State Key Laboratory of Chemo/Bio-Sensing and Chemometrics, College of Chemistry and Chemical Engineering , Hunan University , Changsha 410082 , P. R. China.
Department of Chemistry , University of California-Riverside , Riverside , California 92521 , United States.
Anal Chem. 2019 Apr 2;91(7):4529-4536. doi: 10.1021/acs.analchem.8b05487. Epub 2019 Mar 13.
We report a ratiometric surface-enhanced Raman scattering (SERS) nanoprobe for imaging hypoxic living cells or tissues, using azo-alkynes assembled on a single-walled carbon nanotube (SWCNT) surface-functionalized with Ag/Au alloy nanoparticles (SWCNT/Ag/AuNPs). Under a hypoxic condition, azobenzene derivatives preassembled on the surface of the nanostructures are reduced stepwise by various reductases and eventually removed from the surface of the SWCNT/Ag/AuNPs, resulting in the loss of characteristic alkyne Raman bands at 2207 cm. Using 2D-band of SWCNTs at 2578 cm as the internal standard, we are able to determine the hypoxia level based on the ratio of two peak intensities ( I/ I) as demonstrated by the successful detection in different cell lines and rat liver tissue samples derived from hepatic ischemia surgery. By combining the outstanding anti-interference property of alkynes as SERS reporters and the distinct Raman responses of alkynes and SWCNTs in complex systems, this novel ratiometric SERS strategy holds promise in becoming a very useful tool for in vitro and in vivo monitoring of hypoxia in research and clinical settings.
我们报告了一种比率型表面增强拉曼散射(SERS)纳米探针,用于对缺氧活细胞或组织进行成像,该探针使用偶氮炔组装在表面功能化有银/金合金纳米粒子(SWCNT/Ag/AuNPs)的单壁碳纳米管(SWCNT)上。在缺氧条件下,预先组装在纳米结构表面上的偶氮苯衍生物通过各种还原剂逐步还原,并最终从 SWCNT/Ag/AuNPs 表面去除,导致在 2207cm 处的特征炔烃拉曼带消失。使用 SWCNTs 的 2D 带在 2578cm 处作为内标,我们能够基于两个峰强度比(I/ I)来确定缺氧水平,这通过在不同细胞系和来自肝缺血手术的大鼠肝组织样本中的成功检测得到证明。通过结合炔烃作为 SERS 报告物的优异抗干扰性以及在复杂体系中炔烃和 SWCNTs 的独特拉曼响应,这种新型比率型 SERS 策略有望成为研究和临床环境中体外和体内监测缺氧的非常有用的工具。