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载喜树碱聚合物纳米粒的微流控剪切加工制备及其载药性能控制

Microfluidic Manufacturing of SN-38-Loaded Polymer Nanoparticles with Shear Processing Control of Drug Delivery Properties.

机构信息

Department of Chemistry , University of Victoria , P.O. Box 3065, Victoria , BC V8W 3 V6 , Canada.

出版信息

Mol Pharm. 2019 Jan 7;16(1):96-107. doi: 10.1021/acs.molpharmaceut.8b00874. Epub 2018 Dec 6.

Abstract

Two-phase gas-liquid microfluidic reactors provide shear processing control of SN-38-loaded polymer nanoparticles (SN-38-PNPs). We prepare SN-38-PNPs from the block copolymer poly(methyl caprolactone- co-caprolactone)- block-poly(ethylene oxides) (P(MCL- co-CL)- b-PEO) using bulk and microfluidic methods and at different drug-to-polymer loading ratios and on-chip flow rates. We show that, as the microfluidic flow rate ( Q) increases, encapsulation efficiency and drug loading increase and release half times increase. Slower SN-38 release is obtained at the highest Q value ( Q = 400 μL/min) than is achieved using a conventional bulk preparation method. For all SN-38-PNP formulations, we find a dominant population (by number) of nanosized particles (<50 nm) along with a small number of larger aggregates (>100 nm). As Q increases, the size of aggregates decreases through a minimum and then increases, attributed to a flow-variable competition of shear-induced particle breakup and shear-induced particle coalescence. IC and IC values of the various SN-38-PNPs against MCF-7 cells show strong flow rate dependencies that mirror trends in particle size. SN-38-PNPs manufactured on-chip at intermediate flow rates show both minimum particle sizes and maximum potencies with a significantly lower IC value than the bulk-prepared sample. Compared to conventional bulk methods, microfluidic shear processing in two-phase reactors provides controlled manufacturing routes for optimizing and improving the properties of SN-38 nanomedicines.

摘要

两相气液微流控反应器提供了对 SN-38 负载聚合物纳米颗粒(SN-38-PNPs)的剪切处理控制。我们使用块状共聚物聚(甲基己内酯-共-己内酯)-嵌段-聚(氧化乙烯)(P(MCL-共-CL)-b-PEO)通过体相和微流控方法,并在不同的药物-聚合物载药量和片上流速下制备 SN-38-PNPs。我们表明,随着微流体流速(Q)的增加,包封效率和药物载药量增加,释放半衰期增加。在最高 Q 值(Q=400 μL/min)下获得的 SN-38 释放较慢,比使用常规体相制备方法获得的释放慢。对于所有 SN-38-PNP 制剂,我们发现纳米级颗粒(<50nm)的主要群体(按数量计),以及少量较大的聚集体(>100nm)。随着 Q 的增加,通过最小化然后增加,聚集体的尺寸减小,归因于剪切诱导颗粒破碎和剪切诱导颗粒聚结的流变量竞争。各种 SN-38-PNPs 对 MCF-7 细胞的 IC 和 IC 值表现出强烈的流速依赖性,与颗粒尺寸的趋势相似。在中间流速下在芯片上制造的 SN-38-PNPs 具有最小的颗粒尺寸和最大的效力,与体相制备的样品相比,IC 值显著降低。与传统的体相方法相比,两相反应器中的微流体力处理为优化和改善 SN-38 纳米药物的性能提供了可控的制造途径。

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