Elsner Christian, Abel Bernd
Leibniz Institute of Surface Modification, Permoser Strasse 15, D-04318 Leipzig, Germany.
1] Leibniz Institute of Surface Modification, Permoser Strasse 15, D-04318 Leipzig, Germany [2] W.-Ostwald-Institute for Physical and Theoretical Chemistry, Linnéstr. 3, D-04103 Leipzig, Germany.
Sci Rep. 2014 Nov 4;4:6905. doi: 10.1038/srep06905.
Latent finger prints (LFPs) are deposits of sweat components in ridge and groove patterns, left after human fingers contact with a surface. Being important targets in biometry and forensic investigations they contain more information than topological patterns. With laser desorption mass spectrometry imaging (LD-MSI) we record 'three-dimensional' finger prints with additional chemical information as the third dimension. Here we show the potential of fast finger pore imaging (FPI) in latent finger prints employing LD-MSI without a classical matrix in a high- spatial resolution mode. Thin films of gold rapidly sputtered on top of the sample are used for desorption. FPI employing an optical image for rapid spatial orientation and guiding of the desorption laser enables the rapid analysis of individual finger pores, and the chemical composition of their excretions. With this approach we rapidly detect metabolites, drugs, and characteristic excretions from the inside of the human organism by a minimally-invasive strategy, and distinguish them from chemicals in contact with fingers without any labeling. The fast finger pore imaging, analysis, and screening approach opens the door for a vast number of novel applications in such different fields as forensics, doping and medication control, therapy, as well as rapid profiling of individuals.
潜在指纹(LFPs)是人类手指接触表面后留下的汗渍成分,以嵴和沟的图案形式存在。作为生物特征识别和法医调查中的重要目标,它们包含的信息比拓扑图案更多。通过激光解吸质谱成像(LD-MSI),我们记录了“三维”指纹,并将额外的化学信息作为第三维。在这里,我们展示了快速指孔成像(FPI)在潜在指纹中的潜力,该方法采用LD-MSI,在高空间分辨率模式下无需传统基质。快速溅射在样品顶部的金薄膜用于解吸。利用光学图像进行快速空间定位并引导解吸激光的FPI能够快速分析单个指孔及其排泄物的化学成分。通过这种方法,我们可以通过微创策略快速检测人体内部的代谢物、药物和特征性排泄物,并将它们与接触手指的化学物质区分开来,无需任何标记。快速指孔成像、分析和筛选方法为法医、兴奋剂和药物控制、治疗以及个体快速分析等众多不同领域的大量新应用打开了大门。