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两亲嵌段共聚物在控制和指定药物输送中的聚合物胶束转变中的作用。

Role of Unimers to Polymersomes Transition in Pluronic Blends for Controlled and Designated Drug Conveyance.

机构信息

Department of Chemistry, Sardar Vallabhbhai National Institute of Technology (SVNIT), Ichchhanath, Surat 395 007, Gujarat, India.

Biomedical Engineering, Indian Institute of Technology Gandhinagar (IITGn), Palaj, Gandhinagar 382 355, Gujarat, India.

出版信息

J Phys Chem B. 2024 Jun 27;128(25):6151-6166. doi: 10.1021/acs.jpcb.4c00561. Epub 2024 Jun 7.

Abstract

This study investigates the nanoscale self-assembly from mixtures of two symmetrical poly(ethylene oxide)-poly(propylene oxide)-pol(ethylene oxide) (PEO-PPO-PEO) block copolymers (BCPs) with different lengths of PEO blocks and similar PPO blocks. The blended BCPs (commercially known as Pluronic F88 and L81, with 80 and 10% PEO, respectively) exhibited rich phase behavior in an aqueous solution. The relative viscosity (η) indicated significant variations in the flow behavior, ranging from fluidic to viscous, thereby suggesting a possible micellar growth or morphological transition. The tensiometric experiments provided insight into the intermolecular hydrophobic interactions at the liquid-air interface favoring the surface activity of mixed-system micellization. Dynamic light scattering (DLS) and small-angle neutron scattering (SANS) revealed the varied structural morphologies of these core-shell mixed micelles and polymersomes formed under different conditions. At a concentration of ≤5% w/v, Pluronic F88 exists as molecularly dissolved unimers or Gaussian chains. However, the addition of the very hydrophobic Pluronic L81, even at a much lower (<0.2%) concentration, induced micellization and promoted micellar growth/transition. These results were further substantiated through molecular dynamics (MD) simulations, employing a readily transferable coarse-grained (CG) molecular model grounded in the MARTINI force field with density and solvent-accessible surface area (SASA) profiles. These findings proved that F88 underwent micellar growth/transition in the presence of L81. Furthermore, the potential use of these Pluronic mixed micelles as nanocarriers for the anticancer drug quercetin (QCT) was explored. The spectral analysis provided insight into the enhanced solubility of QCT through the assessment of the standard free energy of solubilization (Δ°), drug-loading efficiency (DL%), encapsulation efficiency (EE%), and partition coefficient (). A detailed optimization of the drug release kinetics was presented by employing various kinetic models. The [3-(4,5-dimethylthiazol-2-yl)-2,5-diphenyltetrazolium bromide] MTT assay, a frequently used technique for assessing cytotoxicity in anticancer research, was used to gauge the effectiveness of these QCT-loaded mixed nanoaggregates.

摘要

本研究考察了两种具有不同长度 PEO 嵌段和相似 PPO 嵌段的对称聚(环氧乙烷)-聚(丙烯氧化物)-聚(环氧乙烷)(PEO-PPO-PEO)嵌段共聚物(BCP)混合物的纳米自组装。混合 BCP(商品名为 Pluronic F88 和 L81,分别具有 80%和 10%的 PEO)在水溶液中表现出丰富的相行为。相对粘度(η)表明流动行为有明显变化,从流态到粘性,这表明可能存在胶束生长或形态转变。张力计实验提供了在液体-空气界面上有利于混合体系胶束化的分子间疏水相互作用的洞察力。动态光散射(DLS)和小角中子散射(SANS)揭示了这些核壳混合胶束和聚合物囊在不同条件下形成的不同结构形态。在浓度≤5%w/v 时,Pluronic F88 以分子溶解的单体或高斯链形式存在。然而,即使在低得多(<0.2%)浓度下添加非常疏水的 Pluronic L81,也会诱导胶束化并促进胶束生长/转变。这些结果通过使用易于转移的粗粒化(CG)分子模型进一步得到证实,该模型基于 MARTINI 力场,并具有密度和溶剂可及表面积(SASA)分布。这些发现证明了 F88 在 L81 的存在下经历了胶束生长/转变。此外,还探索了这些 Pluronic 混合胶束作为抗癌药物槲皮素(QCT)的纳米载体的潜在用途。光谱分析通过评估标准溶解自由能(Δ°)、药物负载效率(DL%)、包封效率(EE%)和分配系数(),提供了 QCT 溶解度增强的见解。通过采用各种动力学模型,对药物释放动力学进行了详细优化。MTT 比色法(3-(4,5-二甲基噻唑-2-基)-2,5-二苯基四唑溴盐)是抗癌研究中常用的评估细胞毒性的技术,用于评估这些负载 QCT 的混合纳米聚集体的有效性。

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