Kuo Tsung-Rong, Wang Di-Yan, Chiu Yu-Chen, Yeh Yun-Chieh, Chen Wei-Ting, Chen Ching-Hui, Chen Chun-Wei, Chang Huan-Cheng, Hu Cho-Chun, Chen Chia-Chun
Department of Chemistry, National Taiwan Normal University, Taipei 11677, Taiwan; Institute of Atomic and Molecular Sciences, Academia Sinica, Taipei 10617, Taiwan.
Department of Chemistry, National Taiwan Normal University, Taipei 11677, Taiwan; Institute of Atomic and Molecular Sciences, Academia Sinica, Taipei 10617, Taiwan; Department of Materials Science and Engineering, National Taiwan University, Taipei 10617, Taiwan.
Anal Chim Acta. 2014 Jan 27;809:97-103. doi: 10.1016/j.aca.2013.11.050. Epub 2013 Dec 1.
This work demonstrated a simple platform for rapid and effective surface-assisted laser desorption/ionization time-of-flight mass spectrometry (SALDI-TOF MS) measurements based on the layer structure of reduced graphene oxide (rGO) and gold nanoparticles. A multi-layer thin film was fabricated by alternate layer-by-layer depositions of rGO and gold nanoparticles (LBL rGO/AuNP). The flat and clean two-dimensional film was served as the sample plate and also functioned as the matrix in SALDI-TOF MS. By simply one-step deposition of analytes onto the LBL rGO/AuNP sample plate, the MS measurements of various homogeneous samples were ready to execute. The optimization of MS signal was reached by the variation of the layer numbers of rGO and gold nanoparticles. Also, the small molecules including amino acids, carbohydrates and peptides were successfully analyzed in SALDI-TOF MS using the LBL rGO/AuNP sample plate. The results showed that the signal intensity, S N(-1) ratio and reproducibility of SALDI-TOF spectra have been significantly improved in comparison to the uses of gold nanoparticles or α-cyano-4-hydroxy-cinnamic acid (CHCA) as the assisted matrixes. Taking the advantages of the unique properties of rGO and gold nanoparticles, the ready-to-use MS sample plate, which could absorb and dissipate laser energy to analytes quite efficiently and homogeneously, has shown great commercial potentials for MS applications.
这项工作展示了一个基于还原氧化石墨烯(rGO)和金纳米粒子的层状结构的简单平台,用于快速有效的表面辅助激光解吸/电离飞行时间质谱(SALDI-TOF MS)测量。通过rGO和金纳米粒子的交替逐层沉积制备了多层薄膜(LBL rGO/AuNP)。这种平整且干净的二维薄膜用作样品板,同时在SALDI-TOF MS中还起到基质的作用。通过将分析物简单地一步沉积到LBL rGO/AuNP样品板上,即可对各种均匀样品进行质谱测量。通过改变rGO和金纳米粒子的层数实现了质谱信号的优化。此外,使用LBL rGO/AuNP样品板在SALDI-TOF MS中成功分析了包括氨基酸、碳水化合物和肽在内的小分子。结果表明,与使用金纳米粒子或α-氰基-4-羟基肉桂酸(CHCA)作为辅助基质相比,SALDI-TOF光谱的信号强度、S/N(-1)比和重现性都有显著提高。利用rGO和金纳米粒子的独特性质,这种即用型质谱样品板能够非常高效且均匀地将激光能量吸收并传递给分析物,在质谱应用中显示出巨大的商业潜力。