School of Materials Science and Engineering, Tianjin University , Tianjin, 300072, People's Republic of China.
Biomacromolecules. 2013 Nov 11;14(11):3973-84. doi: 10.1021/bm401087n. Epub 2013 Oct 29.
The pH-responsive micelles have enormous potential as nanosized drug carriers for cancer therapy due to their physicochemical changes in response to the tumor intracellular acidic microenvironment. Herein, a series of comb-like amphiphilic copolymers bearing acetal-functionalized backbone were developed based on poly[(2,4,6-trimethoxybenzylidene-1,1,1-tris(hydroxymethyl) ethane methacrylate-co-poly(ethylene glycol) methyl ether methacrylate] [P(TTMA-co-mPEGMA)] as effective nanocarriers for intracellular curcumin (CUR) release. P(TTMA-co-mPEGMA) copolymers with different hydrophobic-hydrophilic ratios were prepared by one-step reversible addition fragmentation chain transfer (RAFT) copolymerization of TTMA and mPEGMA. Their molecular structures and chemical compositions were confirmed by (1)H NMR, Fourier transform infrared spectroscopy (FT-IR) and gel permeation chromatography (GPC). P(TTMA-co-mPEGMA) copolymers could self-assemble into nanosized micelles in aqueous solution and displayed low critical micelle concentration (CMC). All P(TTMA-co-mPEGMA) micelles displayed excellent drug loading capacity, due to the strong π-π conjugate action and hydrophobic interaction between the PTTMA and CUR. Moreover, the hydrophobic PTTMA chain could be selectively hydrolyzed into a hydrophilic backbone in the mildly acidic environment, leading to significant swelling and final disassembly of the micelles. These morphological changes of P(TTMA-co-mPEGMA) micelles with time at pH 5.0 were determined by DLS and TEM. The in vitro CUR release from the micelles exhibited a pH-dependent behavior. The release rate of CUR was significantly accelerated at mildly acidic pH of 4.0 and 5.0 compared to that at pH 7.4. Toxicity test revealed that the P(TTMA-co-mPEGMA) copolymers exhibited low cytotoxicity, whereas the CUR-loaded micelles maintained high cytotoxicity for HepG-2 and EC-109 cells. The results indicated that the novel P(TTMA-co-mPEGMA) micelles with low CMC, small and tunable sizes, high drug loading, pH-responsive drug release behavior, and good biocompatibility may have potential as hydrophobic drug delivery nanocarriers for cancer therapy with intelligent delivery.
pH 响应性胶束由于其在响应肿瘤细胞内酸性微环境时的物理化学变化,在癌症治疗的纳米药物载体中具有巨大的潜力。在此,基于聚[(2,4,6-三甲氧基苯甲酰基-1,1,1-三(羟甲基)乙烷甲基丙烯酸酯-co-聚(乙二醇)甲醚甲基丙烯酸酯)] [P(TTMA-co-mPEGMA)],开发了一系列具有缩醛功能化主链的梳状两亲性嵌段共聚物,作为细胞内姜黄素 (CUR) 释放的有效纳米载体。通过 TTMA 和 mPEGMA 的一步可逆加成-断裂链转移 (RAFT) 共聚制备了不同疏水亲水平衡比的 P(TTMA-co-mPEGMA)共聚物。它们的分子结构和化学组成通过(1)H NMR、傅里叶变换红外光谱 (FT-IR) 和凝胶渗透色谱 (GPC) 得到证实。P(TTMA-co-mPEGMA)共聚物可以在水溶液中自组装成纳米尺寸的胶束,并且显示出低临界胶束浓度 (CMC)。由于 PTTMA 和 CUR 之间的强 π-π 共轭作用和疏水相互作用,所有 P(TTMA-co-mPEGMA)胶束都显示出出色的载药能力。此外,在温和酸性环境中,疏水的 PTTMA 链可以选择性地水解成亲水主链,导致胶束显著肿胀并最终解体。通过 DLS 和 TEM 确定了在 pH 5.0 下随时间变化的 P(TTMA-co-mPEGMA)胶束的这种形态变化。在 pH 值为 4.0 和 5.0 时,胶束中 CUR 的释放表现出 pH 依赖性行为,与 pH 值为 7.4 时相比,释放速度明显加快。毒性测试表明,P(TTMA-co-mPEGMA)共聚物具有低细胞毒性,而载有 CUR 的胶束对 HepG-2 和 EC-109 细胞保持高细胞毒性。结果表明,具有低 CMC、小且可调节尺寸、高载药量、pH 响应性药物释放行为和良好生物相容性的新型 P(TTMA-co-mPEGMA)胶束可能作为具有智能递药功能的癌症治疗疏水性药物递送纳米载体具有潜力。