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用生物相容的膦酸酯基聚合物涂层解锁上转换纳米粒子的长期稳定性。

Unlocking Long-Term Stability of Upconversion Nanoparticles with Biocompatible Phosphonate-Based Polymer Coatings.

机构信息

Chemical Sensors Group, Department of Chemical and Physical Sciences, University of Toronto Mississauga, Mississauga, Ontario, Canada L5L 1C6.

Gunning Group, Department of Chemical and Physical Sciences, University of Toronto Mississauga, Mississauga, Ontario, Canada L5L 1C6.

出版信息

Nano Lett. 2022 Sep 28;22(18):7285-7293. doi: 10.1021/acs.nanolett.2c00437. Epub 2022 Sep 6.

Abstract

Achieving long-term (>3 months) colloidal stability of upconversion nanoparticles (UCNPs) in biologically relevant buffers has been a major challenge, which has severely limited practical implementation of UCNPs in bioimaging and nanomedicine applications. To address this challenge, nine unique copolymers formulations were prepared and evaluated as UCNP overcoatings. These polymers consisted of a poly(isobutylene--maleic anhydride) (PIMA) backbone functionalized with different ratios and types of phosphonate anchoring groups and poly(ethylene glycol) (PEG) moieties. The syntheses were done as simple, one-pot nucleophilic addition reactions. These copolymers were subsequently coated onto NaYF:Yb,Er UCNPs, and colloidal stability was evaluated in 1 × PBS, 10 × PBS, and other buffers. UCNP colloidal stability improved (up to 4 months) when coated with copolymers containing greater proportions of anchoring groups and higher phosphonate valences. Furthermore, small molecules could be conjugated to these overcoated UCNPs by use of copper-free click chemistry, as was done to demonstrate suitability for sensor and bioprobe development.

摘要

实现上转换纳米粒子(UCNPs)在生物学相关缓冲液中超过 3 个月的长期胶体稳定性一直是一个重大挑战,这严重限制了 UCNPs 在生物成像和纳米医学应用中的实际应用。为了解决这一挑战,我们制备并评估了 9 种独特的共聚物配方作为 UCNP 的包覆层。这些聚合物由聚(异丁烯-马来酸酐)(PIMA)主链组成,该主链上带有不同比例和类型的膦酸锚固基团和聚乙二醇(PEG)部分。这些合成是通过简单的一锅亲核加成反应进行的。随后,将这些共聚物包覆在 NaYF:Yb,Er UCNPs 上,并在 1×PBS、10×PBS 和其他缓冲液中评估胶体稳定性。当用含有更多比例锚固基团和更高膦酸价的共聚物包覆 UCNPs 时,UCNP 的胶体稳定性得到了提高(长达 4 个月)。此外,还可以通过无铜点击化学将小分子共轭到这些包覆的 UCNPs 上,这证明了它们适合用于传感器和生物探针的开发。

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