Optimization of the poloxamer 407-conjugated gelatin to synthesize pH-sensitive nanocarriers for controlled paclitaxel delivery

IF 2.6 4区 化学 Q3 POLYMER SCIENCE
Huy Q. Ly, Yin-Ju Chen, Van Toan Nguyen, Ching-Li Tseng
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Abstract

Chemotherapy is one of the most prevalent and efficacious treatments for a wide variety of cancers; however, chemotherapeutic agents have clinically limited applications due to their low water solubility and risk of side effects. Nanomedicine can help to easily deliver hydrophobic and hydrophilic agents for cancer treatment. Here, we describe a nanocarrier system that enables the sustainable and controllable release of hydrophobic anticancer drugs, Paclitaxel, based on poloxamer 407-conjugated gelatin (GeP) copolymers. The particle size, zeta potential, morphology, and thermal stability of the nanogels were characterized. The successful synthesis of nanogels was confirmed by analyzing their chemical components. Among the GePs at different amounts of poloxamer 407, a ratio of gelatin and poloxamer (Ge:P) at 1:15 for preparation resulted in the nanogels being positive in charge, spherical in shape, and 97.84 ± 2.94 nm in hydrodynamic diameter (Dh), with optimal drug-carrying efficacy. The in vitro drug release from nanogels was accelerated in the tumor microenvironment at pH 5.5 in comparison to pH 7.4, and the drug release kinetics from nanogels were due to Fickian diffusion. Finally, the cytotoxicity assays indicated that GePs were biocompatible nanocarriers without toxicity on both normal (VERO) and breast cancer cell (MCF-7) lines, which could improve the pharmacokinetics and pharmacodynamics of paclitaxel. Overall, these results revealed an optimal ratio (1:15) of Ge:P for the synthesis of pH-responsive hybrid nanogels for sufficient paclitaxel releasement to kill MCF-7 for effective cancer treatment.

优化poloxam407 -明胶合成ph敏感的紫杉醇控制递送纳米载体
化疗是治疗多种癌症最普遍、最有效的方法之一;然而,化疗药物由于其低水溶性和副作用的风险,在临床上的应用受到限制。纳米医学可以很容易地为癌症治疗提供疏水和亲水药物。在这里,我们描述了一种基于poloxam407 -共轭明胶(GeP)共聚物的纳米载体系统,该系统可以实现疏水抗癌药物紫杉醇的可持续和可控释放。表征了纳米凝胶的粒径、zeta电位、形貌和热稳定性。通过分析纳米凝胶的化学成分,证实了纳米凝胶的成功合成。在不同poloxam407用量的GePs中,当明胶与poloxam407的比例(Ge:P)为1:15时,制备的纳米凝胶带正电荷,形状为球形,水动力直径(Dh)为97.84±2.94 nm,具有最佳的载药效果。与pH 7.4相比,pH为5.5的肿瘤微环境加速了纳米凝胶的体外药物释放,并且纳米凝胶的药物释放动力学是由于菲克扩散。最后,细胞毒性实验表明,GePs是生物相容性纳米载体,对正常细胞(VERO)和乳腺癌细胞(MCF-7)均无毒性,可以改善紫杉醇的药代动力学和药效学。总的来说,这些结果揭示了Ge:P的最佳比例(1:15),以合成ph响应的混合纳米凝胶,从而释放足够的紫杉醇来杀死MCF-7,从而有效地治疗癌症。
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来源期刊
Journal of Polymer Research
Journal of Polymer Research 化学-高分子科学
CiteScore
4.70
自引率
7.10%
发文量
472
审稿时长
3.6 months
期刊介绍: Journal of Polymer Research provides a forum for the prompt publication of articles concerning the fundamental and applied research of polymers. Its great feature lies in the diversity of content which it encompasses, drawing together results from all aspects of polymer science and technology. As polymer research is rapidly growing around the globe, the aim of this journal is to establish itself as a significant information tool not only for the international polymer researchers in academia but also for those working in industry. The scope of the journal covers a wide range of the highly interdisciplinary field of polymer science and technology, including: polymer synthesis; polymer reactions; polymerization kinetics; polymer physics; morphology; structure-property relationships; polymer analysis and characterization; physical and mechanical properties; electrical and optical properties; polymer processing and rheology; application of polymers; supramolecular science of polymers; polymer composites.
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