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液体衰减反转恢复稳态自由进动成像。

Fluid-attenuated inversion-recovery SSFP imaging.

作者信息

Bangerter Neal K, Hargreaves Brian A, Gold Garry E, Stucker Daniel T, Nishimura Dwight G

机构信息

Department of Electrical Engineering, Stanford University, Stanford, California, USA.

出版信息

J Magn Reson Imaging. 2006 Dec;24(6):1426-31. doi: 10.1002/jmri.20743.

Abstract

PURPOSE

To describe and evaluate a fast, fluid-suppressed 2D multislice steady-state free precession (SSFP) neuroimaging sequence.

MATERIALS AND METHODS

We developed a fast fluid-attenuated inversion-recovery SSFP sequence for use in neuroimaging. The inversion time (TI) was optimized to yield good cerebrospinal fluid (CSF) suppression while conserving white matter (WM)/lesion contrast across a broad range of flip angles. Multiple SSFP acquisitions were combined using the sum-of-squares (SOS) method to maximize SNR efficiency while minimizing SSFP banding artifacts. We compared our fluid-attenuated inversion-recovery (FLAIR) SSFP sequence with FLAIR fast spin-echo (FSE) in both normal subjects and a volunteer with multiple sclerosis. SNR measurements were performed to ascertain the SNR efficiency of each sequence.

RESULTS

Our FLAIR SSFP sequence demonstrated excellent CSF suppression and good gray matter (GM)/WM contrast. Coverage of the entire brain (5-mm slices, 24-cm FOV, 256 x 192 matrix) was achieved with FLAIR SSFP in less than half the scan time of a corresponding FLAIR FSE sequence with similar SNR, yielding improvements of more than 50% in SNR efficiency. Axial scans of a volunteer with multiple sclerosis show clearly visible plaques and very good visualization of brain parenchyma.

CONCLUSION

We have demonstrated the feasibility of a very fast fluid-suppressed neuroimaging technique using SSFP.

摘要

目的

描述并评估一种快速的、流体抑制的二维多层稳态自由进动(SSFP)神经成像序列。

材料与方法

我们开发了一种用于神经成像的快速流体衰减反转恢复SSFP序列。反转时间(TI)经过优化,以在广泛的翻转角度范围内实现良好的脑脊液(CSF)抑制,同时保留白质(WM)/病变对比度。使用平方和(SOS)方法组合多个SSFP采集,以在最小化SSFP带状伪影的同时最大化信噪比(SNR)效率。我们在正常受试者和一名患有多发性硬化症的志愿者中,将我们的流体衰减反转恢复(FLAIR)SSFP序列与FLAIR快速自旋回波(FSE)进行了比较。进行SNR测量以确定每个序列的SNR效率。

结果

我们的FLAIR SSFP序列显示出优异的CSF抑制和良好的灰质(GM)/WM对比度。使用FLAIR SSFP在不到相应FLAIR FSE序列扫描时间一半的时间内实现了全脑覆盖(5毫米切片,24厘米视野,256×192矩阵),SNR效率提高了50%以上。一名患有多发性硬化症的志愿者的轴向扫描显示出清晰可见的斑块以及脑实质的良好可视化。

结论

我们已经证明了使用SSFP的非常快速的流体抑制神经成像技术的可行性。

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