共 35 条
Generation of reactive oxygen species by hydroxypyridone compound/iron complexes
被引:7
作者:
Murakami, Keiko
[1
,2
]
Yoshino, Masataka
[1
,2
]
机构:
[1] Aichi Med Univ, Dept Biochem, Sch Med, Nagakute, Aichi, Japan
[2] Ichinomiya Kenshin Coll Nursing, Jogan Tori 5-4-1, Ichinomiya, Aichi 4910063, Japan
关键词:
Hydroxypyridone;
mimosine‌
deferiprone;
iron;
reactive oxygen species;
DNA damage;
hydrogen peroxide‌
superoxide;
D O I:
10.1080/13510002.2020.1787662
中图分类号:
Q5 [生物化学];
Q7 [分子生物学];
学科分类号:
071010 ;
081704 ;
摘要:
Objectives: Prooxidant properties of iron-binding hydroxypyridone compounds including deferiprone and mimosine were analyzed. Methods: Hydroxypyridone/iron-dependent production of reactive oxygen species was evidenced by the inactivation of aconitase, the most sensitive enzyme to oxidative stress in permeabilized yeast cells. Results and Discussion: Deferiprone and mimosine produced reactive oxygen species in the presence of ferrous sulfate. The inactivation required sodium azide the inhibitor of catalase, and addition of TEMPOL, a scavenger of superoxide radical, protected aconitase from the inactivation, suggesting that the superoxide radical produced from the hydroxypyridone/iron complex is responsible for the inactivation of aconitase. A principal role of superoxide radical was further supported by the finding that the hydroxypyridone/iron complex can inactivate aconitase in the presence of cyanide the inhibitor of superoxide dismutase. Deferiprone and mimosine stimulated the Fe2+ oxidation, resulting in the one-electron reduction of oxygen to form superoxide anion, which can inactivate aconitase by oxidizing the prosthetic iron-sulfur cluster. Mimosine further stimulated the ascorbate/iron-dependent formation of 8-hydroxy-2 '-deoxyguanosine in DNA. Conclusion: Biological toxicity of mimosine and deferiprone reported previously can be accounted for by the prooxidant properties of hydroxypyridone compounds: coordination complex with iron generates reactive oxygen species resulting in the disturbance of mitochondrial energy metabolism and DNA damage.
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页码:59 / 63
页数:5
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