Wang Qi, Zhang Xinmin, Tang Youguang, Xiong Yanwei, Wang Xu, Li Chunlai, Xiao Tangxin, Lu Feng, Xu Mengze
State Key Laboratory for Organic Electronics and Information Displays & Institute of Advanced Materials (IAM), Nanjing University of Posts & Telecommunications, Nanjing 210023, China.
Department of Liver Surgery, Shanghai Institute of Transplantation, Shanghai Engineering Research Center of Transplantation and Immunology, Renji Hospital, School of Medicine, Shanghai Jiao Tong University, Shanghai 200127, China.
Pharmaceutics. 2023 Jul 27;15(8):2027. doi: 10.3390/pharmaceutics15082027.
Photothermal therapy operated in the second near-infrared (NIR-II, 1000-1700 nm) window and fluorescence imaging in the NIR-IIb (1500-1700 nm) region have become the most promising techniques in phototheranostics. Their combination enables simultaneous high-resolution optical imaging and deep-penetrating phototherapy, which is essential for high-performance phototheranostics. Herein, carboxyl-functionalized small organic photothermal molecules (Se-TC) and multi-layered NIR-IIb emissive rare-earth-doped nanoparticles (NaYF:Yb,Er,Ce@NaYF:Yb,Nd@NaYF, RENP) were rationally designed and successfully synthesized. Then, high-performance hybrid phototheranostic nanoagents (Se-TC@RENP@F) were easily constructed through the coordination between Se-TC and RENP and followed by subsequent F127 encapsulation. The carboxyl groups of Se-TC can offer strong binding affinity towards rare-earth-doped nanoparticles, which help improving the stability of Se-TC@RENP@F. The multilayered structure of RENP largely enhance the NIR-IIb emission under 808 nm excitation. The obtained Se-TC@RENP@F exhibited high 1064 nm absorption (extinction coefficient: 24.7 L g cm), large photothermal conversion efficiency (PCE, 36.9%), good NIR-IIb emission (peak: 1545 nm), as well as great photostability. Upon 1064 nm laser irradiation, high hyperthermia can be achieved to kill tumor cells efficiently. In addition, based on the excellent NIR-IIb emission of Se-TC@RENP@F, in vivo angiography and tumor detection can be realized. This work provides a distinguished paradigm for NIR-IIb-imaging-guided NIR-II photothermal therapy and establishes an artful strategy for high-performance phototheranostics.
在第二近红外(NIR-II,1000 - 1700 nm)窗口进行的光热疗法以及在近红外IIb(1500 - 1700 nm)区域的荧光成像已成为光诊疗中最具前景的技术。它们的结合能够实现高分辨率光学成像与深层穿透光疗的同步进行,这对于高性能光诊疗至关重要。在此,合理设计并成功合成了羧基功能化的小分子有机光热分子(Se-TC)和多层近红外IIb发射型稀土掺杂纳米颗粒(NaYF:Yb,Er,Ce@NaYF:Yb,Nd@NaYF,RENP)。然后,通过Se-TC与RENP之间的配位作用并随后进行F127包封,轻松构建了高性能的混合光诊疗纳米试剂(Se-TC@RENP@F)。Se-TC的羧基能够对稀土掺杂纳米颗粒提供强结合亲和力,这有助于提高Se-TC@RENP@F的稳定性。RENP的多层结构在808 nm激发下极大地增强了近红外IIb发射。所获得的Se-TC@RENP@F表现出高的1064 nm吸收(消光系数:24.7 L g cm)、大的光热转换效率(PCE,36.9%)、良好的近红外IIb发射(峰值:1545 nm)以及出色的光稳定性。在1064 nm激光照射下,能够实现高效的高温以杀死肿瘤细胞。此外,基于Se-TC@RENP@F出色的近红外IIb发射,可实现体内血管造影和肿瘤检测。这项工作为近红外IIb成像引导的近红外II光热疗法提供了一个杰出的范例,并为高性能光诊疗建立了巧妙的策略。