Experimental renal artery embolization in a combined MR imaging/angiographic unit

被引:39
作者
Wilson, MW [1 ]
Fidelman, N [1 ]
Weber, OM [1 ]
Martin, AJ [1 ]
Gordon, RL [1 ]
LaBerge, JM [1 ]
Kerlan, RK [1 ]
Wolanske, KA [1 ]
Saeed, M [1 ]
机构
[1] Univ Calif San Francisco, Dept Radiol, San Francisco, CA 94143 USA
关键词
D O I
10.1097/01.RVI.0000086539.44800.C5
中图分类号
R8 [特种医学]; R445 [影像诊断学];
学科分类号
1002 ; 100207 ; 1009 ;
摘要
PURPOSE: The purpose of this study was to use a combined x-ray angiography and MR imaging (XMR) system to manipulate intraarterial catheters and monitor the deposition of gadolinium (Gd)-impregnated embolic microspheres in vivo in a canine kidney model. MATERIALS AND METHODS: Seven anesthetized dogs (18-28 kg) were studied. The renal arteries were catheterized under fluoroscopic guidance. Renal blood flow rates were assessed with velocity-encoded cine MR imaging before and after renal artery embolization with Gd-impregnated microspheres (300-500 and 500-700 mum in size). The particles were injected in vivo into 14 canine renal arteries under fast dynamic T1-weighted MR imaging guidance at one frame per second. Postembolic microsphere distributions were assessed with MR imaging and digital subtraction angiography (DSA). RESULTS: Gd-impregnated microsphere injection into the renal arteries was successful in all animals. Renal enhancement due to the deposition of the particles persisted for at least 1 hour after the injection. The distribution of MR signal enhancement in the kidneys differed for the smaller versus the larger microspheres. The 300-500-mum microspheres deposited preferentially in the outer cortical regions, whereas the 500-700-mum microspheres preferentially deposited in the medulla and inner cortex. Renal blood flow was significantly reduced after the administration of both the 300-500-mum microspheres (from 3.9 to 1.0 mL/min/g) and the 500-700-mum microspheres (from 3.5 to 0.2 mL/min/g).
引用
收藏
页码:1169 / 1175
页数:7
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