College of Materials Science and Engineering, South China University of Technology, Guangzhou 510640, People's Republic of China.
Nanotechnology. 2013 Sep 13;24(36):365101. doi: 10.1088/0957-4484/24/36/365101. Epub 2013 Aug 13.
Intracellular pH plays a critical role in the function of cells, and its regulation is essential for most cellular processes. In this study, we demonstrate a fluorescence resonance energy transfer (FRET)-based ratiometric pH nanosensor with carbon-dot (CD) as the carrier. The sensor was prepared by covalently linking a pH-sensitive fluorescent dye (fluorescein isothiocyanate, FITC) onto carbon-dot. As the FRET donor, the carbon-dot exhibits bright fluorescence emission as well as λex-dependent photoluminescence emission, and a suitable excitation wavelength for the donor (CD) can be chosen to match the energy acceptor (fluorescein moiety). The fluorescein moieties on a CD undergo structural and spectral conversion as the pH changes, affording the nanoplatform a FRET-based pH sensor. The CD-based system exhibits a significant change in fluorescence intensity ratio between pH 4 and 8 with a pKa value of 5.69. It also displays excellent water dispersibility, good spectral reversibility, satisfactory cell permeability and low cytotoxicity. Following the living cell uptake, this nanoplatform with dual-chromatic emissions can facilitate real-time visualization of the pH evolution involved in the endocytic pathway of the nanosensor. This reversible and low cytotoxic fluorescent nanoplatform may be highly valuable in a variety of biological studies, such as endocytic trafficking, endosome/lysosome maturation, and pH regulation in subcellular organelles.
细胞内 pH 值对细胞功能起着至关重要的作用,其调节对大多数细胞过程都是必不可少的。在这项研究中,我们展示了一种基于荧光共振能量转移(FRET)的比率型 pH 值纳米传感器,其载体为碳点(CD)。该传感器通过将 pH 敏感荧光染料(异硫氰酸荧光素,FITC)共价连接到碳点上来制备。作为 FRET 供体,碳点表现出明亮的荧光发射以及 λex 依赖性的光致发光发射,并且可以选择合适的供体(CD)激发波长以匹配能量受体(荧光素部分)。当 pH 值发生变化时,CD 上的荧光素部分会发生结构和光谱转换,从而为纳米平台提供了基于 FRET 的 pH 传感器。基于 CD 的系统在 pH 值为 4 到 8 之间表现出荧光强度比的显著变化,pKa 值为 5.69。它还具有出色的水分散性、良好的光谱可逆性、令人满意的细胞通透性和低细胞毒性。在被活细胞摄取后,这种具有双发射颜色的纳米平台可以促进纳米传感器内吞途径中 pH 值变化的实时可视化。这种可逆且低细胞毒性的荧光纳米平台在各种生物学研究中可能具有很高的价值,例如内吞运输、内体/溶酶体成熟以及亚细胞器中的 pH 调节。