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Frequency bandwidth extension by use of multiple Zeeman field offsets for electron spin-echo EPR oxygen imaging of large objects

机译:通过使用多个Zeeman场偏移扩展频率带宽来对大型物体进行电子自旋回波EPR氧成像

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摘要

Purpose: Electron spin-echo (ESE) oxygen imaging is a new and evolving electron paramagnetic resonance (EPR) imaging (EPRI) modality that is useful for physiological in vivo applications, such as EPR oxygen imaging (EPROI), with potential application to imaging of multicentimeter objects as large as human tumors. A present limitation on the size of the object to be imaged at a given resolution is the frequency bandwidth of the system, since the location is encoded as a frequency offset in ESE imaging. The authors’ aim in this study was to demonstrate the object size advantage of the multioffset bandwidth extension technique.Methods: The multiple-stepped Zeeman field offset (or simply multi-B) technique was used for imaging of an 8.5-cm-long phantom containing a narrow single line triaryl methyl compound (trityl) solution at the 250 MHz imaging frequency. The image is compared to a standard single-field ESE image of the same phantom.Results: For the phantom used in this study, transverse relaxation (T2e) electron spin-echo (ESE) images from multi-B acquisition are more uniform, contain less prominent artifacts, and have a better signal to noise ratio (SNR) compared to single-field T2e images.Conclusions: The multi-B method is suitable for imaging of samples whose physical size restricts the applicability of the conventional single-field ESE imaging technique.
机译:目的:电子自旋回波(ESE)氧成像是一种新的且不断发展的电子顺磁共振(EPR)成像(EPRI)方式,可用于体内生理应用,例如EPR氧成像(EPROI),有可能应用于成像像人类肿瘤一样大的多厘米物体。在给定分辨率下,要成像的对象大小的当前限制是系统的频率带宽,因为该位置在ESE成像中被编码为频偏。作者的目的是证明多偏移带宽扩展技术的物体尺寸优势。方法:采用多步塞曼场偏移(或简称为多B)技术对8.5厘米长的幻像进行成像。包含在250 MHz成像频率下的窄单线三芳基甲基化合物(trityl)溶液。将该图像与相同幻像的标准单场ESE图像进行比较。结果:对于本研究中使用的幻像,来自多次B采集的横向弛豫(T2e)电子自旋回波(ESE)图像更加均匀,包含与单场T2e图像相比,不那么突出的伪影更少,并且具有更好的信噪比(SNR)。结论:多重B方法适用于成像的样品,其物理尺寸限制了常规单场ESE成像的适用性技术。

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