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Aqueous Self-Assembly of Poly(ethylene oxide)-block-Poly(ε-caprolactone) (PEO-b-PCL) Copolymers: Disparate Diblock Copolymer Compositions Give Rise to Nano- and Meso-Scale Bilayered Vesicles

机译:聚(环氧乙烷)-嵌段-聚(ε-己内酯)(PEO-b-PCL)共聚物的水性自组装:不同的二嵌段共聚物成分使纳米和中尺度的双层囊泡上升

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摘要

Nanoparticles formed from diblock copolymers of FDA approved PEO and PCL have generated considerable interest as in vivo drug delivery vehicles. Herein, we report the synthesis of the most extensive family PEO-b-PCL copolymers that vary over the largest range of number-average molecular weights (Mn: 3.6 – 57K), PEO weight fractions (fPEO: 0.08 – 0.33), and PEO chain lengths (0.75–5.8K) reported to date. These polymers were synthesized in order to establish the full range of aqueous phase behaviours of these diblock copolymers and to specifically identify formulations that were able to generate bilayered vesicles (polymersomes). Cryogenic transmission electron microscopy (cryo-TEM) was utilized in order to visualize the morphology of these structures upon aqueous self-assembly of dry polymer films. Nanoscale polymersomes were formed from PEO-b-PCL copolymers over a wide range of PEO weight fractions (fPEO: 0.14 – 0.27) and PEO molecular weights (0.75 – 3.8K) after extrusion of aqueous suspensions. Comparative morphology diagrams, which describe the nature of self-assembled structures as a function of diblock copolymer molecular weight and PEO weight fraction, show that in contrast to micron-scale polymersomes, which form only from a limited range of PEO-b-PCL diblock copolymer compositions, a multiplicity of PEO-b-PCL diblock copolymer compositions are able to give rise to nanoscale vesicles. These data underscore that PEO-b-PCL compositions that spontaneously form micron-sized polymersomes, as well as those that have previously been reported to form polymersomes via a cosolvent fabrication system, provide only limited insights into the distribution of PEO-b-PCL diblocks that give rise to nanoscale vesicles. The broad range of polymersome-forming PEO-b-PCL compositions described herein suggest the ability to construct extensive families of nanoscale vesicles of varied bilayer thickness, providing the ability to tune the timescales of vesicle degradation and encapsulant release based on the intended in vivo application.
机译:由FDA批准的PEO和PCL的二嵌段共聚物形成的纳米颗粒作为体内药物传递载体已引起了广泛的关注。在此,我们报道了最广泛的PEO-b-PCL族共聚物的合成,这些共聚物在数均分子量(Mn:3.6 – 57K),PEO重量分数(fPEO:0.08 – 0.33)和PEO的最大范围内变化迄今报告的链长(0.75–5.8K)。合成这些聚合物是为了确定这些二嵌段共聚物的水相行为的完整范围,并专门鉴定能够生成双层囊泡(聚合物囊泡)的制剂。为了在干燥聚合物膜的水自组装后可视化这些结构的形态,使用了低温透射电子显微镜(cryo-TEM)。水性悬浮液挤出后,由PEO-b-PCL共聚物形成的纳米级聚合物囊泡,其PEO重量分数(fPEO:0.14 – 0.27)和PEO分子量(0.75 – 3.8K)很大。比较形态图描述了自组装结构的性质与二嵌段共聚物分子量和PEO重量分数的关系,表明与仅由有限范围的PEO-b-PCL二嵌段形成的微米级聚合物体相反共聚物组合物,多种PEO-b-PCL二嵌段共聚物组合物能够产生纳米级囊泡。这些数据强调了自发形成微米级聚合物小体的PEO-b-PCL组合物,以及先前已报道通过助溶剂制造系统形成聚合物小体的那些,仅对PEO-b-PCL二嵌段的分布提供了有限的见解。产生纳米级囊泡。本文所述的形成聚合物小体的PEO-b-PCL组合物的范围广泛,表明能够构建各种双层厚度的纳米级囊泡的广泛家族,从而能够基于预期的体内应用来调节囊泡降解和包封剂释放的时间尺度。 。

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