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仿生纳米载体在靶向药物递送中的应用

Implications of biomimetic nanocarriers in targeted drug delivery.

作者信息

Al-Hetty Hussein Riyadh Abdul Kareem, Kadhim Maitha Sameer, Al-Tamimi Jabbar Hassoon Zamil, Ahmed Nahid Mahmood, Jalil Abduladheem Turki, Saleh Marwan Mahmood, Kandeel Mahmoud, Abbas Ruaa H

机构信息

Department of Nursing, Al-Maarif University College, Ramadi, Iraq.

Department of Prevention Dentistry, Al-Rafidain University College, Baghdad, Iraq.

出版信息

Emergent Mater. 2023;6(1):1-13. doi: 10.1007/s42247-023-00453-8. Epub 2023 Jan 18.

Abstract

Nanomaterials and nanostructures have shown fascinating performances in various biomedicine fields, from cosmetic to cancer diagnosis and therapy. Engineered nanomaterials can encapsulate both lipophilic and hydrophilic substances/drugs to eliminate their limitations in the free forms, such as low bioavailability, multiple drug administration, off-target effects, and various side effects. Moreover, it is possible to deliver the loaded cargo to the desired site of action using engineered nanomaterials. One approach that has made nanocarriers more sophisticated is the "biomimetic" concept. In this scenario, biomolecules (e.g., natural proteins, peptides, phospholipids, cell membranes) are used as building blocks to construct nanocarriers and/or modify agents. For instance, it has been reported that specific cells tend to migrate to a particular site during specific circumstances (e.g., inflammation, tumor formation). Employing the cell membrane of these cells as a coating for nanocarriers confers practical targeting approaches. Accordingly, we introduce the biomimetic concept in the current study, review the recent studies, challenge the issues, and provide practical solutions.

摘要

纳米材料和纳米结构在从化妆品到癌症诊断与治疗等各种生物医学领域都展现出了迷人的性能。工程化纳米材料可以封装亲脂性和亲水性物质/药物,以消除它们以游离形式存在时的局限性,如低生物利用度、多次给药、脱靶效应和各种副作用。此外,使用工程化纳米材料有可能将负载的货物递送至所需的作用部位。使纳米载体更加复杂的一种方法是“仿生”概念。在这种情况下,生物分子(例如天然蛋白质、肽、磷脂、细胞膜)被用作构建纳米载体和/或修饰剂的基石。例如,据报道,特定细胞在特定情况下(例如炎症、肿瘤形成)倾向于迁移到特定部位。将这些细胞的细胞膜用作纳米载体的涂层赋予了实用的靶向方法。因此,我们在本研究中引入仿生概念,回顾近期研究,探讨相关问题,并提供实际解决方案。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/c81d/9846706/7bb8aa2f8cfa/42247_2023_453_Sch1_HTML.jpg

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