show that it can measure T1, T2 and ADC, producing trends and values that are in line with literature measurements. In-vivo studies show a decrease in T2 during cerebral hypoxia that recovers following normoxia.The single-sided MR system has the potential to allow non-invasive measurements of the brain. We also demonstrate that it can operate in a pre-clinical environment, allowing T2 to be monitored during brain tissue hypoxia.MRI is a powerful technique for non-invasive diagnosis in the brain, but its application has been limited by the requirements for magnetic field strength and homogeneity that imaging methods have. The technology described in this study provides a portable alternative to acquiring clinically significant MR parameters without the need for traditional imaging equipment.
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