Institute of Ultrasound ImagingofChongqing Medical University, Chongqing Key Laboratory of Ultrasound Molecular Imaging, Chongqing, 400010, China.
The First Affiliated Hospital of Chongqing Medical University, Department of Ultrasound, Chongqing 400016, China.
Biochem Biophys Res Commun. 2018 Jul 12;502(2):255-261. doi: 10.1016/j.bbrc.2018.05.155. Epub 2018 May 25.
Nanoprobes are small enough to circulate within the vasculature and can reach tumour tissues through the endothelial gap, providing a new strategy for accurate tumour monitoring and imaging-guided antitumour therapy at the molecular level. Both photoacoustic and ultrasonic imaging are noninvasive tools for cancer detection via the application of nanoprobes. In this study, a polymeric multifunctional nanoparticle probe loaded with gold nanorods (Au-NRs) and liquid perfluorocarbon (perfluorinated hexane/PFH) and conjugated to a monoclonal antibody (MAGE-1 antibody) to melanoma-associated antigens (MAGE) targeting melanoma was successfully prepared by the double emulsion and carbodiimide methods as a targeted photoacoustic/ultrasound dual-mode imaging contrast agent (MAGE-Au-PFH-NPs). Cell-targeting experiments in vitro showed large amounts of MAGE-Au-PFH-NPs surrounding B16 melanoma cells in the targeted group. The photoacoustic signal in the targeted group was significantly increased, and the duration was longer than that in the untargeted group in vivo. The photoacoustic signal of the nanoprobes was enhanced with increased Au-NR concentration in the photoacoustic experiment in vitro. The enhanced signal was observed by ultrasound after 808-nm laser irradiation. A cytotoxicity and biocompatibility test showed that MAGE-Au-PFH-NPs exhibited good biological safety. The MAGE-Au-PFH-NPs can be used as a photoacoustic/ultrasound dual-mode contrast agent to lay the foundation for a promising new approach for the noninvasive targeting, monitoring and treatment of tumours.
纳米探针足够小,可以在血管中循环,并且可以通过内皮间隙到达肿瘤组织,为在分子水平上进行准确的肿瘤监测和成像引导的抗肿瘤治疗提供了一种新策略。光声和超声成像是通过纳米探针应用进行癌症检测的非侵入性工具。在这项研究中,通过双重乳液和碳二亚胺方法成功制备了负载金纳米棒(Au-NRs)和液态全氟碳(全氟己烷/PFH)并连接到针对黑色素瘤相关抗原(MAGE)的单克隆抗体(MAGE-1 抗体)的聚合物多功能纳米探针,作为靶向光声/超声双模成像造影剂(MAGE-Au-PFH-NPs)。体外细胞靶向实验表明,大量的 MAGE-Au-PFH-NPs 包围着靶向组中的 B16 黑色素瘤细胞。与未靶向组相比,靶向组中的光声信号显著增加,持续时间更长。体外光声实验中,随着 Au-NR 浓度的增加,纳米探针的光声信号增强。在 808nm 激光照射后,可以通过超声观察到增强的信号。细胞毒性和生物相容性测试表明 MAGE-Au-PFH-NPs 表现出良好的生物安全性。MAGE-Au-PFH-NPs 可用作光声/超声双模造影剂,为非侵入性靶向、监测和治疗肿瘤的新方法奠定基础。