Department of Electrical and Computer Engineering, Texas Tech University, Lubbock, TX, 79409, United States.
Department of Mechanical Engineering, Texas Tech University, Lubbock, TX, 79409, United States.
Adv Healthc Mater. 2024 Oct;13(26):e2401213. doi: 10.1002/adhm.202401213. Epub 2024 Jun 25.
The recent decade has witnessed a remarkable surge in the field of nanoparticles, from their synthesis, characterization, and functionalization to diverse applications. At the nanoscale, these particles exhibit distinct physicochemical properties compared to their bulk counterparts, enabling a multitude of applications spanning energy, catalysis, environmental remediation, biomedicine, and beyond. This review focuses on specific nanoparticle categories, including magnetic, gold, silver, and quantum dots (QDs), as well as hybrid variants, specifically tailored for biomedical applications. A comprehensive review and comparison of prevalent chemical, physical, and biological synthesis methods are presented. To enhance biocompatibility and colloidal stability, and facilitate surface modification and cargo/agent loading, nanoparticle surfaces are coated with different synthetic polymers and very recently, cell membrane coatings. The utilization of polymer- or cell membrane-coated nanoparticles opens a wide variety of biomedical applications such as magnetic resonance imaging (MRI), hyperthermia, photothermia, sample enrichment, bioassays, drug delivery, etc. With this review, the goal is to provide a comprehensive toolbox of insights into polymer or cell membrane-coated nanoparticles and their biomedical applications, while also addressing the challenges involved in translating such nanoparticles from laboratory benchtops to in vitro and in vivo applications. Furthermore, perspectives on future trends and developments in this rapidly evolving domain are provided.
近十年来,纳米颗粒领域取得了显著的发展,涵盖了它们的合成、表征和功能化,以及多样化的应用。在纳米尺度上,这些颗粒表现出与体相材料不同的物理化学性质,从而实现了跨越能源、催化、环境修复、生物医学等多个领域的广泛应用。本综述重点关注特定的纳米颗粒类别,包括磁性、金、银和量子点(QDs),以及专门为生物医学应用设计的混合变体。我们对流行的化学、物理和生物合成方法进行了全面的综述和比较。为了提高生物相容性和胶体稳定性,并促进表面修饰和载药/载剂负载,纳米颗粒表面涂覆了不同的合成聚合物,最近还涂覆了细胞膜。聚合物或细胞膜涂覆的纳米颗粒的应用开辟了广泛的生物医学应用,如磁共振成像(MRI)、热疗、光疗、样品富集、生物测定、药物输送等。通过本综述,我们旨在提供一个关于聚合物或细胞膜涂覆的纳米颗粒及其生物医学应用的全面工具包,同时也解决了将这些纳米颗粒从实验室台面向体外和体内应用转化所涉及的挑战。此外,还对这一快速发展领域的未来趋势和发展进行了展望。