Conney Laboratory for Anticancer Research, School of Biomedical and Pharmaceutical Sciences, Guangdong University of Technology, Guangzhou, Guangdong, 510006, P. R. China.
Adv Healthc Mater. 2022 Jun;11(12):e2200044. doi: 10.1002/adhm.202200044. Epub 2022 Mar 4.
Metal ions are of widespread interest owing to their brilliant biomedical functions. However, a simple and universal nanoplatform designed for assembling a range of functional metal ions has not been explored. In this study, a concept of polyethylene glycol (PEG)-mediated transport of metal ions is proposed. 31 types of PEG-metal hybrid nanoparticles (P-MNPs) are successfully synthesized through anionic ring-opening polymerization (ROP), "thiol-ene" click reaction, and subsequent incorporation with multiple metal ions. Compared with other methods, the facile method proposed in this study can provide a feasible approach to design MNPs (mostly <200 nm) containing different metal ions and thus to explore their potential for cancer theranostics. As a proof-of-concept demonstration, four types P-MNPs, i.e., PEG-metal hybrid copper nanoparticles (PEG-Cu NPs), ruthenium nanoparticles (PEG-Ru NPs), and manganese nanoparticles (PEG-Mn NPs) or gadolinium nanoparticles (PEG-Gd NPs), are proven to be tailored for chemodynamic therapy, photothermal therapy, and magnetic resonance imaging of tumors, respectively. Overall, this study provides several metal ions-based nanomaterials with versatile functions for broad applications in cancer theranostics. Furthermore, it offers a promising tool that can be utilized for processing other metal-based nanoparticles and exploring their potential in the biomedical field.
金属离子因其出色的生物医学功能而备受关注。然而,尚未探索出一种用于组装多种功能金属离子的简单且通用的纳米平台。在本研究中,提出了一种基于聚乙二醇(PEG)介导的金属离子传输的概念。通过阴离子开环聚合(ROP)、“硫醇-烯”点击反应以及随后与多种金属离子的结合,成功合成了 31 种 PEG-金属杂化纳米颗粒(P-MNPs)。与其他方法相比,本研究中提出的简便方法为设计含有不同金属离子的 MNPs 提供了一种可行的途径,从而探索其在癌症治疗中的潜力。作为概念验证的演示,四种 P-MNPs,即 PEG-铜纳米颗粒(PEG-Cu NPs)、钌纳米颗粒(PEG-Ru NPs)、锰纳米颗粒(PEG-Mn NPs)或钆纳米颗粒(PEG-Gd NPs),分别被证明可用于化学动力学治疗、光热治疗和肿瘤磁共振成像。总体而言,本研究提供了几种基于金属离子的多功能纳米材料,可广泛应用于癌症治疗。此外,它还提供了一种有前途的工具,可用于处理其他基于金属的纳米颗粒,并探索其在生物医学领域的潜力。