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Off-resonance correction for pseudo-continuous arterial spin labeling using the optimized encoding scheme

机译:使用优化的编码方案进行伪连续动脉旋转标签的偏振校正

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Pseudo-continuous arterial spin labeling (PCASL) MRI has become a popular tool for non-invasive perfusion imaging and angiography. However, it suffers from sensitivity to off-resonance effects within the labeling plane, which can be exacerbated at high field or in the presence of metallic implants, leading to spatially varying signal loss and cerebral blood flow underestimation. In this work we propose a prospective correction technique based on the optimized encoding scheme, which allows the rapid calculation of transverse gradient blips and RF phase modulations that best cancel phase offsets due to off-resonance at the locations of the feeding arteries within the labeling plane. This calculation is based upon a rapidly acquired single-slice fieldmap and is applicable to any number and arrangement of arteries. In addition, this approach is applicable to both conventional PCASL and a vessel-selective variant known as vessel-encoded PCASL (VEPCASL). Through simulations and experiments in healthy volunteers it was shown that in the presence of off-resonance effects a strong bias in the strength of the perfusion signal across vascular territories can be introduced, the signal-to-noise ratio (SNR) efficiency of PCASL and VEPCASL can be severely compromised (similar to 40% reduction in vivo), and that vessel-selective signal in VEPCASL can be incorrectly assigned. Distortion of the spatial regions placed in the label or control conditions in the presence of off-resonance effects was confirmed in phantom experiments. The application of the proposed correction restored SNR efficiency to levels present in the absence of off-resonance effects and corrected errors in the vascular territory maps derived from VEPCASL. Due to the rapid nature of the required calculations and fieldmap acquisition, this approach could be inserted into protocols with minimal effect on the total scan time.
机译:伪连续动脉旋转标记(PCASL)MRI已成为非侵入性灌注成像和血管造影的流行工具。然而,它受到标记平面内的偏离共振效应的敏感性,其可以在高场或金属植入物存在下加剧,从而导致空间变化的信号损失和脑血流量低估。在这项工作中,我们提出了一种基于优化编码方案的预期校正技术,这允许横向梯度漏分和RF相位调制的快速计算,其由于标签平面内的送料动脉位置处的偏离谐振而最佳取消相位偏移。该计算基于快速获取的单切片场图,并且适用于动脉的任何数量和排列。此外,这种方法适用于常规PCASL和称为血管编码PCASL(VEPCASL)的血管选择性变体。通过在健康志愿者的模拟和实验中,表明,在偏移的情况下,可以引入血管领域的灌注信号强度强度的强烈偏差,PCASL的信噪比(SNR)效率VEPCASL可以严重受损(类似于40%的体内减少),并且可以错误地分配VEPCASL中的船舶选择性信号。在Phantom实验中确认了在存在偏离效应存在下的标签或控制条件下的空间区域的变形。所提出的校正的应用恢复了SNR效率,在没有偏离vepcasl的血管围岩地图中没有偏离共振效应和校正误差的级别。由于所需的计算和现场图采集的快速性,可以将这种方法插入到总扫描时间的最小效果的协议中。

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