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Protein-Based Drug Delivery Nanomedicine Platforms: Recent Developments

纳米医学 药物输送 纳米技术 靶向给药 药品 化学 计算生物学 纳米颗粒 材料科学 生物 药理学
作者
Alaa A. A. Aljabali,Meriem Rezigue,Rawan Alsharedeh,Mohammad A. Obeid,Vijay Mishra,Ángel Serrano‐Aroca,Murtaza M. Tambuwala
出处
期刊:Pharmaceutical nanotechnology [Bentham Science Publishers]
卷期号:10 (4): 257-267 被引量:11
标识
DOI:10.2174/2211738510666220817120307
摘要

Background: Naturally occurring protein cages, both viral and non-viral assemblies, have been developed for various pharmaceutical applications. Protein cages are ideal platforms as they are compatible, biodegradable, bioavailable, and amenable to chemical and genetic modification to impart new functionalities for selective targeting or tracking of proteins. The ferritin/ apoferritin protein cage, plant-derived viral capsids, the small Heat shock protein, albumin, soy and whey protein, collagen, and gelatin have all been exploited and characterized as drugdelivery vehicles. Protein cages come in many shapes and types with unique features such as unmatched uniformity, size, and conjugations. Objectives: The recent strategic development of drug delivery will be covered in this review, emphasizing polymer-based, specifically protein-based, drug delivery nanomedicine platforms. The potential and drawbacks of each kind of protein-based drug-delivery system will also be highlighted. Methods: Research examining the usability of nanomaterials in the pharmaceutical and medical sectors were identified by employing bibliographic databases and web search engines. Results: Rings, tubes, and cages are unique protein structures that occur in the biological environment and might serve as building blocks for nanomachines. Furthermore, numerous virions can undergo reversible structural conformational changes that open or close gated pores, allowing customizable accessibility to their core and ideal delivery vehicles. Conclusion: Protein cages' biocompatibility and their ability to be precisely engineered indicate they have significant potential in drug delivery and intracellular administration.

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