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Polylactide-graft-doxorubicin Nanoparticles with Precisely Controlled Drug Loading for pH-Triggered Drug Delivery

机译:精确控制载药量的聚乳酸接枝阿霉素纳米颗粒用于pH触发的药物递送

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摘要

Nanoparticles (NPs) with high drug loading and pH-responsivity were prepared by nanoprecipitation of a hydrophobic polymer-drug conjugate (PDC). The PDC, polylactide-graft-doxorubicin (PLA-g-DOX), was synthesized by azide-alkyne click reaction to transform acetylene-functionalized PLA into PLA-graft-aldehyde (PLA-g-ALD), followed by DOX conjugation to form acid-sensitive Schiff base linkage between drug moieties and polymer scaffold. The DOX loading amount in PLA-g-DOX PDC was determined to be 32 wt % by ~1H NMR and UV-vis spectroscopies. PLA-g-DOX PDC was further used to prepare NPs with precisely controlled drag loading by nanoprecipitation in the presence of a PEGylated surfactant. The effects of organic solvent, PLA-g-DOX PDC concentration and PLA-g-DOX/surfactant mass ratio on size and size distribution of NPs were systematically examined based on analysis by dynamic light scattering (DLS) and transmission electron microscopy (TEM). NPs prepared under the optimal conditions exhibited well-defined spherical morphology with volume-average hydrodynamic diameter (D_h) around 100 nm. Due to the Schiff base conjugation linkage in PLA-g-DOX PDC, acid-sensitive drug release behavior of the NPs was observed. In vitro studies against MCF-7 breast cancer cells showed that the NPs can be readily taken up and result in enhanced therapeutic efficiency as compared to DOX·HCl, indicating their promising potential applications as anticancer nanomedicines.
机译:通过疏水聚合物-药物共轭物(PDC)的纳米沉淀制备具有高载药量和pH响应性的纳米颗粒(NPs)。通过叠氮化物-炔的点击反应,将乙炔官能化的PLA转变为PLA接枝醛(PLA-g-ALD),然后进行DOX偶联形成PDC,即聚丙交酯接枝阿霉素(PLA-g-DOX)。药物部分和聚合物支架之间的酸敏感性席夫碱键。通过〜1 H NMR和UV-可见光谱法确定PLA-g-DOX PDC中的DOX负载量为32重量%。 PLA-g-DOX PDC进一步用于在PEG化表面活性剂存在下通过纳米沉淀制备具有精确控制的阻荷的NP。通过动态光散射(DLS)和透射电子显微镜(TEM)的分析,系统地检查了有机溶剂,PLA-g-DOX PDC浓度和PLA-g-DOX /表面活性剂质量比对NP尺寸和尺寸分布的影响。 。在最佳条件下制备的NP表现出明确的球形形态,体积平均流体动力学直径(D_h)约为100 nm。由于PLA-g-DOX PDC中的席夫碱共轭键,观察到了NPs的酸敏感性药物释放行为。针对MCF-7乳腺癌细胞的体外研究表明,与DOX·HCl相比,NPs容易被吸收并导致更高的治疗效率,表明它们作为抗癌纳米药物具有广阔的应用前景。

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