Mohamed Wali Aisha Roshan, Zhou Jie, Ma Shengnan, He Yiyan, Yue Dong, Tang James Zhenggui, Gu Zhongwei
School of Pharmacy, Faculty of Science and Engineering, University of Wolverhampton, Wulfruna Street, Wolverhampton WV1 1LY, United Kingdom.
National Engineering Research Center for Biomaterials, Sichuan University, No. 29, Wangjiang Road, Chengdu 610065, Sichuan, PR China.
Int J Pharm. 2017 Jun 15;525(1):191-202. doi: 10.1016/j.ijpharm.2017.04.009. Epub 2017 Apr 7.
Amphiphilic glycopolypeptide analogues have harboured great importance in the development of targeted drug delivery systems. In this study, lactosylated pullulan-graft-arginine dendrons (LP-g-G3P) was synthesized using Huisgen azide-alkyne 1,3-dipolar cycloaddition between lactosylated pullulan and generation 3 arginine dendrons bearing Pbf and Boc groups on the periphery. Hydrophilic lactosylated pullulan was selected for amphiphilic modification, aiming at specific lectin recognition. Macromolecular structure of LP-g-G3P combined alkyl, aromatic, and peptide dendritic hydrophobic moieties and was able to self-assemble spontaneously into core-shell nanoarchitectures with small particle sizes and low polydispersity in the aqueous media, which was confirmed by CAC, DLS and TEM. Furthermore, the polyaromatic anticancer drug (doxorubicin, DOX) was selectively encapsulated in the hydrophobic core through multiple interactions with the dendrons, including π-π interactions, hydrogen bonding and hydrophobic interactions. Such multiple interactions had the merits of enhanced drug loading capacity (16.89±2.41%), good stability against dilution, and excellent sustained release property. The cell viability assay presented that LP-g-G3P nanoparticles had an excellent biocompatibility both in the normal and tumor cells. Moreover, LP-g-G3P/DOX nanoparticles could be effectively internalized into the hepatoma carcinoma cells and dramatically inhibited cell proliferation. Thus, this approach paves the way to develop amphiphilic and biofunctional glycopolypeptide-based drug delivery systems.
两亲性糖多肽类似物在靶向给药系统的开发中具有重要意义。在本研究中,通过乳糖化支链淀粉与外围带有Pbf和Boc基团的第三代精氨酸树枝状分子之间的Huisgen叠氮化物-炔烃1,3-偶极环加成反应,合成了乳糖化支链淀粉-接枝-精氨酸树枝状分子(LP-g-G3P)。选择亲水性的乳糖化支链淀粉进行两亲性修饰,旨在实现特异性凝集素识别。LP-g-G3P的大分子结构结合了烷基、芳基和肽树枝状疏水部分,能够在水性介质中自发自组装成粒径小、多分散性低的核壳纳米结构,这通过圆二色光谱(CAC)、动态光散射(DLS)和透射电子显微镜(TEM)得到证实。此外,多芳香族抗癌药物(阿霉素,DOX)通过与树枝状分子的多种相互作用,包括π-π相互作用、氢键和疏水相互作用,被选择性地封装在疏水核心中。这种多种相互作用具有提高药物负载能力(16.89±2.41%)、良好的抗稀释稳定性和优异的缓释性能等优点。细胞活力测定表明,LP-g-G3P纳米颗粒在正常细胞和肿瘤细胞中均具有优异的生物相容性。此外,LP-g-G3P/DOX纳米颗粒能够有效地内化到肝癌细胞中,并显著抑制细胞增殖。因此,这种方法为开发基于两亲性和生物功能化糖多肽的给药系统铺平了道路。