A.I. Virtanen Institute for Molecular Sciences, University of Eastern Finland, Kuopio, Finland.
Medical Physics, Department of Radiology, University Medical Center Freiburg, Faculty of Medicine, University of Freiburg, Freiburg, Germany.
NMR Biomed. 2022 Dec;35(12):e4804. doi: 10.1002/nbm.4804. Epub 2022 Sep 8.
Filter-exchange imaging (FEXI) has already been utilized in several biomedical studies for evaluating the permeability of cell membranes. The method relies on suppressing the extracellular signal using strong diffusion weighting (the mobility filter causing a reduction in the overall diffusivity) and monitoring the subsequent diffusivity recovery. Using Monte Carlo simulations, we demonstrate that FEXI is sensitive not uniquely to the transcytolemmal exchange but also to the geometry of involved compartments: complex geometry offers locations where spins remain unaffected by the mobility filter; moving to other locations afterwards, such spins contribute to the diffusivity recovery without actually permeating any membrane. This exchange mechanism is a warning for those who aim to use FEXI in complex media such as brain gray matter and opens wide scope for investigation towards crystallizing the genuine membrane permeation and characterizing the compartment geometry.
滤过交换成像(FEXI)已经在一些生物医学研究中被用于评估细胞膜的通透性。该方法依赖于使用强扩散加权(流动性过滤器导致整体扩散率降低)来抑制细胞外信号,并监测随后的扩散率恢复。通过蒙特卡罗模拟,我们证明 FEXI 不仅对跨细胞交换敏感,而且对涉及的隔室的几何形状敏感:复杂的几何形状提供了自旋不受流动性过滤器影响的位置;随后移动到其他位置,这些自旋会在不实际穿透任何膜的情况下有助于扩散率恢复。这种交换机制对那些旨在在复杂介质(如大脑灰质)中使用 FEXI 的人来说是一个警告,并为澄清真正的膜渗透和描述隔室几何形状提供了广泛的研究范围。