State Key Laboratory of Oncogenes and Related Genes, School of Biomedical Engineering, ‡Department of Pharmacology, Institute of Medical Sciences & Translational Medicine Collaborative Innovation Center & Collaborative Innovation Center of Systems Biomedicineand, §Shanghai Key Laboratory of Gynecologic Oncology, Ren Ji Hospital, School of Medicine, and △Collaborative Innovation Center of Systems Biomedicine, Shanghai Jiao Tong University , Shanghai 200240, P. R. China.
ACS Appl Mater Interfaces. 2017 Feb 1;9(4):3995-4005. doi: 10.1021/acsami.6b15170. Epub 2017 Jan 24.
Surface-enhanced Raman scattering (SERS) tags can be utilized as optical labeling nanoprobes similar to fluorescent dyes and quantum dots for bioimaging with additional advantages of fingerprint vibrational signals as unique optical codes and ultranarrow line widths for multiplexing. However, the development of the SERS imaging technique is much less well-established compared to the devlopment of fluorescence imaging mainly because of speed limitations. An effective strategy for improving the SERS imaging speed and simultaneously maintaining the photostability of SERS tags has not, to the best of our knowledge, been reported. In this work, mesoporous silica- (MS-) coated gap-enhanced Raman tags (GERTs) were designed with built-in Raman reporters for off-resonance near-infrared laser excitation and reduced photothermal effects, leading to ultraphotostability during laser irradiation. Additionally, they achieve large amplification of Raman signals by combining the chemical (CHEM) and electromagnetic (EM) enhancement effects due to the subnanometer core-shell junction, so SERS imaging can be performed in a dramatically reduced duration. With these unique structural and optical advantages, MS GERTs exhibit high storage, pH, serum, and photostabilities; strong Raman enhancements; and favorable biocompatibility. Therefore, MS GERTs achieve long-term cell imaging that can last for 30 min without being photobleached and also maintain decent imaging effects. Furthermore, MS GERTs enable continuous and stable imaging in living tissues for more than 30 min. With these advantages, MS GERTs might potentially have more biomedical applications.
表面增强拉曼散射 (SERS) 标签可用作光学标记纳米探针,类似于荧光染料和量子点,用于生物成像,具有指纹振动信号作为独特光学代码和超窄线宽用于复用的额外优势。然而,与荧光成像的发展相比,SERS 成像技术的发展要差得多,主要是因为速度限制。据我们所知,还没有报道一种有效的策略来提高 SERS 成像速度,同时保持 SERS 标签的光稳定性。在这项工作中,设计了介孔硅(MS)涂层间隙增强拉曼标签(GERT),内置拉曼报告器用于离共振近红外激光激发和减少光热效应,从而在激光照射期间实现超光稳定性。此外,由于亚纳米核壳结,它们通过结合化学(CHEM)和电磁(EM)增强效应实现了拉曼信号的大幅放大,因此可以在大大缩短的时间内进行 SERS 成像。由于这些独特的结构和光学优势,MS GERT 表现出高存储、pH 值、血清和光稳定性、强拉曼增强和良好的生物相容性。因此,MS GERT 可以实现长达 30 分钟的细胞长期成像而不会被光漂白,并且还能保持良好的成像效果。此外,MS GERT 能够在活组织中连续稳定地成像超过 30 分钟。由于这些优势,MS GERT 可能具有更多的生物医学应用。