Molecular design and synthesis of self-assembling camptothecin drug amphiphiles

被引:0
作者
Andrew G Cheetham
Yi-an Lin
Ran Lin
Honggang Cui
机构
[1] Johns Hopkins University,Department of Chemical and Biomolecular Chemistry and Institute for NanoBioTechnology (INBT)
[2] Institute for NanoBioTechnology (INBT),Department of Oncology and Sidney Kimmel Comprehensive Cancer Center
[3] Johns Hopkins University,undefined
[4] Johns Hopkins University School of Medicine,undefined
[5] Center for Nanomedicine,undefined
[6] The Wilmer Eye Institute,undefined
[7] Johns Hopkins University School of Medicine,undefined
来源
Acta Pharmacologica Sinica | 2017年 / 38卷
关键词
camptothecin; chemotherapy; peptides; self-assembly; drug amphiphiles; prodrugs; nanomedicine;
D O I
暂无
中图分类号
学科分类号
摘要
The conjugation of small molecular hydrophobic anticancer drugs onto a short peptide with overall hydrophilicity to create self-assembling drug amphiphiles offers a new prodrug strategy, producing well-defined, discrete nanostructures with a high and quantitative drug loading. Here we show the detailed synthesis procedure and how the molecular structure can influence the synthesis of the self-assembling prodrugs and the physicochemical properties of their assemblies. A series of camptothecin-based drug amphiphiles were synthesized via combined solid- and solution-phase synthetic techniques, and the physicochemical properties of their self-assembled nanostructures were probed using a number of imaging and spectroscopic techniques. We found that the number of incorporated drug molecules strongly influences the rate at which the drug amphiphiles are formed, exerting a steric hindrance toward any additional drugs to be conjugated and necessitating extended reaction time. The choice of peptide sequence was found to affect the solubility of the conjugates and, by extension, the critical aggregation concentration and contour length of the filamentous nanostructures formed. In the design of self-assembling drug amphiphiles, the number of conjugated drug molecules and the choice of peptide sequence have significant effects on the nanostructures formed. These observations may allow the fine-tuning of the physicochemical properties for specific drug delivery applications, ie systemic vs local delivery.
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页码:874 / 884
页数:10
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