Martinez Andre P, Qamar Bareera, Fuerst Thomas R, Muro Silvia, Andrianov Alexander K
Institute for Bioscience and Biotechnology Research, University of Maryland , Rockville, Maryland 20850, United States.
Biomacromolecules. 2017 Jun 12;18(6):2000-2011. doi: 10.1021/acs.biomac.7b00537. Epub 2017 May 30.
A series of biodegradable drug delivery polymers with intrinsic multifunctionality have been designed and synthesized utilizing a polyphosphazene macromolecular engineering approach. Novel water-soluble polymers, which contain carboxylic acid and pyrrolidone moieties attached to an inorganic phosphorus-nitrogen backbone, were characterized by a suite of physicochemical methods to confirm their structure, composition, and molecular sizes. All synthesized polyphosphazenes displayed composition-dependent hydrolytic degradability in aqueous solutions at neutral pH. Their formulations were stable at lower temperatures, potentially indicating adequate shelf life, but were characterized by accelerated degradation kinetics at elevated temperatures, including 37 °C. It was found that synthesized polyphosphazenes are capable of environmentally triggered self-assembly to produce nanoparticles with narrow polydispersity in the size range of 150-700 nm. Protein loading capacity of copolymers has been validated via their ability to noncovalently bind avidin without altering biological functionality. Acid-induced membrane-disruptive activity of polyphosphazenes has been established with an onset corresponding to the endosomal pH range and being dependent on polymer composition. The synthesized polyphosphazenes facilitated cell-surface interactions followed by time-dependent, vesicular-mediated, and saturable internalization of a model protein cargo into cancer cells, demonstrating the potential for intracellular delivery.
利用聚磷腈大分子工程方法,设计并合成了一系列具有内在多功能性的可生物降解药物递送聚合物。通过一套物理化学方法对新型水溶性聚合物进行了表征,这些聚合物含有连接在无机磷氮主链上的羧酸和吡咯烷酮部分,以确认其结构、组成和分子大小。所有合成的聚磷腈在中性pH值的水溶液中均表现出与组成相关的水解降解性。它们的制剂在较低温度下稳定,这可能表明有足够的保质期,但在升高的温度(包括37°C)下具有加速的降解动力学。研究发现,合成的聚磷腈能够在环境触发下自组装,以产生尺寸范围在150-700nm、多分散性窄的纳米颗粒。共聚物的蛋白质负载能力已通过其在不改变生物功能的情况下非共价结合抗生物素蛋白的能力得到验证。聚磷腈的酸诱导膜破坏活性已经确定,其起始点对应于内体pH范围,并取决于聚合物组成。合成的聚磷腈促进了细胞表面相互作用,随后模型蛋白质货物以时间依赖性、囊泡介导和饱和内化的方式进入癌细胞,证明了其在细胞内递送方面的潜力。