在表观扩散系数定义的病变范围内确定缺血性卒中的T2弛豫时间和卒中发作关系。一种独立于用户的方法,用于量化中风对人脑的影响。

IF 0.3 Q4 SPECTROSCOPY Biomedical Spectroscopy and Imaging Pub Date : 2019-07-09 DOI:10.3233/BSI-190185
Michael J. Knight, Robin A. Damion, Bryony L. McGarry, R. Bosnell, K. Jokivarsi, O. Gröhn, P. Jezzard, G. Harston, D. Carone, J. Kennedy, S. El-Tawil, Jennifer Elliot, K. Muir, P. Clatworthy, R. Kauppinen
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引用次数: 3

摘要

背景与目的在超急性缺血性脑卒中中,脑水T2随时间增加。量化这种变化可能是组织损伤程度和发病时间的信息。我们的目的是开发一种用户无偏的方法来测量脑缺血对T2的影响,以研究人类急性脑卒中病变的脑卒中发病时间依赖性。方法对6只大鼠进行永久性中脑闭塞以诱导局灶性缺血,并在症状出现后9小时内招募连续的急性脑卒中患者(n=38)。获得T1加权结构、T2弛豫测量和表观扩散系数(ADC)的扩散MRI。缺血性病变被定义为ADC降低的区域。病变和对侧非缺血性对照区之间的中位T2差(ΔT2)通过新开发的球面参考法确定,并将数据与镜像参考法获得的数据进行比较。比较了两种方法之间的线性回归和受试者操作特性(ROC)。结果大鼠脑缺血的ΔT2在前6小时内线性增加1.9±0.8 ms/h,通过球形参考法测定。在患者中,ΔT2在病变中线性增加1.6±1.4和1.9±0.9 ms/h,分别通过镜像参考和球面参考方法确定。ROC分析在球面和镜面参考法的曲线下分别产生0.83和0.71的面积。结论球形参考方法的数据显示,在大鼠和人类患者队列中,缺血性病变的中位T2增加与中风发作时间相关,这为在临床中使用该方法作为计时工具提供了可能性。
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Determining T2 relaxation time and stroke onset relationship in ischaemic stroke within apparent diffusion coefficient-defined lesions. A user-independent method for quantifying the impact of stroke in the human brain.
Background and Objective In hyperacute ischaemic stroke, T2 of cerebral water increases with time. Quantifying this change may be informative of the extent of tissue damage and onset time. Our objective was to develop a user-unbiased method to measure the effect of cerebral ischaemia on T2 to study stroke onset time-dependency in human acute stroke lesions. Methods Six rats were subjected to permanent middle cerebral occlusion to induce focal ischaemia, and a consecutive cohort of acute stroke patients (n = 38) were recruited within 9 hours from symptom onset. T1-weighted structural, T2 relaxometry, and diffusion MRI for apparent diffusion coefficient (ADC) were acquired. Ischaemic lesions were defined as regions of lowered ADC. The median T2 difference (ΔT2) between lesion and contralateral non-ischaemic control region was determined by the newly-developed spherical reference method, and data compared to that obtained by the mirror reference method. Linear regressions and receiver operating characteristics (ROC) were compared between the two methods. Results ΔT2 increases linearly in rat brain ischaemia by 1.9 ± 0.8 ms/h during the first 6 hours, as determined by the spherical reference method. In patients, ΔT2 linearly increases by 1.6 ± 1.4 and 1.9 ± 0.9 ms/h in the lesion, as determined by the mirror reference and spherical reference method, respectively. ROC analyses produced areas under the curve of 0.83 and 0.71 for the spherical and mirror reference methods, respectively. Conclusions Data from the spherical reference method showed that the median T2 increase in the ischaemic lesion is correlated with stroke onset time in a rat as well as in a human patient cohort, opening the possibility of using the approach as a timing tool in clinics.
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期刊介绍: Biomedical Spectroscopy and Imaging (BSI) is a multidisciplinary journal devoted to the timely publication of basic and applied research that uses spectroscopic and imaging techniques in different areas of life science including biology, biochemistry, biotechnology, bionanotechnology, environmental science, food science, pharmaceutical science, physiology and medicine. Scientists are encouraged to submit their work for publication in the form of original articles, brief communications, rapid communications, reviews and mini-reviews. Techniques covered include, but are not limited, to the following: • Vibrational Spectroscopy (Infrared, Raman, Teraherz) • Circular Dichroism Spectroscopy • Magnetic Resonance Spectroscopy (NMR, ESR) • UV-vis Spectroscopy • Mössbauer Spectroscopy • X-ray Spectroscopy (Absorption, Emission, Photoelectron, Fluorescence) • Neutron Spectroscopy • Mass Spectroscopy • Fluorescence Spectroscopy • X-ray and Neutron Scattering • Differential Scanning Calorimetry • Atomic Force Microscopy • Surface Plasmon Resonance • Magnetic Resonance Imaging • X-ray Imaging • Electron Imaging • Neutron Imaging • Raman Imaging • Infrared Imaging • Terahertz Imaging • Fluorescence Imaging • Near-infrared spectroscopy.
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