International Joint Research Laboratory for Biointerface and Biodetection, State Key Laboratory of Food Science and Technology, School of Food Science and Technology, Jiangnan University, Wuxi, Jiangsu 214122, P. R. China.
Anal Chem. 2024 Apr 9;96(14):5677-5685. doi: 10.1021/acs.analchem.4c00665. Epub 2024 Mar 27.
Reactive oxygen species (ROS) are closely associated with the redox balance of the physiological environment, and monitoring ROS can aid in the early diagnosis of many diseases, including cancer. In this study, chiral vanadium trioxide/vanadium nitride (VO/VN) nanoparticles (NPs) modified with an organic dye (cyanine 3 [Cy3]) were prepared for ROS sensing. Chiral VO/VN NPs were prepared with the "ligand-induced chirality" strategy and showed a -factor of up to 0.12 at a wavelength of 512 nm. To the best of our knowledge, this -factor is the highest value of all chiral ceramic nanomaterials. The very high -factor of the nanoprobe confers very high sensitivity, because the higher -factor, the higher sensitivity. In the presence of ROS, V in the chiral VO/VN nanoprobe undergoes a redox reaction to form VO, reducing the circular dichroism and absorbance signals, whereas the fluorescence signal of Cy3 is restored. With this nanoprobe, the limits of detection for the circular dichroic and fluorescence signals in living cells are 0.0045 nmol/10 and 0.018 nmol/10 cells, respectively. This chiral nanoprobe can also monitor ROS levels in vivo by fluorescence. This strategy provides an innovative approach to the detection of ROS and is expected to promote the wider application of chiral nanomaterials for biosensing.
活性氧(ROS)与生理环境的氧化还原平衡密切相关,监测 ROS 有助于早期诊断许多疾病,包括癌症。在这项研究中,制备了手性三氧化二钒/氮化钒(VO/VN)纳米粒子(NPs)并用有机染料(菁染料 3 [Cy3])修饰,用于 ROS 传感。手性 VO/VN NPs 采用“配体诱导手性”策略制备,在 512nm 波长下的因子高达 0.12。据我们所知,这个因子是所有手性陶瓷纳米材料中的最高值。纳米探针的非常高的因子赋予了非常高的灵敏度,因为更高的因子意味着更高的灵敏度。在 ROS 的存在下,手性 VO/VN 纳米探针中的 V 经历氧化还原反应形成 VO,从而降低圆二色性和吸收信号,而 Cy3 的荧光信号得到恢复。使用这种纳米探针,活细胞中圆二色性和荧光信号的检测限分别为 0.0045 nmol/10 和 0.018 nmol/10 个细胞。这种手性纳米探针还可以通过荧光在体内监测 ROS 水平。这种策略为 ROS 的检测提供了一种创新的方法,有望促进手性纳米材料在生物传感中的更广泛应用。