Xu Daiyun, Chen Xu, Chen Zhidong, Lv Yonghui, Li Yongxiao, Li Shengbin, Xu Wanting, Mo Yuan, Wang Xinpei, Chen Zirui, Chen Tingyi, Wang Tianqi, Wang Zhe, Wu Meiying, Wang Junqing
School of Pharmaceutical Sciences (Shenzhen), Sun Yat-sen University, Shenzhen, China.
Department of Pathology, The Eighth Affiliated Hospital, Sun Yat-sen University, Shenzhen, China.
Front Bioeng Biotechnol. 2022 Feb 25;10:859255. doi: 10.3389/fbioe.2022.859255. eCollection 2022.
Molecular dynamic behaviors of nanodisc (ND) formulations of free doxorubicin (DOX) and DOX conjugated lipid prodrug molecules were investigated by molecular dynamics (MD) simulations. We have unveiled how formulation design affects the drug release profile and conformational stability of ND assemblies. Our simulation results indicate that free DOX molecules loaded in the ND system experienced rapid dissociation due to the unfavorable orientation of DOX attached to the lipid surface. It is found that DOX tends to form aggregates with higher drug quantities. In contrast, lipidated DOX-prodrugs incorporated in ND formulations exhibited sufficient ND conformational stability. The drug loading capacity is dependent on the type of lipid molecules grafted on the DOX-prodrug, and the drug loading quantities in a fixed area of NDs follow the order: DOX-BMPH-MP > DOX-BMPH-TC > DOX-BMPH-PTE. To gain further insight into the dynamic characteristics of ND formulations governed by different kinds of lipidation, we investigated the conformational variation of ND components, intermolecular interactions, the solvent accessible surface area, and individual MSP1 residue flexibility. We found that the global conformational stability of DOX-prodrug-loaded ND assemblies is influenced by the molecular flexibility and lipidated forms of DOX-prodrug. We also found that the spontaneous self-aggregation of DOX-prodrugs with increasing quantities on ND could reduce the membrane fluidity and enhance the conformational stability of ND formulations.
通过分子动力学(MD)模拟研究了游离阿霉素(DOX)和DOX共轭脂质前药分子的纳米盘(ND)制剂的分子动力学行为。我们揭示了制剂设计如何影响ND组装体的药物释放曲线和构象稳定性。我们的模拟结果表明,由于DOX附着在脂质表面的方向不利,负载在ND系统中的游离DOX分子经历了快速解离。发现DOX倾向于与更高药物量形成聚集体。相比之下,掺入ND制剂中的脂质化DOX前药表现出足够的ND构象稳定性。药物负载能力取决于接枝在DOX前药上的脂质分子类型,并且在ND的固定区域中的药物负载量遵循以下顺序:DOX-BMPH-MP > DOX-BMPH-TC > DOX-BMPH-PTE。为了进一步深入了解由不同种类的脂质化控制的ND制剂的动态特性,我们研究了ND组分的构象变化、分子间相互作用、溶剂可及表面积和单个MSP1残基的灵活性。我们发现负载DOX前药的ND组装体的整体构象稳定性受DOX前药的分子灵活性和脂质化形式影响。我们还发现,随着ND上DOX前药数量的增加,其自发自聚集会降低膜流动性并增强ND制剂的构象稳定性。