Song Kai, Huang Peng, Yi Chenglin, Ning Bo, Hu Song, Nie Liming, Chen Xiaoyuan, Nie Zhihong
School of Life Science, Changchun Normal University , Changchun 130032, China.
Department of Chemistry and Biochemistry, University of Maryland , College Park, Maryland 20742, United States.
ACS Nano. 2015 Dec 22;9(12):12344-8. doi: 10.1021/acsnano.5b05629. Epub 2015 Nov 6.
There is a high demand on a simple, rapid, accurate, user-friendly, cost-effective, and nondestructive universal method for latent fingerprint (LFP) detection. Herein, we describe a combination imaging strategy for LFP visualization with high resolution using poly(styrene-alt-maleic anhydride)-b-polystyrene (PSMA-b-PS) functionalized gold nanoparticles (GNPs). This general approach integrates the merits of both colorimetric imaging and photoacoustic imaging. In comparison with the previous methods, our strategy is single-step and does not require the signal amplification by silver staining. The PSMA-b-PS functionalized GNPs have good stability, tunable color, and high affinity for universal secretions (proteins/polypeptides/amino acids), which makes our approach general and flexible for visualizing LFPs on different substrates (presumably with different colors) and from different people. Moreover, the unique optical property of GNPs enables the photoacoustic imaging of GNPs-deposited LFPs with high resolution. This allows observation of level 3 hyperfine features of LFPs such as the pores and ridge contours by photoacoustic imaging. This technique can potentially be used to identify chemicals within LFP residues. We believe that this dual-modality imaging of LFPs will find widespread use in forensic investigations and medical diagnostics.
对于一种用于潜在指纹(LFP)检测的简单、快速、准确、用户友好、经济高效且无损的通用方法有着很高的需求。在此,我们描述了一种使用聚(苯乙烯-alt-马来酸酐)-b-聚苯乙烯(PSMA-b-PS)功能化金纳米颗粒(GNP)进行高分辨率LFP可视化的组合成像策略。这种通用方法整合了比色成像和光声成像的优点。与先前的方法相比,我们的策略是单步的,并且不需要通过银染进行信号放大。PSMA-b-PS功能化的GNP具有良好的稳定性、可调颜色以及对通用分泌物(蛋白质/多肽/氨基酸)的高亲和力,这使得我们的方法对于可视化不同底物(可能具有不同颜色)上以及来自不同人的LFP具有通用性和灵活性。此外,GNP独特的光学性质能够对沉积有GNP的LFP进行高分辨率光声成像。这使得通过光声成像能够观察到LFP的三级超精细特征,如孔隙和嵴轮廓。该技术有可能用于识别LFP残留物中的化学物质。我们相信这种LFP的双模态成像将在法医调查和医学诊断中得到广泛应用。