含硫配体二硝基铁配合物的亚硝基阳离子抗肿瘤成分

IF 4.033 Q4 Biochemistry, Genetics and Molecular Biology
A. F Vanin, L. A. Ostrovskaya, D. B. Korman, V. A. Rykova, N. V. Bluhterova, M. M. Fomina, V. D. Mikoyan, N. A. Tkachev
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引用次数: 0

摘要

双核形式的二硝基铁配合物与谷胱甘肽(100 μ M/kg,皮下注射)和二乙基二硫代氨基甲酸钠(500 μ M/kg,腹腔注射)联合使用8次,可在移植后2周内完全抑制小鼠实体瘤的发展(Lewis肺癌)。然而,在给药结束后第20天评估抗肿瘤效果时,以“二乙基二硫代氨基甲酸酯,然后是1 h后的双核二硝基铁配合物”的顺序给药时,活性最高,肿瘤生长抑制率为60%;然而,当药物以相反的顺序使用时,肿瘤生长的抑制不超过30%。根据肿瘤组织EPR测量结果(肿瘤发生第15天)分析,认为肿瘤生长抑制是由二乙基二硫代氨基甲酸钠作用下双核二硝基铁-谷胱甘肽配合物在分解过程中释放的亚硝基阳离子引起的。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Nitrosonium Cation as an Antitumor Component of Dinitrosyl Iron Complexes with Thiol-containing Ligands

Nitrosonium Cation as an Antitumor Component of Dinitrosyl Iron Complexes with Thiol-containing Ligands

The combined use of two compounds, the binuclear form of dinitrozyl iron complexes with glutathione (100 µM/kg, subcutaneously) and sodium diethyldithiocarbamate (500 µM/kg, intraperitoneally), administered 8 times, caused complete inhibition of the development of a solid tumor in mice for 2 weeks after transplantation (Lewis lung carcinoma). However, when the antitumor effect was assessed on the 20th day after the end of drug administration, the maximum activity, inhibition of tumor growth by 60%, was observed when the drugs were administered in the sequence “diethyldithiocarbamate, and then 1 h later binuclear dinitrozyl iron complexes”; whereas when the drugs were used in the reverse sequence, inhibition of tumor growth did not exceed 30%. Based on the analysis of EPR measurements of tumor tissues (on the 15th day of tumor development), it was concluded that the inhibition of tumor growth was caused by nitrosonium cations released from binuclear dinitrosyl iron-glutathione complexes during the breakdown of these complexes under the action of sodium diethyldithiocarbamate.

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来源期刊
Biophysics
Biophysics Biochemistry, Genetics and Molecular Biology-Biophysics
CiteScore
1.20
自引率
0.00%
发文量
67
期刊介绍: Biophysics is a multidisciplinary international peer reviewed journal that covers a wide scope of problems related to the main physical mechanisms of processes taking place at different organization levels in biosystems. It includes structure and dynamics of macromolecules, cells and tissues; the influence of environment; energy transformation and transfer; thermodynamics; biological motility; population dynamics and cell differentiation modeling; biomechanics and tissue rheology; nonlinear phenomena, mathematical and cybernetics modeling of complex systems; and computational biology. The journal publishes short communications devoted and review articles.
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