Domiński Adrian, Konieczny Tomasz, Duale Khadar, Krawczyk Monika, Pastuch-Gawołek Gabriela, Kurcok Piotr
Centre of Polymer and Carbon Materials, Polish Academy of Sciences, 34, M. Curie-Skłodowskiej St, 41-819 Zabrze, Poland.
Department of Organic Chemistry, Bioorganic Chemistry and Biotechnology, Faculty of Chemistry, Silesian University of Technology, Krzywoustego 4, 44-100 Gliwice, Poland.
Polymers (Basel). 2020 Dec 2;12(12):2890. doi: 10.3390/polym12122890.
Nanoparticles based on amphiphilic copolymers with tunable physicochemical properties can be used to encapsulate delicate pharmaceutics while at the same time improving their solubility, stability, pharmacokinetic properties, reducing immune surveillance, or achieving tumor-targeting ability. Those nanocarriers based on biodegradable aliphatic polycarbonates are a particularly promising platform for drug delivery due to flexibility in the design and synthesis of appropriate monomers and copolymers. Current studies in this field focus on the design and the synthesis of new effective carriers of hydrophobic drugs and their release in a controlled manner by exogenous or endogenous factors in tumor-specific regions. Reactive groups present in aliphatic carbonate copolymers, undergo a reaction under the action of a stimulus: e.g., acidic hydrolysis, oxidation, reduction, etc. leading to changes in the morphology of nanoparticles. This allows the release of the drug in a highly controlled manner and induces a desired therapeutic outcome without damaging healthy tissues. The presented review summarizes the current advances in chemistry and methods for designing stimuli-responsive nanocarriers based on aliphatic polycarbonates for controlled drug delivery.
基于两亲性共聚物且具有可调节物理化学性质的纳米颗粒可用于封装精密药物,同时提高其溶解度、稳定性、药代动力学性质、减少免疫监视或实现肿瘤靶向能力。那些基于可生物降解脂肪族聚碳酸酯的纳米载体,由于在设计和合成合适的单体及共聚物方面具有灵活性,是一种特别有前景的药物递送平台。该领域目前的研究集中于新型高效疏水药物载体的设计与合成,以及它们在肿瘤特异性区域通过外源性或内源性因素以可控方式释放。脂肪族碳酸酯共聚物中存在的反应性基团在刺激作用下会发生反应,例如酸性水解、氧化、还原等,导致纳米颗粒形态发生变化。这使得药物能够以高度可控的方式释放,并在不损害健康组织的情况下诱导出理想的治疗效果。本综述总结了基于脂肪族聚碳酸酯用于可控药物递送的刺激响应性纳米载体的化学及设计方法的当前进展。