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双脱氧(3,4 - 二羟基苯甲异羟肟酸)和脒基肟(3,4 - 二羟基苯甲脒肟)这两种核糖核苷酸还原酶抑制剂的铁结合能力。

Iron binding capacity of didox (3,4 dihydroxybenzohydroxamic acid) and amidox (3,4 dihydroxybenzamidoxime) two inhibitors of the enzyme ribonucleotide reductase.

作者信息

Fritzer-Szekeres M, Novotny L, Vachalkova A, Göbl R, Elford H L, Szekeres T

机构信息

Clinical Institute of Medical and Chemical Laboratory Diagnostics, University of Vienna, Austria.

出版信息

Adv Exp Med Biol. 1998;431:599-604. doi: 10.1007/978-1-4615-5381-6_116.

Abstract

Ribonucleotide reductase is the rate limiting enzyme of deoxynucleoside triphosphate synthesis and is considered to be an excellent target of cancer chemotherapy. Didox and amidox are newly synthesized compounds, which inhibit this enzyme and have in vitro and in vivo antitumor activity. We have now investigated the capability of didox and amidox to interfere with the iron metabolism. We show by photometric and polarographic methods, that didox and amidox are capable of forming an iron complex. However, their cytotoxic action cannot be circumvented by addition of Fe-ammoniumcitrate, indicating the iron complexing capacity not to be responsible for the mechanism of action of these compounds. When L1210 leukemia cells were incubated with the didox-iron or amidox-iron complex itself, only slight changes of the 50% growth inhibitory capacity of the complex in comparison with didox or amidox alone could be shown. We conclude, that didox and amidox are capable of forming an iron complex, but in contrast to other agents, the anticancer activity cannot be contributed to this effect alone. Further studies will have to elucidate the molecular mechanism of action of these new and promising anticancer agents.

摘要

核糖核苷酸还原酶是脱氧核苷三磷酸合成的限速酶,被认为是癌症化疗的一个理想靶点。Didox和氨甲喋呤是新合成的化合物,它们可抑制这种酶,并具有体外和体内抗肿瘤活性。我们现在研究了Didox和氨甲喋呤干扰铁代谢的能力。我们通过光度法和极谱法表明,Didox和氨甲喋呤能够形成铁络合物。然而,添加柠檬酸铁铵并不能规避它们的细胞毒性作用,这表明铁络合能力并非这些化合物作用机制的原因。当L1210白血病细胞与Didox - 铁或氨甲喋呤 - 铁络合物本身一起孵育时,与单独使用Didox或氨甲喋呤相比,该络合物的50%生长抑制能力仅有轻微变化。我们得出结论,Didox和氨甲喋呤能够形成铁络合物,但与其他药物不同,抗癌活性不能仅归因于这种作用。进一步的研究将必须阐明这些新型且有前景的抗癌药物的分子作用机制。

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