Jao Dave, Xue Ye, Medina Jethro, Hu Xiao
Department of Physics and Astronomy, Rowan University, Glassboro, NJ 08028, USA.
Department of Biomedical Engineering, Rowan University, Glassboro, NJ 08028, USA.
Materials (Basel). 2017 May 9;10(5):517. doi: 10.3390/ma10050517.
There is a pressing need for long-term, controlled drug release for sustained treatment of chronic or persistent medical conditions and diseases. Guided drug delivery is difficult because therapeutic compounds need to survive numerous transport barriers and binding targets throughout the body. Nanoscale protein-based polymers are increasingly used for drug and vaccine delivery to cross these biological barriers and through blood circulation to their molecular site of action. Protein-based polymers compared to synthetic polymers have the advantages of good biocompatibility, biodegradability, environmental sustainability, cost effectiveness and availability. This review addresses the sources of protein-based polymers, compares the similarity and differences, and highlights characteristic properties and functionality of these protein materials for sustained and controlled drug release. Targeted drug delivery using highly functional multicomponent protein composites to guide active drugs to the site of interest will also be discussed. A systematical elucidation of drug-delivery efficiency in the case of molecular weight, particle size, shape, morphology, and porosity of materials will then be demonstrated to achieve increased drug absorption. Finally, several important biomedical applications of protein-based materials with drug-delivery function-including bone healing, antibiotic release, wound healing, and corneal regeneration, as well as diabetes, neuroinflammation and cancer treatments-are summarized at the end of this review.
对于慢性或持续性病症和疾病的持续治疗,长期、可控的药物释放有着迫切需求。引导药物递送很困难,因为治疗性化合物需要在全身跨越众多转运屏障并结合靶点。基于蛋白质的纳米级聚合物越来越多地用于药物和疫苗递送,以跨越这些生物屏障并通过血液循环到达其分子作用位点。与合成聚合物相比,基于蛋白质的聚合物具有生物相容性好、可生物降解、环境可持续性、成本效益高和易于获取等优点。本综述阐述了基于蛋白质的聚合物的来源,比较了它们的异同,并突出了这些蛋白质材料在持续和可控药物释放方面的特性和功能。还将讨论使用高功能多组分蛋白质复合材料进行靶向药物递送,以将活性药物引导至感兴趣的部位。随后将展示在材料的分子量、粒径、形状、形态和孔隙率方面对药物递送效率进行系统阐释,以实现更高的药物吸收。最后,本综述结尾总结了具有药物递送功能的蛋白质材料的几个重要生物医学应用,包括骨愈合、抗生素释放、伤口愈合和角膜再生,以及糖尿病、神经炎症和癌症治疗。