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复杂的 pH 依赖性相互作用弱聚电解质嵌段共聚物胶束和分子荧光染料之间。

Complex pH-Dependent Interactions between Weak Polyelectrolyte Block Copolymer Micelles and Molecular Fluorophores.

机构信息

Department of Materials Science and Engineering, University of California, Irvine, Irvine, California 92697-2585, United States.

Department of Physics and Astronomy, University of California, Irvine, Irvine, California 92697-4575, United States.

出版信息

Langmuir. 2022 Feb 15;38(6):2038-2045. doi: 10.1021/acs.langmuir.1c02889. Epub 2022 Feb 4.

Abstract

Amphiphilic block copolymers with weak polyelectrolyte blocks can assemble stimulus-responsive nanostructures and interfaces. Applications of these materials in drug delivery, biomimetics, and sensing largely rely on the well-understood swelling of polyelectrolyte chains upon deprotonation, often induced by changes in pH or ionic strength. This deprotonation can also tune interfacial interactions between the polyelectrolyte blocks and surrounding solution, an effect which is less studied than morphological swelling of polyelectrolytes but can be just as critical for intended function. Here, we investigate whether the pH-driven morphological response of polyelectrolyte-bearing nanostructures also affects the interactions of these nanostructures with molecules in solution, using micelles of a short-chain polybutadiene--poly(acrylic acid) (pBd-pAA) as a model system. We introduce a Förster resonance energy transfer (FRET) approach to probe interactions between micelles and fluorescent molecular solutes as a function of solution pH. As expected, the pAA corona of these pBd-pAA micelles increases in thickness monotonically as a function of pH. However, FRET efficiency, which provides a metric of the spatial proximity of fluorescently labeled micelles and freely diffusing fluorophores, exhibits complex nonmonotonic behavior as a function of pH, indicating that the average separation of micelles and acceptor fluorophores is not strictly correlated with micelle swelling. Dialysis experiments quantify the affinity of fluorophores for micelles as a function of pH, confirming that changes in FRET are driven almost entirely by the pH-dependent affinity of the pAA block for the investigated molecular fluorophores, not simply by a shape change of the pAA corona. This study provides key insights into the interfacial interactions between weak-polyelectrolyte-bearing nanostructures and molecular solutes, of importance for the development of their stimulus-responsive applications.

摘要

具有弱聚电解质嵌段的两亲嵌段共聚物可以组装刺激响应纳米结构和界面。这些材料在药物传递、仿生学和传感中的应用在很大程度上依赖于聚电解质链在去质子化时的溶胀,通常是由 pH 或离子强度的变化引起的。这种去质子化还可以调节聚电解质嵌段与周围溶液之间的界面相互作用,这种效应的研究不如聚电解质的形态溶胀那么多,但对预期的功能同样重要。在这里,我们研究了带有聚电解质的纳米结构的 pH 驱动形态响应是否也会影响这些纳米结构与溶液中分子的相互作用,使用短链聚丁二烯-聚(丙烯酸)(pBd-pAA)的胶束作为模型系统。我们引入了Förster 共振能量转移(FRET)方法来探测胶束与荧光分子溶质之间的相互作用作为溶液 pH 的函数。正如预期的那样,这些 pBd-pAA 胶束的 pAA 冠层随着 pH 的增加而单调增加。然而,FRET 效率,它提供了荧光标记胶束和自由扩散荧光团之间空间接近度的度量,作为 pH 的函数表现出复杂的非单调行为,表明胶束和受体荧光团的平均分离与胶束溶胀没有严格的相关性。透析实验定量了荧光团对胶束的亲和力作为 pH 的函数,证实 FRET 的变化几乎完全是由 pAA 嵌段与所研究的分子荧光团的 pH 依赖性亲和力驱动的,而不仅仅是 pAA 冠层的形状变化。这项研究为弱聚电解质纳米结构与分子溶质之间的界面相互作用提供了关键的见解,对发展它们的刺激响应应用具有重要意义。

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