State Key Laboratory of Food Science and Technology , Jiangnan University , Wuxi 214122 , P.R. China.
School of Food Science and Technology , Jiangnan University , Wuxi 214122 , P.R. China.
Anal Chem. 2019 May 21;91(10):6600-6607. doi: 10.1021/acs.analchem.9b00480. Epub 2019 May 7.
During apoptosis process, the release of cytochrome c (Cyt c) is considered to be a key factor in the intrinsic pathway and is often defined as no regression point. Quantitative detection of intracellular Cyt c remains a challenge. Herein, we have developed surface-enhanced Raman scattering (SERS)-fluorescence dual-mode nanosensors for the quantitative assay of Cyt c in living cells. Dual signal detection was achieved by constructing gold nanotriangles (AuNTs) nanosensors capable of specifically recognizing Cyt c. The nanosensors were prepared by modifying the aptamer of Cyt c on AuNTs and connecting the complementary strands modified with Cy5. The AuNTs provided both enhanced SERS signals and fluorescence quenching effects. Once cells were induced by external stimulus (such as toxins) to release Cyt c, Cyt c would specifically bind to its aptamer, and the complementary strands modified with Cy5 would detach which would result in weakened SERS signal and recovery of fluorescence signal. The experimental results showed that the nanosensors not only had excellent selectivity and sensitivity but also realized real-time monitoring of Cyt c translocation event from mitochondria to cytoplasm. The SERS and fluorescence intensity showed good linear relationship with Cyt c concentration ranging from 0.044 to 9.95 μM and achieved a minimum limit of detection (LOD) of 0.02 μM in living cells. The accuracy of intracellular Cyt c quantitative results was more than 90% compared with the ELISA results.
在细胞凋亡过程中,细胞色素 c(Cyt c)的释放被认为是内在途径的关键因素,通常被定义为无回退点。细胞内 Cyt c 的定量检测仍然是一个挑战。本文开发了用于活细胞中 Cyt c 定量测定的表面增强拉曼散射(SERS)-荧光双模纳米传感器。通过构建能够特异性识别 Cyt c 的金纳米三角形(AuNTs)纳米传感器实现了双信号检测。纳米传感器通过将 Cyt c 的适体修饰在 AuNTs 上并连接带有 Cy5 的互补链来制备。AuNTs 提供了增强的 SERS 信号和荧光猝灭效应。一旦细胞被外部刺激(如毒素)诱导释放 Cyt c,Cyt c 将特异性地与其适体结合,并且带有 Cy5 的互补链会分离,从而导致 SERS 信号减弱和荧光信号恢复。实验结果表明,纳米传感器不仅具有优异的选择性和灵敏度,而且还实现了 Cyt c 从线粒体到细胞质易位事件的实时监测。SERS 和荧光强度与 Cyt c 浓度呈良好的线性关系,范围从 0.044 到 9.95 μM,并在活细胞中实现了 0.02 μM 的最低检测限(LOD)。与 ELISA 结果相比,细胞内 Cyt c 定量结果的准确性超过 90%。