Department of Chemistry, University of Warwick, Coventry CV4 7AL, UK.
Rapid Commun Mass Spectrom. 2009 Nov;23(22):3563-9. doi: 10.1002/rcm.4285.
We report the development of an enhanced algorithm for the calculation of collision cross-sections in combination with Travelling-Wave ion mobility mass spectrometry technology and its optimisation and evaluation through the analysis of an organoruthenium anticancer complex [(eta6-biphenyl)Ru(II)(en)Cl]+. Excellent agreement was obtained between the experimentally determined and theoretically determined collision cross-sections of the complex and its major product ion formed via collision-induced dissociation. Collision cross-sections were also experimentally determined for adducts of this ruthenium complex with the single-stranded oligonucleotide hexamer d(CACGTG). Ion mobility tandem mass spectrometry measurements have allowed the binding sites for ruthenium on the oligonucleotide to be determined.
我们报告了一种改进的算法的开发,用于计算与行波离子淌度质谱技术相结合的碰撞截面,并通过分析有机钌抗癌配合物[(eta6-联苯)Ru(II)(en)Cl]+对其进行优化和评估。该配合物及其主要通过碰撞诱导解离形成的产物离子的实验测定和理论测定的碰撞截面之间得到了极好的一致性。还通过实验测定了该钌配合物与单链寡核苷酸六聚体 d(CACGTG)形成的加合物的碰撞截面。离子淌度串联质谱测量允许确定钌在寡核苷酸上的结合位点。