Seierstad T, Røe K, Høvik B
Department of Medical Physics, Rikshospitalet-Radiumhospitalet Medical Center, Montebello, 0310 Oslo, Norway.
Phys Med Biol. 2007 Nov 21;52(22):N513-22. doi: 10.1088/0031-9155/52/22/N02. Epub 2007 Oct 26.
During the last two decades, there has been an explosive increase in the number of MR investigations involving genetically manipulated mice and rats. Many of the animal studies are performed in a more or less clinical environment, where whole-body MR scanners are the only option available. The quality and acquisition time of MR images have improved with the development of novel RF coil technologies. This communication describes the construction of a small inductively coupled capacitive overlap transmit-receive MR coil for imaging of small animals and objects in a clinical MR scanner. The MR coil presented here is a modified version of the bridged loop-gap coil and consists of two tube-shaped coupled resonance circuits, where the primary circuit partly encapsulates the imaging (secondary) circuit. By rotating the concentric primary coil relative to the secondary coil tuning over a range of several hundred kilohertz is obtained. The coil performance was characterized experimentally by acquiring high-resolution anatomical, diffusion and perfusion MR images as well as the acquisition of proton spectra of a mouse tumour.
在过去二十年中,涉及基因操纵小鼠和大鼠的磁共振成像(MR)研究数量呈爆炸式增长。许多动物研究或多或少是在临床环境中进行的,在这种环境下全身MR扫描仪是唯一可用的设备。随着新型射频(RF)线圈技术的发展,MR图像的质量和采集时间都有所提高。本通讯描述了一种小型电感耦合电容重叠式发射 - 接收MR线圈的构建,用于在临床MR扫描仪中对小动物和物体进行成像。这里介绍的MR线圈是桥接环隙线圈的改进版本,由两个管状耦合谐振电路组成,其中初级电路部分包裹成像(次级)电路。通过相对于次级线圈旋转同心初级线圈,可以在几百千赫兹的范围内进行调谐。通过获取高分辨率的解剖、扩散和灌注MR图像以及小鼠肿瘤的质子谱,对该线圈的性能进行了实验表征。