与电子共舞:时域和连续波在体电磁共振成像。

Sankaran Subramanian, Murali C Krishna
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引用次数: 10

摘要

利用电子顺磁共振成像(EPRI)对生命系统中不成对电子的分布以及这种成像过程的功能和潜在诊断维度进行成像的进展,从其起源追溯,重点是我们自己的工作。EPR成像的重要性源于这样一个事实,即许多顺磁探针显示出氧依赖的光谱展宽。体内氧浓度的评估是放射肿瘤学治疗计划和监测治疗结果的重要因素。窄线四烷基甲基基生物相容性自旋探针的出现使射频时域EPRI的发展成为可能。时域EPRI中的光谱信息可以通过生成T(2)*或T(2)加权图像的时间序列来实现。连续波成像技术的进步导致了旋转梯度成像、最近的直接检测快速扫描以及三者的结合。采用动态核极化(Overhauser效应)的极低场MRI也被用于监测肿瘤体内缺氧和再氧合。我们也一直在使用特殊设计的谐振器组件对300 MHz的小鼠肿瘤模型进行MRI和时域EPRI的共同配准。打个比方说,在静止和旋转梯度存在的情况下,利用磁共振绘制不成对电子分布的映射并揭示光谱特征,实际上是“与(不成对的)电子共舞”。
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DANCING WITH THE ELECTRONS: TIME-DOMAIN AND CW IN VIVO EPR IMAGING.

The progress in the development of imaging the distribution of unpaired electrons in living systems and the functional and the potential diagnostic dimensions of such an imaging process, using Electron Paramagnetic Resonance Imaging (EPRI), is traced from its origins with emphasis on our own work. The importance of EPR imaging stems from the fact that many paramagnetic probes show oxygen dependent spectral broadening. Assessment of in vivo oxygen concentration is an important factor in radiation oncology in treatment-planning and monitoring treatment-outcome. The emergence of narrow-line trairylmethyl based, bio-compatible spin probes has enabled the development of radiofrequency time-domain EPRI. Spectral information in time-domain EPRI can be achieved by generating a time sequence of T(2)* or T(2) weighted images. Progress in CW imaging has led to the use of rotating gradients, more recently rapid scan with direct detection, and a combination of all the three. Very low field MRI employing Dynamic Nuclear polarization (Overhauser effect) is also employed for monitoring tumor hypoxia, and re-oxygenation in vivo. We have also been working on the co-registration of MRI and time domain EPRI on mouse tumor models at 300 MHz using a specially designed resonator assembly. The mapping of the unpaired electron distribution and unraveling the spectral characteristics by using magnetic resonance in presence of stationary and rotating gradients in indeed 'dancing with the (unpaired) electrons', metaphorically speaking.

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