Department of Materials Science and Engineering, University of Illinois Urbana-Champaign, Urbana, Illinois, USA.
Soft Matter. 2023 Feb 22;19(8):1596-1605. doi: 10.1039/d2sm01443b.
Hybrid phospholipid/block copolymer membranes where polymers and lipids are molecularly mixed or phase-separated into polymer-rich and lipid-rich domains are promising drug delivery materials. Harnessing the chemical diversity of polymers and the biocompatability of lipids is a compelling approach to design the next generation of drug carriers. Here, we report on the development of a microfluidics-based strategy analogous to produce lipid nanoparticles (LNPs) for the nanomanufacturing of multilayered hybrid nanoparticles (HNPs). Using X-ray scattering, Cryo-electron, and polarized microscopy we show that phosphatidylcholine (PC) and PBD--PEO (poly(butadiene--ethylene oxide)) hybrid membranes can be nanomanufactured by microfluidics into HNPs with dense and multilayered cores which are ideal carriers of low-solubility drugs of the Biopharmaceutical Classification System (BCS) II and IV such as antimalarial DSM265 and Paclitaxel, respectively.
混合磷脂/嵌段共聚物膜中聚合物和脂质分子混合或相分离成富含聚合物和富含脂质的区域,是有前途的药物输送材料。利用聚合物的化学多样性和脂质的生物相容性是设计下一代药物载体的一种引人注目的方法。在这里,我们报告了一种基于微流控的策略的发展,类似于生产用于纳米制造多层混合纳米颗粒(HNPs)的脂质纳米颗粒(LNPs)。使用 X 射线散射、低温电子显微镜和偏光显微镜,我们表明磷脂酰胆碱(PC)和 PBD-PEO(聚(丁二烯-氧化乙烯))混合膜可以通过微流控技术纳米制造 HNPs,具有致密的多层核心,是低溶解度药物的理想载体,这些药物分别属于生物制药分类系统(BCS)II 和 IV 类,如抗疟药 DSM265 和紫杉醇。
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