Department of High-Field Magnetic Resonance, Max Planck Institute for Biological Cybernetics, Tuebingen, Germany; Graduate Training Centre of Neuroscience, University of Tuebingen, Tuebingen, Germany.
Department of High-Field Magnetic Resonance, Max Planck Institute for Biological Cybernetics, Tuebingen, Germany; German Center for Neurodegenerative Diseases (DZNE), Bonn, Germany.
Neuroimage. 2017 Dec;163:13-23. doi: 10.1016/j.neuroimage.2017.09.015. Epub 2017 Sep 8.
Monte Carlo simulations have been used to analyze oxygenation-related signal changes in pass-band balanced steady state free precession (bSSFP) as well as in gradient echo (GE) and spin echo (SE) sequences. Signal changes were calculated for artificial cylinders and neurovascular networks acquired from the mouse parietal cortex by two-photon laser scanning microscopy at 1 μm isotropic resolution. Signal changes as a function of vessel size, blood volume, vessel orientation to the main magnetic field B as well as relations of intra- and extravascular and of micro- and macrovascular contributions have been analyzed. The results show that bSSFP is highly sensitive to extravascular and microvascular components. Furthermore, GE and bSSFP, and to a lesser extent SE, exhibit a strong dependence of their signal change on the orientation of the vessel network to B.
已使用蒙特卡罗模拟来分析带通平衡稳态自由进动 (bSSFP) 以及梯度回波 (GE) 和自旋回波 (SE) 序列中与氧合相关的信号变化。通过双光子激光扫描显微镜在 1 μm 各向同性分辨率下从小鼠顶叶皮层获得的人造圆柱体和神经血管网络,计算了信号变化。分析了信号变化与血管大小、血容量、血管相对于主磁场 B 的方向以及血管内和血管外、微血管和大血管贡献之间的关系。结果表明,bSSFP 对血管外和微血管成分非常敏感。此外,GE 和 bSSFP,在较小程度上 SE,其信号变化强烈依赖于血管网络相对于 B 的方向。