Laboratory of Single Molecule Biophysics , National Heart, Lung, and Blood Institute, National Institutes of Health , Bethesda , Maryland 20892 , United States.
Experimental Immunology Branch , National Cancer Institute, National Institutes of Health , Bethesda , Maryland 20892 , United States.
ACS Appl Mater Interfaces. 2020 Feb 5;12(5):6641-6650. doi: 10.1021/acsami.9b19245. Epub 2020 Jan 28.
There is an immense literature on detection of latent fingerprints (LFPs) with fluorescent nanomaterials because fluorescence is one of the most sensitive detection methods. Although many fluorescent probes have been developed for latent fingerprint detection, many challenges remain, including the low selectivity, complicated processing, high background, and toxicity of nanoparticles used to visualize LFPs. In this study, we demonstrate biocompatible, efficient, and low background LFP detection with poly(vinylpyrrolidone) (PVP) coated fluorescent nanodiamonds (FNDs). PVP-coated FND (FND@PVP) is biocompatible at the cellular level. They neither inhibit cellar proliferation nor induce cell death via apoptosis or other cell killing pathways. Moreover, they do not elicit an immune response in cells. PVP coating enhances the physical adhesion of FND to diverse substrates and in particular results in efficient binding of FND@PVP to fingerprint ridges due to the intrinsic amphiphilicity of PVP. Clear, well-defined ridge structures with first, second, and third-level of LFP details are revealed within minutes by FND@PVP. The combination of this binding specificity and the remarkable optical properties of FND@PVP permits the detection of LPFs with high contrast, efficiency, selectivity, sensitivity, and reduced background interference. Our results demonstrate that background-free imaging via multicolor emission and dual-modal imaging of FND@PVP nanoparticles have great potential for high-resolution imaging of LFPs.
关于使用荧光纳米材料检测潜伏指纹(LFPs)的文献浩如烟海,因为荧光是最敏感的检测方法之一。尽管已经开发出许多用于潜伏指纹检测的荧光探针,但仍存在许多挑战,包括用于可视化 LFPs 的纳米粒子的低选择性、复杂的处理过程、高背景和毒性。在这项研究中,我们展示了使用聚乙烯吡咯烷酮(PVP)包覆的荧光纳米金刚石(FND)进行生物兼容、高效且低背景的 LFPs 检测。PVP 包覆的 FND(FND@PVP)在细胞水平上具有生物兼容性。它们既不会抑制细胞增殖,也不会通过细胞凋亡或其他细胞杀伤途径诱导细胞死亡。此外,它们不会在细胞中引发免疫反应。PVP 涂层增强了 FND 与各种基底的物理附着力,特别是由于 PVP 的固有两亲性,导致 FND@PVP 与指纹脊高效结合。通过 FND@PVP,在几分钟内即可清晰、明确地显示出 LFPs 的第一、第二和第三级细节的脊结构。这种结合特异性和 FND@PVP 显著的光学特性的结合,使得 LFPs 的检测具有高对比度、高效率、选择性、灵敏度和减少背景干扰的特点。我们的研究结果表明,通过 FND@PVP 纳米粒子的多色发射和双模式成像进行无背景成像,具有在 LFPs 高分辨率成像方面的巨大潜力。