Article ID | Journal | Published Year | Pages | File Type |
---|---|---|---|---|
8159829 | Magnetic Resonance Imaging | 2018 | 6 Pages |
Abstract
The design of a loop-gap-resonator RF coil optimized for ex vivo mouse brain microscopy at ultra high fields is described and its properties characterized using simulations, phantoms and experimental scans of mouse brains fixed in 10% formalin containing 4â¯mM Magnevistâ¢. The RF (B1) and magnetic field (B0) homogeneities are experimentally quantified and compared to electromagnetic simulations of the coil. The coil's performance is also compared to a similarly sized surface coil and found to yield double the sensitivity. A three-dimensional gradient-echo (GRE) sequence is used to acquire high resolution mouse brain scans at (47â¯Î¼m)3 resolution in 1.8â¯h and a 20â¯Ãâ¯20â¯Ãâ¯19â¯Î¼m3 resolution in 27â¯h. The high resolution obtained permitted clear visualization and identification of multiple structures in the ex vivo mouse brain and represents, to our knowledge, the highest resolution ever achieved for a whole mouse brain. Importantly, the coil design is simple and easy to construct.
Related Topics
Physical Sciences and Engineering
Physics and Astronomy
Condensed Matter Physics
Authors
Ouri Cohen, Jerome L. Ackerman,