Department of Orthopedic Surgery, Orthopedic Research Institute, West China Hospital, Sichuan University, Chengdu, China.
Department of Periodontology, Justus-Liebig-University of Giessen, Ludwigstraße 23, 35392 Giessen, Germany.
J Mater Chem B. 2023 Aug 24;11(33):7873-7912. doi: 10.1039/d3tb01008b.
Intracellular cargo delivery, the introduction of small molecules, proteins, and nucleic acids into a specific targeted site in a biological system, is an important strategy for deciphering cell function, directing cell fate, and reprogramming cell behavior. With the advancement of nanotechnology, many researchers use nanoparticles (NPs) to break through biological barriers to achieving efficient targeted delivery in biological systems, bringing a new way to realize efficient targeted drug delivery in biological systems. With a similar size to many biomolecules, NPs possess excellent physical and chemical properties and a certain targeting ability after functional modification on the surface of NPs. Currently, intracellular cargo delivery based on NPs has emerged as an important strategy for genome editing regimens and cell therapy. Although researchers can successfully deliver NPs into biological systems, many of them are delivered very inefficiently and are not specifically targeted. Hence, the development of efficient, target-capable, and safe nanoscale drug delivery systems to deliver therapeutic substances to cells or organs is a major challenge today. In this review, on the basis of describing the research overview and classification of NPs, we focused on the current research status of intracellular cargo delivery based on NPs in biological systems, and discuss the current problems and challenges in the delivery process of NPs in biological systems.
细胞内货物输送,即将小分子、蛋白质和核酸引入生物系统中的特定靶向部位,是破译细胞功能、指导细胞命运和重新编程细胞行为的重要策略。随着纳米技术的进步,许多研究人员利用纳米颗粒(NPs)突破生物屏障,在生物系统中实现高效靶向输送,为实现生物系统中高效靶向药物输送带来了新途径。NPs 的尺寸与许多生物分子相似,具有优异的物理和化学性质,并且经过 NPs 表面的功能修饰后具有一定的靶向能力。目前,基于 NPs 的细胞内货物输送已成为基因组编辑方案和细胞治疗的重要策略。尽管研究人员可以成功地将 NPs 递送到生物系统中,但许多 NPs 的递送效率非常低,且不能特异性靶向。因此,开发高效、靶向且安全的纳米级药物输送系统,将治疗物质递送到细胞或器官,是当今的主要挑战。在本文中,在描述 NPs 的研究概况和分类的基础上,我们重点介绍了基于 NPs 的细胞内货物输送在生物系统中的最新研究进展,并讨论了 NPs 在生物系统中的输送过程中当前存在的问题和挑战。