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氧化应激/损伤诱导范可尼贫血蛋白的多聚化和相互作用。

Oxidative stress/damage induces multimerization and interaction of Fanconi anemia proteins.

作者信息

Park Su-Jung, Ciccone Samantha L M, Beck Brian D, Hwang Byounghoon, Freie Brian, Clapp D Wade, Lee Suk-Hee

机构信息

Department of Biochemistry and Molecular Biology, Indiana University School of Medicine, Indianapolis 46202, USA.

出版信息

J Biol Chem. 2004 Jul 16;279(29):30053-9. doi: 10.1074/jbc.M403527200. Epub 2004 May 10.

Abstract

Fanconi anemia (FANC) is a heterogeneous genetic disorder characterized by a hypersensitivity to DNA-damaging agents, chromosomal instability, and defective DNA repair. Eight FANC genes have been identified so far, and five of them (FANCA, -C, -E, -F, and -G) assemble in a multinuclear complex and function at least in part in a complex to activate FANCD2 by monoubiquitination. Here we show that FANCA and FANCG are redox-sensitive proteins that are multimerized and/or form a nuclear complex in response to oxidative stress/damage. Both FANCA and FANCG proteins exist as monomers under non-oxidizing conditions, whereas they become multimers following H2O2 treatment. Treatment of cells with oxidizing agent not only triggers the multimeric complex of FANCA and FANCG in vivo but also induces the interaction between FANCA and FANCG. N-Ethylmaleimide treatment abolishes multimerization and interaction of FANCA and FANCG in vitro. Taken together, our results lead us to conclude that FANCA and FANCG uniquely respond to oxidative damage by forming complex(es) via intermolecular disulfide linkage(s), which may be crucial in forming such complexes and in determining their function.

摘要

范可尼贫血(FANC)是一种异质性遗传疾病,其特征为对DNA损伤剂高度敏感、染色体不稳定以及DNA修复缺陷。到目前为止,已鉴定出八个FANC基因,其中五个(FANCA、-C、-E、-F和-G)在一个多核复合物中组装,并至少部分在一个复合物中发挥作用,通过单泛素化激活FANCD2。在此我们表明,FANCA和FANCG是氧化还原敏感蛋白,它们在氧化应激/损伤反应中发生多聚化和/或形成核复合物。在非氧化条件下,FANCA和FANCG蛋白均以单体形式存在,而在H2O2处理后它们会变成多聚体。用氧化剂处理细胞不仅会在体内触发FANCA和FANCG的多聚体复合物,还会诱导FANCA和FANCG之间的相互作用。N-乙基马来酰亚胺处理会消除体外FANCA和FANCG的多聚化和相互作用。综上所述,我们的结果使我们得出结论,FANCA和FANCG通过分子间二硫键形成复合物,对氧化损伤具有独特的反应,这可能对形成此类复合物及其功能的确定至关重要。

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