Department of Radiology, University of Washington, Seattle, Washington 98109, USA.
Magn Reson Med. 2010 Sep;64(3):883-92. doi: 10.1002/mrm.22466.
Rat brain models effectively simulate a multitude of human neurological disorders. Improvements in coil design have facilitated the wider utilization of rat brain models by enabling the utilization of clinical MR scanners for image acquisition. In this study, a novel coil design, subsequently referred to as the rat brain coil, is described that exploits and combines the strengths of both solenoids and surface coils into a simple, multichannel, receive-only coil dedicated to whole-brain rat imaging on a 3.0 T clinical MR scanner. Compared with a multiturn solenoid mouse body coil, a 3-cm surface coil, a modified Helmholtz coil, and a phased-array surface coil, the rat brain coil improved signal-to-noise ratio by approximately 72, 61, 78, and 242%, respectively. Effects of the rat brain coil on amplitudes of static field and radiofrequency field uniformity were similar to each of the other coils. In vivo, whole-brain images of an adult male rat were acquired with a T(2)-weighted spin-echo sequence using an isotropic acquisition resolution of 0.25 x 0.25 x 0.25 mm(3) in 60.6 min. Multiplanar images of the in vivo rat brain with identification of anatomic structures are presented. Improvement in signal-to-noise ratio afforded by the rat brain coil may broaden experiments that utilize clinical MR scanners for in vivo image acquisition.
鼠脑模型可有效模拟多种人类神经疾病。线圈设计的改进使得临床磁共振扫描仪可用于图像采集,从而更广泛地利用鼠脑模型。本研究描述了一种新型线圈设计,随后称为鼠脑线圈,它利用并结合了螺线管和表面线圈的优势,设计成一种简单的多通道、仅接收线圈,专门用于在 3.0 T 临床磁共振扫描仪上对全脑鼠进行成像。与多匝螺线管鼠体线圈、3 cm 表面线圈、改良的亥姆霍兹线圈和相控阵表面线圈相比,鼠脑线圈分别将信噪比提高了约 72%、61%、78%和 242%。鼠脑线圈对静磁场和射频场均匀性幅度的影响与其他线圈相似。在体内,使用 T2 加权自旋回波序列以 0.25 x 0.25 x 0.25 mm(3)的各向同性采集分辨率在 60.6 分钟内采集成年雄性大鼠的全脑图像。呈现了具有解剖结构标识的体内大鼠脑的多平面图像。鼠脑线圈提供的信噪比提高可能会拓宽利用临床磁共振扫描仪进行体内图像采集的实验。