Chemical and Materials Engineering, The University of Auckland, New Zealand.
The MacDiarmid Institute for Advanced Materials and Nanotechnology, Wellington, New Zealand.
Soft Matter. 2022 Jun 22;18(24):4513-4526. doi: 10.1039/d2sm00383j.
Block copolymers have garnered recent attention due to their ability to contain molecular cargo within nanoscale domains and release said cargo in aqueous environments. However, the release kinetics of cargo from these thin-films has not yet been reported. Knowledge of the release quantities and release profiles of these systems is paramount for applications of these systems. Here, Polystyrene--poly(ethylene oxide) (PS--PEO) was co-assembled with fluorescein isothiocyanate isomer I-lysozyme (FITC-LZ) and fluorescein isothiocyanate isomer I-TAT (FITC-TAT), such that these molecular cargos arrange within the PEO domains of the thin films. We show that high loading ratios of cargo/PS--PEO do not significantly impact the nanostructure of the films; however, a loading limit appears to be present with aggregates of protein forming at the microscale with higher loading ratios. The presence of lysozyme (LZ) within the films was confirmed qualitatively after aqueous exposure through photo-induced force microscopy (PiFM) imaging at the Amide I characteristic peak (∼1650 cm). Furthermore, we demonstrate that LZ maintains activity and structure after exposure to the polymer solvent (benzene/methanol/water mix). Finally, we demonstrate quantitatively 20-80 ng cm of cargo is released from these films, depending on the cargo incorporated. We show that the larger molecule lysozyme is released over a longer time than the smaller TAT peptide. Finally, we demonstrate the ability to tune the quantity of cargo released by altering the thickness of the PS--PEO thin-films during fabrication.
嵌段共聚物由于能够将分子货物包含在纳米级域内并在水相环境中释放所述货物而受到近期关注。然而,这些薄膜中货物的释放动力学尚未得到报道。了解这些系统的释放数量和释放曲线对于这些系统的应用至关重要。在这里,聚苯乙烯-聚(氧化乙烯)(PS-PEO)与异硫氰酸荧光素异构体 I-溶菌酶(FITC-LZ)和异硫氰酸荧光素异构体 I-TAT(FITC-TAT)共组装,使得这些分子货物在薄膜的 PEO 域内排列。我们表明,货物/PS-PEO 的高装载比不会显著影响薄膜的纳米结构;然而,似乎存在一个装载限制,因为在更高的装载比下,蛋白质聚集形成微尺度的聚集体。通过在酰胺 I 特征峰(约 1650 cm)处进行光致力显微镜(PiFM)成像,在水暴露后定性地证实了薄膜中存在溶菌酶(LZ)。此外,我们证明 LZ 在暴露于聚合物溶剂(苯/甲醇/水混合物)后保持活性和结构。最后,我们定量地证明了从这些薄膜中释放了 20-80ng cm 的货物,具体取决于所包含的货物。我们表明,较大的溶菌酶分子的释放时间比较小的 TAT 肽长。最后,我们通过改变 PS-PEO 薄膜在制造过程中的厚度来展示调节释放货物数量的能力。