Meier Samuel M, Gerner Christopher, Keppler Bernhard K, Cinellu Maria Agostina, Casini Angela
Department of Analytical Chemistry, University of Vienna , Waehringer Str. 38, 1090 Vienna, Austria.
University of Sassari , Dipartimento di Chimica e Farmacia, Via Vienna 2, Sassari I-07100, Italy.
Inorg Chem. 2016 May 2;55(9):4248-59. doi: 10.1021/acs.inorgchem.5b03000. Epub 2016 Feb 11.
The reactivity of three cytotoxic organometallic gold(III) complexes with cyclometalated C,N,N and C,N ligands (either six- or five-membered metallacycles), as well as that of two representative gold(III) complexes with N-donor ligands, with biological nucleophiles has been studied by ESI-MS on ion trap and time-of-flight instruments. Specifically, the gold compounds were reacted with mixtures of nucleophiles containing l-histidine (imine), l-methionine (thioether), l-cysteine (thiol), l-glutamic acid (carboxylic acid), methylseleno-l-cysteine (selenoether), and in situ generated seleno-l-cysteine (selenol) to judge the preference of the gold compounds for binding to selenium-containing amino acid residues. Moreover, the gold compounds' reactivity was studied with proteins and nucleic acid building blocks. These experiments revealed profound differences between the coordination and organometallic families and even within the family of organometallics, which allowed insights to be gained into the compounds mechanisms of action. In particular, interactions with seleno-l-cysteine appear to reflect well the compounds' inhibition properties of the seleno-enzyme thioredoxin reductase and to a certain extent their antiproliferative effects in vitro. Therefore, mass spectrometry is successfully applied for linking the molecular reactivity and target preferences of metal-based drug candidates to their biological effects. Finally, this experimental setup is applicable to any other metallodrug that undergoes ligand substitution reactions and/or redox changes as part of its mechanism of action.
利用离子阱和飞行时间仪器,通过电喷雾电离质谱(ESI-MS)研究了三种具有环金属化C,N,N和C,N配体(六元或五元金属环)的细胞毒性有机金属金(III)配合物,以及两种具有氮供体配体的代表性金(III)配合物与生物亲核试剂的反应活性。具体而言,使金化合物与含有l-组氨酸(亚胺)、l-甲硫氨酸(硫醚)、l-半胱氨酸(硫醇)、l-谷氨酸(羧酸)、甲基硒代-l-半胱氨酸(硒醚)以及原位生成的硒代-l-半胱氨酸(硒醇)的亲核试剂混合物反应,以判断金化合物与含硒氨基酸残基结合的偏好性。此外,还研究了金化合物与蛋白质和核酸构件的反应活性。这些实验揭示了配位化合物家族和有机金属化合物家族之间,甚至在有机金属化合物家族内部都存在着显著差异,从而有助于深入了解这些化合物的作用机制。特别是,与硒代-l-半胱氨酸的相互作用似乎很好地反映了化合物对硒酶硫氧还蛋白还原酶的抑制特性,并在一定程度上反映了它们在体外的抗增殖作用。因此,质谱法成功地用于将金属基候选药物的分子反应活性和靶点偏好与其生物学效应联系起来。最后,这种实验装置适用于任何其他作为其作用机制一部分而经历配体取代反应和/或氧化还原变化的金属药物。