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梯度调制正电子发射断层扫描磁共振成像

Gradient-Modulated PETRA MRI.

作者信息

Kobayashi Naoharu, Goerke Ute, Wang Luning, Ellermann Jutta, Metzger Gregory J, Garwood Michael

机构信息

Center for Magnetic Resonance Research, Department of Radiology, University of Minnesota, MN, USA.

出版信息

Tomography. 2015 Dec;1(2):85-90. doi: 10.18383/j.tom.2015.00157.

Abstract

Image blurring due to off-resonance and fast T signal decay is a common issue in radial ultrashort echo time MRI sequences. One solution is to use a higher readout bandwidth, but this may be impractical for some techniques like pointwise encoding time reduction with radial acquisition (PETRA), which is a hybrid method of zero echo time and single point imaging techniques. Specifically, PETRA has severe specific absorption rate (SAR) and radiofrequency (RF) pulse peak power limitations when using higher bandwidths in human measurements. In this study, we introduce gradient modulation (GM) to PETRA to reduce image blurring artifacts while keeping SAR and RF peak power low. Tolerance of GM-PETRA to image blurring was evaluated in simulations and experiments by comparing with the conventional PETRA technique. We performed inner ear imaging of a healthy subject at 7T. GM-PETRA showed significantly less image blurring due to off-resonance and fast T signal decay compared to PETRA. In in vivo imaging, GM-PETRA nicely captured complex structures of the inner ear such as the cochlea and semicircular canals. Gradient modulation can improve the PETRA image quality and mitigate SAR and RF peak power limitations without special hardware modification in clinical scanners.

摘要

由于失谐和快速T信号衰减导致的图像模糊是径向超短回波时间MRI序列中的常见问题。一种解决方案是使用更高的读出带宽,但这对于某些技术(如采用径向采集的逐点编码时间减少技术(PETRA))可能不切实际,PETRA是零回波时间和单点成像技术的混合方法。具体而言,在人体测量中使用更高带宽时,PETRA存在严重的比吸收率(SAR)和射频(RF)脉冲峰值功率限制。在本研究中,我们将梯度调制(GM)引入PETRA,以减少图像模糊伪影,同时保持SAR和RF峰值功率较低。通过与传统PETRA技术比较,在模拟和实验中评估了GM-PETRA对图像模糊的耐受性。我们在7T下对一名健康受试者进行了内耳成像。与PETRA相比,GM-PETRA因失谐和快速T信号衰减导致的图像模糊明显更少。在体内成像中,GM-PETRA很好地捕捉到了内耳的复杂结构,如耳蜗和半规管。梯度调制可以在不对外科临床扫描仪进行特殊硬件修改的情况下提高PETRA图像质量并减轻SAR和RF峰值功率限制。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/8721/6030711/b58bc9ba5634/tom0021500160001.jpg

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