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Dual asymmetric centrifugation as a novel method to prepare highly concentrated dispersions of PEG-b-PCL polymersomes as drug carriers

机译:双孔离心作为一种制备高浓缩分散的PEG-B-PCL聚合物作为药物载体的方法

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摘要

Polymersomes are vesicles formed by self-assembly from block copolymers. A widely studied biodegradable diblock copolymer that forms polymersomes is poly(ethylene-glycol)-block-poly(e-caprolactone) (PEG-b-PCL). Polymersomes from this copolymer have been prepared by various methods. Major drawbacks are either the use of organic solvents, the need for post-preparation steps or low polymer concentration in resulting dispersions. Here, we studied the use of dual asymmetric centrifugation (DAC) as alternative and innovative preparation method by which these disadvantages can be overcome. We investigated the influence of process parameters on the size of resulting particles and their morphology. Additionally, the ability of this method to encapsulate both hydrophilic and hydrophobic drugs into polymersomes was assessed to evaluate its usefulness in the manufacture of nano-therapeutics. We found, that depending on process parameters, formation of nanosized vesicles with considerable drug encapsulation is achievable. Interestingly, with DAC polymersomes could also be prepared from a high molecular weight copolymer that was not able to generate vesicles by conventional methods. In addition, no organic solvents are used, no postprocessing is necessary and preparation is done quickly in a single vessel, minimizing product loss. DAC leads to highly concentrated, drug-loaded polymersome dispersions and therefore represents a major step towards their applicability in nanomedicine.
机译:聚合物是通过从嵌段共聚物自组装形成的囊泡。一种普遍研究的可生物降解二嵌段共聚物,形成聚合物的聚合物是聚(乙二醇) - Block-聚(E-己内酯)(PEG-B-PCL)。通过各种方法制备来自该共聚物的聚合物。主要缺点是使用有机溶剂,需要在制备步骤或低聚合物浓度中得到的分散体。在这里,我们研究了使用双孔离心(DAC)作为替代和创新的制备方法,可以克服这些缺点。我们调查了过程参数对所得粒子尺寸及其形态的影响。另外,评估该方法将亲水性和疏水药物包封成聚合物的能力,以评估其在纳米治疗剂的制造中的用途。我们发现,根据工艺参数,可实现具有相当大的药物包封的纳米囊泡的形成。有趣的是,对于DAC聚合物,也可以由高分子量共聚物制备,所述高分子量共聚物不能通过常规方法产生囊泡。此外,没有使用有机溶剂,不需要后处理,并且在单个血管中快速进行制备,最小化产物损失。 DAC导致高度浓缩的药物负载的聚合物分散体,因此表示朝向纳米胺的适用性的重大步骤。

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