College of Chemistry, Research Center for Analytical Sciences, State Key Laboratory of Medicinal Chemical Biology (Nankai University), Tianjin Key Laboratory of Molecular Recognition and Biosensing, Nankai University, 94 Weijin Road, Tianjin 300071, China.
Nanoscale. 2016 Dec 7;8(45):18987-18994. doi: 10.1039/c6nr06259h. Epub 2016 Nov 3.
Persistent luminescent nanoparticles (PLNPs) show great potential in realizing precision imaging due to the absence of in situ excitation and no background interference. However, the current PLNP-based tumour imaging is usually achieved by single targeting or passive targeting strategies, and thus it lacks high specificity and affinity for efficient persistent luminescence imaging in vivo. Herein we report the bioconjugation of multiple targeting ligands on the surface of PLNPs for dual-targeted bioimaging to improve the specificity and affinity of the PLNP nanoprobe for in vitro and in vivo bioimaging. The PLNPs were prepared by co-doping Cr and B into ZnGaOvia a hydrothermal-calcination method. While Cr doped ZnGaO PLNPs possess excellent near-infrared luminescence along with long afterglow and red light renewable near-infrared luminescence, doping of B into the PLNPs further improves the persistent luminescence. Conjugation of two targeting ligands, hyaluronic acid and folic acid, which have specificity toward the cluster determinant 44 receptor and folic acid receptor in tumour cells, respectively, provides synergistic targeting effects to enhance the specificity and affinity toward tumour cells. This work provides a dual-targeting strategy for fabricating PLNP-based nanoprobes to realize precision tumour-targeted bioimaging.
持续发光纳米粒子 (PLNPs) 由于不存在原位激发和无背景干扰,在实现精准成像方面具有很大的潜力。然而,目前基于 PLNP 的肿瘤成像通常通过单靶向或被动靶向策略来实现,因此缺乏对体内高效持续发光成像的高特异性和亲和力。在此,我们报告了在 PLNP 表面进行多配体偶联用于双重靶向生物成像,以提高 PLNP 纳米探针对体外和体内生物成像的特异性和亲和力。PLNPs 通过水热-煅烧法共掺杂 Cr 和 B 到 ZnGaO 中制备而成。掺杂 Cr 的 ZnGaO PLNPs 具有优异的近红外发光性能,同时具有长余辉和红色光可再生近红外发光,而将 B 掺杂到 PLNPs 中进一步提高了持续发光性能。将两种靶向配体(透明质酸和叶酸)偶联到 PLNPs 上,分别针对肿瘤细胞中的簇集决定因子 44 受体和叶酸受体,提供协同靶向效应,增强对肿瘤细胞的特异性和亲和力。这项工作为制备基于 PLNP 的纳米探针提供了一种双重靶向策略,以实现精准的肿瘤靶向生物成像。