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实时核磁共振束导向速度映射。V 模式核磁共振。

Real-time NMR beam-directed velocity mapping. V-mode NMR.

作者信息

Pearlman J D, Moore J R, Lizak M J

机构信息

Department of Medicine, Massachusetts General Hospital, Boston.

出版信息

Circulation. 1992 Nov;86(5):1433-8. doi: 10.1161/01.cir.86.5.1433.

Abstract

BACKGROUND

Currently available noninvasive techniques for measuring blood flow velocities are constrained by limited view orientations (Doppler ultrasound) or limited time resolution (magnetic resonance imaging, MRI). We describe an MRI technique for measuring flow velocities in real time at arbitrary orientations within a cylindrical volume or "beam": V-mode nuclear magnetic resonance (NMR).

METHODS AND RESULTS

The technique was implemented on a standard 1.5-T clinical NMR imager with no special hardware and was tested on phantoms and human volunteers. The beam can be fired at rates up to 60 times per second, allowing measurements on a time scale that is appropriate for ungated cardiac studies. In phantoms, steady flow velocities were measured with the beam aligned along the direction of flow, and the measured velocities correlated well with the actual velocities (r > 0.99). The radial distribution of velocities in phantoms under constant flow conditions was also determined. In humans, flow of blood in the descending aortas of normal and aortic insufficiency subjects was measured. Distinctive backflow of blood because of aortic insufficiency was readily apparent.

CONCLUSIONS

The V-mode NMR technique is capable of acquiring clinically relevant real-time blood flow information from any desired angle of view with no attenuation at bone or air-tissue interfaces.

摘要

背景

目前可用的用于测量血流速度的非侵入性技术受到有限的观察方向(多普勒超声)或有限的时间分辨率(磁共振成像,MRI)的限制。我们描述了一种MRI技术,用于在圆柱形体积或“波束”内的任意方向实时测量流速:V模式核磁共振(NMR)。

方法和结果

该技术在标准的1.5-T临床NMR成像仪上实现,无需特殊硬件,并在体模和人类志愿者身上进行了测试。波束可以以每秒高达60次的速率发射,允许在适合非门控心脏研究的时间尺度上进行测量。在体模中,当波束沿血流方向对齐时测量稳定的流速,测量的流速与实际流速相关性良好(r>0.99)。还确定了恒定流动条件下体模中速度的径向分布。在人体中,测量了正常受试者和主动脉瓣关闭不全受试者降主动脉中的血流。由于主动脉瓣关闭不全导致的明显血液逆流很容易观察到。

结论

V模式NMR技术能够从任何所需视角获取临床相关的实时血流信息,在骨或空气-组织界面处无衰减。

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