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建模 Gd 配合物用于分子动力学模拟:磁共振成像对比剂的合理优化。

Modeling Gd Complexes for Molecular Dynamics Simulations: Toward a Rational Optimization of MRI Contrast Agents.

机构信息

Coimbra Chemistry Center - Institute of Molecular Sciences (CQC-IMS), University of Coimbra, 3004-535 Coimbra, Portugal.

Department of Chemistry, University of Coimbra, 3004-535 Coimbra, Portugal.

出版信息

Inorg Chem. 2022 Aug 1;61(30):11837-11858. doi: 10.1021/acs.inorgchem.2c01597. Epub 2022 Jul 18.

Abstract

The correct parametrization of lanthanide complexes is of the utmost importance for their characterization using computational tools such as molecular dynamics simulations. This allows the optimization of their properties for a wide range of applications, including medical imaging. Here we present a systematic study to establish the best strategies for the correct parametrization of lanthanide complexes using [Gd(DOTA)] as a reference, which is used as a contrast agent in MRI. We chose the bonded model to parametrize the lanthanide complexes, which is especially important when considering the study of the complex as a whole (e.g., for the study of the dynamics of its interaction with proteins or membranes). We followed two strategies: a so-called heuristic approach employing strategies already published by other authors and another based on the more recent MCPB.py tool. Adjustment of the Lennard-Jones parameters of the metal was required. The final topologies obtained with both strategies were able to reproduce the experimental ion to oxygen distance, vibrational frequencies, and other structural properties. We report a new strategy to adjust the Lennard-Jones parameters of the metal ion in order to capture dynamic properties such as the residence time of the capping water (τ). For the first time, the correct assessment of the τ value for Gd-based complexes was possible by recording the dissociative events over up to 10 μs all-atom simulations. The MCPB.py tool allowed the accurate parametrization of [Gd(DOTA)] in a simpler procedure, and in this case, the dynamics of the water molecules in the outer hydration sphere was also characterized. This sphere was divided into the first hydration layer, an intermediate region, and an outer hydration layer, with a residence time of 18, 10 and 19 ps, respectively, independent of the nonbonded parameters chosen for Gd. The Lennard-Jones parameters of Gd obtained here for [Gd(DOTA)] may be used with similarly structured gadolinium MRI contrast agents. This allows the use of molecular dynamics simulations to characterize and optimize the contrast agent properties. The characterization of their interaction with membranes and proteins will permit the design of new targeted contrast agents with improved pharmacokinetics.

摘要

镧系配合物的正确参数化对于使用分子动力学模拟等计算工具对其进行表征至关重要。这允许优化其性质,以满足广泛的应用,包括医学成像。在这里,我们进行了一项系统研究,以确定使用 [Gd(DOTA)] 作为参考的镧系配合物的正确参数化的最佳策略,[Gd(DOTA)] 用作 MRI 中的造影剂。我们选择键合模型来参数化镧系配合物,这在考虑整个配合物时尤为重要(例如,研究其与蛋白质或膜相互作用的动力学时)。我们遵循了两种策略:一种是使用其他作者已经发表的策略的所谓启发式方法,另一种是基于最近的 MCPB.py 工具的方法。需要调整金属的伦纳德-琼斯参数。这两种策略得到的最终拓扑结构都能够重现实验中离子与氧的距离、振动频率和其他结构特性。我们报告了一种新策略来调整金属离子的伦纳德-琼斯参数,以捕捉动态特性,例如帽状水的停留时间(τ)。通过记录长达 10 μs 的全原子模拟中的离解事件,首次能够正确评估基于 Gd 的配合物的 τ 值。MCPB.py 工具允许以更简单的程序对 [Gd(DOTA)] 进行精确参数化,并且在这种情况下,还可以对外部水合层中的水分子动力学进行表征。这个水合层被分为第一层水合层、中间区域和外部水合层,停留时间分别为 18、10 和 19 ps,与为 Gd 选择的非键参数无关。这里为 [Gd(DOTA)] 获得的 Gd 的伦纳德-琼斯参数可用于具有类似结构的镧系 MRI 造影剂。这允许使用分子动力学模拟来表征和优化造影剂的性质。其与膜和蛋白质相互作用的特征允许设计具有改进药代动力学的新型靶向造影剂。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/05ab/9775472/7701e721e251/ic2c01597_0001.jpg

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