Department of Polymer Science & Engineering, State Key Laboratory of Analytical Chemistry for Life Science, College of Chemistry & Chemical Engineering, Nanjing University, Nanjing, 210023, China.
Department of Polymer Science & Engineering, State Key Laboratory of Analytical Chemistry for Life Science, College of Chemistry & Chemical Engineering, Nanjing University, Nanjing, 210023, China; Key Laboratory of Biotechnology and Bioresources Utilization of Ministry of Education, Dalian Minzu University, Dalian, 116600, China.
Biomaterials. 2023 Mar;294:121993. doi: 10.1016/j.biomaterials.2023.121993. Epub 2023 Jan 2.
Integrating the imaging techniques of near-infrared fluorescence (NIRF) and photoacoustic (PA) can make up for each other and provide more useful medical information. Ratiometric imaging activated by disease-associated biomarkers can further augment imaging specificity. However, very few studies have employed the NIRF/PA dual-modal ratiometric imaging to improve the accuracy and specificity of disease diagnosis to date. In this paper, we present the synthesis of a nitric oxide (NO)-activated ratiometric NIRF/PA dual-modal nanoprobe RAPNP for in vivo NO imaging. The ratiometric imaging function was achieved jointly by a NO/acidity-responsive molecule DTP-BTDA and a nonresponsive fluorophore DTP-BBTD. In these fluorophores, the dithienopyrrole (DTP) moiety had strong electron-donating ability and imparted strong intramolecular charge transfer and relatively long emission wavelengths. The BTDA moiety in DTP-BTDA could be rapidly oxidized by NO under weak acidic environments, achieving the NIRF and PA signal activation. By using RAPNP as a contrast agent, we achieved the ratiometric detection of the endogenous NO in inflammatory bowel disease by NIRF/PA dual-modal imaging. This work provides the first case of the NIRF/PA dual-signal ratiometric probe for the real-time detection of NO in vivo.
将近红外荧光 (NIRF) 和光声 (PA) 的成像技术相结合可以相互补充,提供更有用的医学信息。由疾病相关生物标志物激活的比率成像可以进一步提高成像的特异性。然而,到目前为止,很少有研究利用 NIRF/PA 双模态比率成像来提高疾病诊断的准确性和特异性。在本文中,我们介绍了一种一氧化氮 (NO) 激活的比率 NIRF/PA 双模态纳米探针 RAPNP 的合成,用于体内 NO 成像。比率成像功能是通过一种对 NO/酸度有响应的分子 DTP-BTDA 和一种无响应的荧光团 DTP-BBTD 共同实现的。在这些荧光团中,二噻吩并吡咯 (DTP) 部分具有很强的供电子能力,赋予了很强的分子内电荷转移和相对较长的发射波长。DTP-BTDA 中的 BTDA 部分可以在弱酸性环境下被 NO 快速氧化,从而激活 NIRF 和 PA 信号。我们使用 RAPNP 作为对比剂,通过 NIRF/PA 双模态成像实现了对炎症性肠病中内源性 NO 的比率检测。这项工作首次报道了用于体内实时检测 NO 的 NIRF/PA 双信号比率探针。