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计算洞察奥沙利铂与胰岛素的相互作用。

Computational insight into the interaction of oxaliplatin with insulin.

机构信息

Departament de Química, Universitat Autònoma de Barcelona, 08193 Cerdanyola del Vallés, Barcelona, Spain.

出版信息

Metallomics. 2019 Apr 17;11(4):765-773. doi: 10.1039/c8mt00341f.

DOI:10.1039/c8mt00341f
PMID:30724953
Abstract

In an organism, cisplatin and its derivatives are known to interact with proteins besides their principal DNA target. These off-target interactions have major therapeutic consequences including undesired side effects, loss of bioavailability and emergence of resistance. Insulin is one of the prototypical protein targets of platinum drugs as it has been seen to be involved in bioavailability reduction and might also determine resistance in certain cancer lines. However, despite the interest in understanding the nature of the oxaliplatin-insulin adducts, no 3D models have been achieved so far. In this study, we apply our recent computational multiscale protocol optimized for bioinorganic interactions to provide structural insights into these systems. To do so, the initial structures are predicted by blind protein-metalloligand docking calculations optimized to account for a metal-containing species, and then refined using a Molecular Dynamics (MD) and Quantum Mechanics/Molecular Mechanics (QM/MM) integrated protocol. The results are consistent with experimental information obtained from fragment analysis, and also provide novel structural information like conformational changes occurring upon binding and potential effects on the biological functions of the protein. This study opens an avenue towards applying similar strategies to a wide ensemble of metallodrug-protein/peptide systems for which no structural data are available.

摘要

在生物体中,顺铂及其衍生物已知除了主要的 DNA 靶标外,还与蛋白质相互作用。这些非靶标相互作用具有重要的治疗后果,包括不期望的副作用、生物利用度降低和耐药性的出现。胰岛素是铂类药物的典型蛋白质靶标之一,因为它被认为参与了生物利用度的降低,并且在某些癌细胞系中也可能决定耐药性。然而,尽管人们有兴趣了解奥沙利铂-胰岛素加合物的性质,但到目前为止还没有实现三维模型。在这项研究中,我们应用我们最近为生物无机相互作用优化的计算多尺度方案,提供对这些系统的结构见解。为此,通过盲法蛋白-金属配体对接计算来预测初始结构,该计算经过优化以考虑含金属物种,然后使用分子动力学 (MD) 和量子力学/分子力学 (QM/MM) 集成方案进行细化。结果与从片段分析获得的实验信息一致,并且还提供了结合时发生的构象变化和对蛋白质生物学功能的潜在影响等新的结构信息。这项研究为应用类似策略开辟了途径,可以应用于广泛的金属药物-蛋白质/肽体系,这些体系没有结构数据。

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Computational insight into the interaction of oxaliplatin with insulin.计算洞察奥沙利铂与胰岛素的相互作用。
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