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Perspective highlights on biodegradable polymeric nanosystems for targeted therapy of solid tumors

机译:透视重点介绍可生物降解的聚合物纳米系统用于实体瘤的靶向治疗

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摘要

>Introduction: Polymeric nanoparticles (NPs) formulated using biodegradable polymers offer great potential for development of de novo drug delivery systems (DDSs) capable of delivering a wide range of bioactive agents. They can be engineered as advanced multifunctional nanosystems (NSs) for simultaneous imaging and therapy known as theranostics or diapeutics. >Methods: A brief prospective is provided on biomedical importance and applications of biodegradable polymeric NSs through reviewing the recently published literature. >Results: Biodegradable polymeric NPs present unique characteristics, including: nanoscaled structures, high encapsulation capacity, biocompatibility with non-thrombogenic and non-immunogenic properties, and controlled-/sustained-release profile for lipophilic and hydrophilic drugs. Once administered in vivo, all classes of biodegradable polymers (i.e., synthetic, semi-synthetic, and natural polymers) are subjected to enzymatic degradation; and hence, transformation into byproducts that can be simply eliminated from the human body. Natural and semi-synthetic polymers have been shown to be highly stable, much safer, and offer a non-/less-toxic means for specific delivery of cargo drugs in comparison with synthetic polymers. Despite being biocompatible and enzymatically-degradable, there are some drawbacks associated with these polymers such as batch to batch variation, high production cost, structural complexity, lower bioadhesive potential, uncontrolled rate of hydration, and possibility of microbial spoilage. These pitfalls have bolded the importance of synthetic counterparts despite their somewhat toxicity. >Conclusion: Taken all, to minimize the inadvertent effects of these polymers and to engineer much safer NSs, it is necessary to devise biopolymers with desirable chemical and biochemical modification(s) and polyelectrolyte complex formation to improve their drug delivery capacity in vivo.
机译:>简介:使用可生物降解的聚合物配制的聚合物纳米颗粒(NPs)为开发能够递送多种生物活性剂的从头药物递送系统(DDS)提供了巨大的潜力。它们可以被设计为先进的多功能纳米系统(NSs),用于同时进行成像和治疗的同时成像和治疗。 >方法:通过回顾最近发表的文献,简要介绍了生物医学重要性和可生物降解的聚合物NSs的应用。 >结果:可生物降解的聚合物NP具有独特的特性,包括:纳米级结构,高封装能力,具有非血栓形成和非免疫原性的生物相容性以及亲脂性和亲水性药物的控释/缓释特性。一旦在体内给药,所有种类的可生物降解的聚合物(即,合成的,半合成的和天然的聚合物)都将进行酶降解。因此,转化为可以简单地从人体中消除的副产物。与合成聚合物相比,天然和半合成聚合物已显示出高度稳定,更安全的特点,并提供了无毒/低毒的方式专门用于货运药物。尽管具有生物相容性和酶促降解性,但这些聚合物仍存在一些缺点,例如批次之间的差异,生产成本高,结构复杂,生物粘附潜力较低,水合速率不受控制以及微生物变质的可能性。尽管存在一定毒性,但这些陷阱使合成对应物的重要性大胆体现出来。 >结论:总而言之,为了最大程度地减少这些聚合物的无意作用并设计出更安全的NS,必须设计出具有理想化学和生物化学修饰形式以及聚电解质复合物形成的生物聚合物,以改善其药物作用体内传递能力。

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