Wang Peng, Hadjar Omar, Gassman Paul L, Laskin Julia
Pacific Northwest National Laboratory, Fundamental Science Directorate, Richland, WA 99352, USA.
Phys Chem Chem Phys. 2008 Mar 21;10(11):1512-22. doi: 10.1039/b717617a. Epub 2008 Jan 30.
Soft landing of mass-selected peptide ions onto reactive self-assembled monolayer surfaces (SAMs) was performed using a newly constructed ion deposition apparatus. SAM surfaces before and after soft landing were characterized ex situ using time-of-flight secondary-ion mass spectrometry (TOF-SIMS) and infrared reflection-absorption spectroscopy (IRRAS). We demonstrate that reactive landing (RL) results in efficient covalent linking of lysine-containing peptides onto the SAM of N-hydroxysuccinimidyl ester-terminated alkylthiol on gold (NHS-SAM). Systematic studies of the factors that affect the efficiency of RL revealed that the reaction takes place upon collision and is promoted by the kinetic energy of the ion. The efficiency of RL is maximized at ca. 40 eV collision energy. At high collision energies the RL efficiency decreases because of the competition with scattering of ions off the surface. The reaction yield is independent of the charge state of the projectile ions, suggesting that peptide ions undergo efficient neutralization upon collision. Chemical and physical properties of the SAM surface are also important factors that affect the outcome of RL. The presence of chemically reactive functional groups on the SAM surface significantly improves the reaction efficiency. RL of mass- and energy-selected peptide ions on surfaces provides a highly specific approach for covalent immobilization of biological molecules onto SAM surfaces.
使用新构建的离子沉积装置,将质量选择的肽离子软着陆到反应性自组装单分子层表面(SAMs)上。使用飞行时间二次离子质谱(TOF-SIMS)和红外反射吸收光谱(IRRAS)对软着陆前后的SAM表面进行非原位表征。我们证明反应性着陆(RL)可使含赖氨酸的肽有效地共价连接到金上N-羟基琥珀酰亚胺酯封端的烷基硫醇的SAM(NHS-SAM)上。对影响RL效率的因素进行的系统研究表明,反应在碰撞时发生,并由离子的动能促进。RL效率在约40 eV的碰撞能量下达到最大值。在高碰撞能量下,由于与离子从表面散射的竞争,RL效率降低。反应产率与入射离子的电荷状态无关,这表明肽离子在碰撞时会发生有效的中和。SAM表面的化学和物理性质也是影响RL结果的重要因素。SAM表面上化学反应性官能团的存在显著提高了反应效率。表面上质量和能量选择的肽离子的RL为生物分子在SAM表面上的共价固定提供了一种高度特异性的方法。