论文标题

使用递归RF脉冲设计的联合分割成加速的VFA - 果实,超高的空间分辨率BOLD FMRI在人类中进行了fMRI

Ultra-high spatial resolution BOLD fMRI in humans using combined segmented-accelerated VFA-FLEET with a recursive RF pulse design

论文作者

Berman, Avery J. L., Grissom, William A., Witzel, Thomas, Nasr, Shahin, Park, Daniel J., Setsompop, Kawin, Polimeni, Jonathan R.

论文摘要

目的 通过为超高分辨率fMRI开发多发段的EPI,通过降低了受试者运动和呼吸的幽灵伪像,从而减轻单发epi的空间编码局限性。 方法 分段的EPI可以减少读数持续时间并减少加速因子,但是,段采集(按秒的顺序)之间经过的时间会导致间歇性幽灵,从而限制了其用于fMRI的使用。在这里,“车队”段排序(在切片之前都循环循环)与可变的翻盖角进程(VFA-FLEET)结合在一起,以提高段间忠诚度并最大程度地提高fMRI信号。为每个片段(VFA-Fleet-Sinc)缩放SINC脉冲的翻转角度,产生了不一致的切片轮廓和幽灵,因此,开发了递归的Shinnar-Le Roux(SLR)RF脉冲设计(VFA-FLEET-SLR),以使每个片段都能为每个片段产生一致的脉冲和一致的slice slice profiles和Signals signals。 结果 将VFA-Fleet-SLR的时间稳定性与3 t和7 t的传统细分EPI和VFA-FLEET-SINC进行了比较。与常规分段和VFA-Fleet-Sinc相比,间歇性和稳定的幽灵均显示出降低,与传统的vfa-fleet-sinc相比,导致图像质量改善,并导致较小的SNR质量。将VFA-FLEET-SLR与加速度相结合,我们在7 T-没有放大成像或部分傅立叶时达到了0.6毫米的各向同性采集 - 证明了对视觉刺激的大胆反应的可靠检测。为了抵消分割的重复时间增加,使用RF编码的受控别名证明了同时的多板vfa-fleet-slr。 结论 带有递归RF脉冲设计的VFA-FLEET支持具有较低水平的伪影和空间模糊的采集,从而在以前无法访问的空间分辨率上允许fMRI具有“全脑”视野。

Purpose To alleviate the spatial encoding limitations of single-shot EPI by developing multi-shot segmented EPI for ultra-high-resolution fMRI with reduced ghosting artifacts from subject motion and respiration. Methods Segmented EPI can reduce readout duration and reduce acceleration factors, however, the time elapsed between segment acquisitions (on the order of seconds) can result in intermittent ghosting, limiting its use for fMRI. Here, "FLEET" segment ordering--where segments are looped over before slices--was combined with a variable flip angle progression (VFA-FLEET) to improve inter-segment fidelity and maximize signal for fMRI. Scaling a sinc pulse's flip angle for each segment (VFA-FLEET-Sinc) produced inconsistent slice profiles and ghosting, therefore, a recursive Shinnar-Le Roux (SLR) RF pulse design was developed (VFA-FLEET-SLR) to generate unique pulses for every segment that together produce consistent slice profiles and signals. Results The temporal stability of VFA-FLEET-SLR was compared against conventional-segmented EPI and VFA-FLEET-Sinc at 3 T and 7 T. VFA-FLEET-SLR showed reductions in both intermittent and stable ghosting compared to conventional-segmented and VFA-FLEET-Sinc, resulting in improved image quality with a minor trade-off in temporal SNR. Combining VFA-FLEET-SLR with acceleration, we achieved a 0.6-mm isotropic acquisition at 7 T--without zoomed imaging or partial Fourier--demonstrating reliable detection of BOLD responses to a visual stimulus. To counteract the increased repetition time from segmentation, simultaneous multi-slice VFA-FLEET-SLR was demonstrated using RF-encoded controlled aliasing. Conclusions VFA-FLEET with a recursive RF pulse design supports acquisitions with low levels of artifact and spatial blur, enabling fMRI at previously inaccessible spatial resolutions with a "full-brain" field of view.

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