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一锅法合成用于生物缀合的高分散荧光纳米金刚石。

One-Pot Synthesis of Highly Dispersible Fluorescent Nanodiamonds for Bioconjugation.

机构信息

Department of Molecular Engineering, Graduate School of Engineering , Kyoto University , Nishikyo-ku, Kyoto 615-8519 , Japan.

Institute for Protein Research (IPR) , Osaka University , 3-2 Yamadaoka , Suita-shi, Osaka 565-0871 , Japan.

出版信息

Bioconjug Chem. 2018 Aug 15;29(8):2786-2792. doi: 10.1021/acs.bioconjchem.8b00412. Epub 2018 Jul 18.

Abstract

Fluorescent nanodiamonds (FNDs) have been attracting much attention as promising therapeutic agents and probes for bioimaging and nanosensing. For their biological applications, several hydrophilizing methods to enhance FND colloidal stability have been developed to suppress their aggregation and the nonspecific adsorption to biomolecules in complex biomedical environments. However, these methods involve several complicated synthetic and purification steps, which prohibit the use of FNDs for bioapplications by biologists. In this study, we describe a simple one-pot FND hydrophilization method that comprises coating of the surface of the nanoparticles with COOH-terminated hyperbranched polyglycerol (HPG-COOH). HPG-COOH-coated FNDs (FND-HPG-COOHs) were found to exhibit excellent dispersibility under physiological conditions despite the thinness of the 5 nm HPG-COOH layer. Biotinylated FND-HPG-COOHs specifically captured avidin molecules in the absence of nonspecific protein adsorption. Moreover, we demonstrated that FND-HPG-COOHs conjugated with antibodies can be used to selectively target integrins in fixed HeLa cells. In addition, intracellular temperature changes were measured via optically detected magnetic resonance using FND-HPG-COOHs conjugated with mitochondrial localization signal peptides. Our one-pot synthetic method will encourage the broad use of FNDs among molecular and cellular biologists and pave the way for extensive biological and biomedical applications of FNDs.

摘要

荧光纳米金刚石(FNDs)作为有前途的治疗剂和生物成像及纳米传感探针,引起了广泛关注。为了将其应用于生物学领域,已经开发了几种亲水化方法来增强 FND 的胶体稳定性,以抑制其在复杂生物医学环境中聚集和与生物分子的非特异性吸附。然而,这些方法涉及到几个复杂的合成和纯化步骤,这使得生物学家无法将 FND 用于生物应用。在本研究中,我们描述了一种简单的一锅法 FND 亲水化方法,该方法包括将 COOH 端超支化聚甘油(HPG-COOH)涂覆在纳米颗粒表面。尽管 HPG-COOH 层厚度只有 5nm,但 FND-HPG-COOH 在生理条件下表现出优异的分散性。生物素化的 FND-HPG-COOH 可以在没有非特异性蛋白质吸附的情况下特异性捕获亲和素分子。此外,我们证明了与抗体偶联的 FND-HPG-COOH 可以用于选择性靶向固定 HeLa 细胞中的整合素。此外,通过使用带有线粒体定位信号肽的 FND-HPG-COOH 进行光学检测磁共振,测量了细胞内的温度变化。我们的一锅合成方法将鼓励分子和细胞生物学家广泛使用 FND,并为 FND 的广泛生物学和生物医学应用铺平道路。

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