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Dipolar induced spin-lattice relaxation in the myelin sheath: A molecular dynamics study

机译:偶极诱导髓鞘中的自旋晶格弛豫:分子动力学研究。

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摘要

Interactions between hydrogen protons of water molecules and macromolecules within the myelin sheath surrounding the axons are a major factor influencing the magnetic resonance (MR) contrast in white matter (WM) regions. In past decades, several studies have investigated the underlying effects and reported a wide range of R1 rates for the myelin associated compartments at different field strengths. However, it was also shown that the experimental quantification of the compartment-specific R1 rates is associated with large uncertainties. The current study therefore investigates the longitudinal relaxation rates within the myelin sheath using a molecular dynamic (MD) simulation. For this purpose, a realistic molecular model of the myelin sheath was employed to determine the dipole-dipole induced R1 relaxation rate of the hydrogen protons at clinically relevant field strengths. The results obtained clearly reflect the spatial heterogeneity of R1 with a increased relaxivity of myelin water due to a reduced molecular mobility near the membrane surface. Moreover, the calculated R1 rates for both myelin water and macromolecules are in excellent agreement with experimental findings from the literature at different field strengths.
机译:水分子氢质子与轴突周围髓鞘内的大分子之间的相互作用是影响白质(WM)区域磁共振(MR)对比度的主要因素。在过去的几十年中,一些研究已经调查了潜在的影响,并报道了在不同场强下与髓磷脂相关的区室的R1速率范围很广。但是,还显示了针对隔室的R1速率的实验定量与较大的不确定性相关。因此,当前的研究使用分子动力学(MD)模拟研究了髓鞘内的纵向松弛率。为此,采用了髓鞘的真实分子模型来确定在临床相关场强下氢质子的偶极-偶极诱导的R1弛豫速率。获得的结果清楚地反映了R1的空间异质性,由于膜表面附近的分子迁移率降低,髓磷脂水的弛豫度增加。此外,髓鞘水和大分子的R1率的计算值与文献在不同场强下的实验结果非常吻合。

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