首页> 外文会议>ASME International Mechanical Engineering Congress and Exposition >MOLECULAR DYNAMIC SIMULATION STUDY ON SOY PROTEIN AS DRUG DELIVERY VEHICLE
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MOLECULAR DYNAMIC SIMULATION STUDY ON SOY PROTEIN AS DRUG DELIVERY VEHICLE

机译:大豆蛋白作为药物输送型载体的分子动态模拟研究

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Protein-based drug carriers are promising candidates for efficient drug delivery among the available potential colloidal carrier systems, due to their low cytotoxicity, abundance, renew ability, diverse functional groups and interactions, and high drug loading capacity, etc. In this study, molecular dynamics (MD) simulations are performed to study the mechanisms of 11S molecule of soy protein as drug delivery vehicle to attach allyl isothiocyanate (AITC) and doxorubicin (DOX) drugs. The intermolecular interactions between protein and drugs are investigated; and the loading capacities of the protein molecules are calculated and compared with experiments. It is found that, for the A1TC system, both nonpolar and polar residues of protein have the ability to adsorb AITCs; particularly, the polar residues serve as the primary active sites for the stable attachment of the drug molecules through the electrostatic (dipole-dipole) interactions. For the DOX system, however, the main drivingforce become the n-n stacking (the van der Waals interactions) among the aromatic rings of DOX and protein. In addition to pristine protein, different denaturation processes are found to be able to increase the exposure of active sites, therefore, enhance the loading efficiency of the protein carriers.
机译:基于蛋白质的药物载体是有效的候选者,用于可用潜在的胶体载体系统中有效的药物递送,因为它们的细胞毒性低,丰度,更新能力,不同的官能团和相互作用以及高药物负载能力等。分子进行动力学(MD)模拟以研究大豆蛋白的11S分子作为药物递送载体的机制,以连接烯丙基异硫氰酸酯(AITC)和多柔比星(DOX)药物。研究了蛋白质和药物之间的分子间相互作用;并计算蛋白质分子的加载能力并与实验进行比较。结果发现,对于A1TC系统,蛋白质的非极性和极性残留物具有吸附AITC的能力;特别地,极性残余物用作初级活性位点,用于通过静电(偶极偶极偶联)相互作用稳定地附着药物分子。然而,对于DOX系统,主要的驱动器成为DOX和蛋白质的芳香环中的N-N堆叠(VAN DAR WAALS相互作用)。除了原始蛋白质外,发现不同的变性过程能够增加活性位点的暴露,因此增强了蛋白质载体的负载效率。

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