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谷胱甘肽与四乙酸二铑的结合:一种抗肿瘤化合物的光谱、质谱及计算研究

Glutathione binding to dirhodium tetraacetate: a spectroscopic, mass spectral and computational study of an anti-tumour compound.

作者信息

Wong Daisy L, Zhang Angel, Faponle Abayomi S, de Visser Sam P, Stillman Martin J

机构信息

Stillman Bioinorganic Group, Department of Chemistry, University of Western Ontario, 1151 Richmond Street, London, Ontario N6A 5B7, Canada.

出版信息

Metallomics. 2017 May 24;9(5):501-516. doi: 10.1039/c7mt00040e.

Abstract

Glutathione (γ-l-glutamyl-l-cysteinyl-glycine) is a ubiquitous tripeptide found in all plants and animals. Glutathione has key roles as a metallochaperone and as a cellular thiol involved in metabolism. Little is known about how glutathione interacts with organometallic compounds in vivo. Here, we report the reactions of glutathione in vitro with dirhodium(ii) tetraacetate (tetrakis(μ-acetato)dirhodium(ii), Rh(OAc)), a compound with anti-tumour properties. Electrospray ionization mass spectrometry, UV-Visible absorption and circular dichroism spectroscopic methods were used to determine the stoichiometries and optical properties of the final conjugate. Computational analyses were used to predict the binding modes of glutathione to the Rh(OAc), and report on the orbital assignments for the resulting products. We explored the competition by GSH for methionine-bound axial sites on Rh(OAc) to investigate the use of weak thioether to protect its cellular-based anti-cancer activity. Our study highlights the important role that axial ligation would play in deactivating or significantly decreasing the efficacy of this bimetallic anti-tumor drug. The computational data explain the stability of the mono-adduct and the appearance of new absorption bands in the UV region including retention of the Rh-Rh single bond. Additionally, these data show that glutathione can effectively disable the potency of these metallo-drugs through orbital overlap of the entire Rh-Rh core as a result of the strong binding. Electronic absorption spectroscopy, mass spectrometry and computational analysis are a powerful combination in understanding possible chemical reactions in vivo and this information can be used to synthetically tune dirhodium complexes for use in the fight against cancer.

摘要

谷胱甘肽(γ-L-谷氨酰-L-半胱氨酰甘氨酸)是一种在所有动植物中都普遍存在的三肽。谷胱甘肽作为金属伴侣和参与新陈代谢的细胞硫醇发挥着关键作用。关于谷胱甘肽在体内如何与有机金属化合物相互作用,人们了解甚少。在此,我们报告了谷胱甘肽在体外与具有抗肿瘤特性的二醋酸二铑(II)(四(μ-醋酸根)二铑(II),Rh(OAc))的反应。采用电喷雾电离质谱、紫外可见吸收光谱和圆二色光谱方法来确定最终缀合物的化学计量和光学性质。通过计算分析预测谷胱甘肽与Rh(OAc)的结合模式,并报告所得产物的轨道归属。我们探究了谷胱甘肽对Rh(OAc)上甲硫氨酸结合的轴向位点的竞争,以研究利用弱硫醚来保护其基于细胞的抗癌活性。我们的研究突出了轴向配位在使这种双金属抗肿瘤药物失活或显著降低其疗效方面所起的重要作用。计算数据解释了单加合物的稳定性以及紫外区域新吸收带的出现,包括Rh-Rh单键的保留。此外,这些数据表明,由于强结合,谷胱甘肽可通过整个Rh-Rh核心的轨道重叠有效地使这些金属药物失去效力。电子吸收光谱、质谱和计算分析是理解体内可能化学反应的有力组合,这些信息可用于合成调节二铑配合物以用于抗癌斗争。

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