Unit of Medical Physics, Azienda Ospedaliero-Universitaria Pisana, 56126 Pisa, Italy.
J Appl Clin Med Phys. 2010 Jul 12;11(4):3237. doi: 10.1120/jacmp.v11i4.3237.
In EPI-fMRI acquisitions, various readout bandwidth (BW) values are used as a function of gradients' characteristics of the MR scanner system. Echo spacing (ES) is another fundamental parameter of EPI-fMRI sequences, but the employed ES value is not usually reported in fMRI studies. Nyquist ghost is a typical EPI artifact that can degrade the overall quality of fMRI time series. In this work, the authors assessed the basic effect of BW and ES for two clinical 1.5 T MR scanner systems (scanner-A, scanner-B) on Nyquist ghost of gradient-echo EPI-fMRI sequences. BW range was: scanner-A, 1953-3906 Hz/pixel; scanner-B, 1220-2894 Hz/pixel. ES range was: scanner-A, scanner-B: 0.75-1.33 ms. The ghost-to-signal ratio of time series acquisition (GSRts) and drift of ghost-to-signal ratio (DRGSR) were measured in a water phantom. For both scanner-A (93% of variation) and scanner-B (102% of variation) the mean GSRts significantly increased with increasing BW. GSRts values of scanner-A did not significantly depended on ES. On the other hand, GSRts values of scanner-B significantly varied with ES, showing a downward trend (81% of variation) with increasing ES. In addition, a GSRts spike point at ES = 1.05 ms indicating a potential resonant effect was revealed. For both scanners, no significant effect of ES on DRGSR was revealed. DRGSR values of scanner-B did not significantly vary with BW, whereas DRGSR values of scanner-A significantly depended on BW showing an upward trend from negative to positive values with increasing BW. GSRts and DRGSR can significantly vary with BW and ES, and the specific pattern of variation may depend on gradients performances, EPI sequence calibrations and functional design of radiofrequency coil. Thus, each MR scanner system should be separately characterized. In general, the employment of low BW values seems to reduce the intensity and temporal variation of Nyquist ghost in EPI-fMRI time series. On the other hand, the use of minimum ES value might not be entirely advantageous when the MR scanner is characterized by gradients with low performances and suboptimal EPI sequence calibration.
在 EPI-fMRI 采集过程中,各种读出带宽 (BW) 值被用作磁共振扫描仪系统梯度特性的函数。回波间距 (ES) 是 EPI-fMRI 序列的另一个基本参数,但在 fMRI 研究中通常不报告所使用的 ES 值。奈奎斯特鬼影是一种典型的 EPI 伪影,会降低 fMRI 时间序列的整体质量。在这项工作中,作者评估了两种临床 1.5 T 磁共振扫描仪系统(扫描仪-A、扫描仪-B)的 BW 和 ES 对梯度回波 EPI-fMRI 序列奈奎斯特鬼影的基本影响。BW 范围为:扫描仪-A,1953-3906 Hz/像素;扫描仪-B,1220-2894 Hz/像素。ES 范围为:扫描仪-A,扫描仪-B:0.75-1.33ms。在水模体中测量了时间序列采集的鬼影与信号比 (GSRts) 和鬼影与信号比漂移 (DRGSR)。对于扫描仪-A(93%的变化)和扫描仪-B(102%的变化),随着 BW 的增加,平均 GSRts 显著增加。扫描仪-A 的 GSRts 值与 ES 没有显著的依赖性。另一方面,扫描仪-B 的 GSRts 值随 ES 显著变化,表现出随 ES 增加而下降的趋势(81%的变化)。此外,还揭示了在 ES = 1.05ms 处存在一个 GSRts 尖峰,表明可能存在共振效应。对于这两种扫描仪,ES 对 DRGSR 没有显著影响。扫描仪-B 的 DRGSR 值与 BW 没有显著变化,而扫描仪-A 的 DRGSR 值与 BW 显著相关,随着 BW 的增加,DRGSR 值从负值变为正值呈上升趋势。GSRts 和 DRGSR 可以随 BW 和 ES 显著变化,变化的具体模式可能取决于梯度性能、EPI 序列校准和射频线圈的功能设计。因此,每个磁共振扫描仪系统都应该单独进行特征描述。一般来说,使用低 BW 值似乎可以降低 EPI-fMRI 时间序列中奈奎斯特鬼影的强度和时间变化。另一方面,当磁共振扫描仪的梯度性能较低且 EPI 序列校准不理想时,使用最小的 ES 值可能不完全有利。