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基于混合囊泡的药物传递系统的进展:提高抗癌药物的生物相容性、靶向性、治疗效果和药代动力学。

Advances in Hybrid Vesicular-based Drug Delivery Systems: Improved Biocompatibility, Targeting, Therapeutic Efficacy and Pharmacokinetics of Anticancer Drugs.

机构信息

Department of Pharmacy, Shri Rawatpura Sarkar University, Raipur, (C.G) - 492015, India.

Department of Pharmaceutical Sciences, Assam University (A Central University), Silchar-788011, Assam, India.

出版信息

Curr Drug Metab. 2022;23(9):757-780. doi: 10.2174/1389200223666220627110049.

Abstract

Anticancer drugs and diagnostics can be transported in nanoscale vesicles that provide a flexible platform. A hybrid nanoparticle, a nano assembly made up of many types of nanostructures, has the greatest potential to perform these two activities simultaneously. Nanomedicine has shown the promise of vesicular carriers based on lipopolymersomes, lipid peptides, and metallic hybrid nano-vesicle systems. However, there are significant limitations that hinder the clinical implementation of these systems at the commercial scale, such as low productivity, high energy consumption, expensive setup, long process durations, and the current cancer therapies described in this article. Combinatorial hybrid systems can be used to reduce the above limitations. A greater therapeutic index and improved clinical results are possible with hybrid nanovesicular systems, which integrate the benefits of many carriers into a single structure. Due to their unique properties, cell-based drug delivery systems have shown tremendous benefits in the treatment of cancer. Nanoparticles (NPs) can benefit significantly from the properties of erythrocytes and platelets, which are part of the circulatory cells and circulate for a long time. Due to their unique physicochemical properties, nanomaterials play an essential role in cell-based drug delivery. Combining the advantages of different nanomaterials and cell types gives the resulting delivery systems a wide range of desirable properties. NPs are nextgeneration core-shell nanostructures that combine a lipid shell with a polymer core. The fabrication of lipid-polymer hybrid NPs has recently undergone a fundamental shift, moving from a two-step to a one-step technique based on the joint self-assembly of polymers and lipids. Oncologists are particularly interested in this method as a combinatorial drug delivery platform because of its two-in-one structure. This article addresses various preparative methods for the preparation of hybrid nano-vesicular systems. It also discusses the cellular mechanism of hybrid nano-vesicular systems and describes the thorough knowledge of various hybrid vesicular systems.

摘要

抗癌药物和诊断试剂可以装载在纳米级囊泡中,为其提供一个灵活的平台。由多种纳米结构组成的纳米杂化粒子具有同时执行这两种功能的最大潜力。基于脂质体、脂肽和金属杂化纳米囊泡系统的囊泡载体,纳米医学已经显示出了前景。然而,这些系统在商业规模上的临床应用存在着显著的局限性,如低生产率、高能耗、昂贵的设备、长的处理时间,以及本文中描述的当前癌症疗法。组合杂化系统可以用来减少上述局限性。杂化纳米囊泡系统可以将多种载体的优势整合到单一结构中,从而获得更大的治疗指数和更好的临床效果。由于其独特的性质,基于细胞的药物输送系统在癌症治疗中显示出了巨大的益处。纳米颗粒(NPs)可以从红细胞和血小板的特性中受益,它们是循环细胞的一部分,并且可以长时间循环。由于其独特的物理化学性质,纳米材料在基于细胞的药物输送中起着至关重要的作用。将不同纳米材料和细胞类型的优势结合起来,可以赋予所得的输送系统广泛的理想特性。 NPs 是下一代核壳型纳米结构,它将脂质壳与聚合物核结合在一起。基于聚合物和脂质的联合自组装,脂质-聚合物杂化 NPs 的制备最近发生了根本性的转变,从两步法转变为一步法。由于其双功能结构,肿瘤学家对这种方法特别感兴趣,将其作为一种组合药物输送平台。本文介绍了制备杂化纳米囊泡系统的各种制备方法。它还讨论了杂化纳米囊泡系统的细胞机制,并描述了各种杂化囊泡系统的透彻了解。

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