Department of Chemistry, Wayne State University, Detroit, MI 48202, USA.
Department of Chemistry, Wayne State University, Detroit, MI 48202, USA; Department of Biochemistry, Microbiology and Immunology, Wayne State University School of Medicine, Detroit, MI 48201, USA.
DNA Repair (Amst). 2022 Oct;118:103381. doi: 10.1016/j.dnarep.2022.103381. Epub 2022 Jul 26.
Murine FAM72A, mFAM72A, binds the nuclear form of uracil-DNA glycosylase, mUNG2, inhibits its activity and causes its degradation. In immunoprecipitation assays the human paralog, hFAM72A, binds hUNG2 and is a potential anti-cancer drug target because of its high expression in many cancers. Using purified mFAM72A, and mUNG2 proteins we show that mFAM72A binds mUNG2, and the N-terminal 25 amino acids of mUNG2 bind mFAM72A at a nanomolar dissociation constant. We also show that mFAM72A is present throughout the cells, and mUNG2 helps localize it to nuclei. Based on in silico models of mFAM72A-mUNG2 interactions, we constructed several mutants of mFAM72A and found that while they have reduced ability to deplete mUNG2, the mutations also destabilized the former protein. We confirmed that Withaferin A, a predicted lead molecule for the design of FAM72A inhibitors, binds mFAM72A with micromolar affinity but has little affinity to mUNG2. We identified two potential metal-binding sites in mFAM72A and show that one of the sites contains an Fe-S cluster. This redox-sensitive cluster is involved in the mFAM72A-mUNG2 interaction and modulates mFAM72A activity. Hydrogen peroxide treatment of cells increases mUNG2 depletion in a FAM72A-dependent fashion suggesting that mFAM72A activity is redox-sensitive.
鼠 FAM72A(mFAM72A)与尿嘧啶-DNA 糖基化酶的核形式 mUNG2 结合,抑制其活性并导致其降解。在免疫沉淀测定中,人源同源物 hFAM72A 与 hUNG2 结合,由于其在许多癌症中高表达,是一种潜在的抗癌药物靶点。使用纯化的 mFAM72A 和 mUNG2 蛋白,我们表明 mFAM72A 与 mUNG2 结合,并且 mUNG2 的 N 端 25 个氨基酸以纳摩尔离解常数结合 mFAM72A。我们还表明 mFAM72A 存在于整个细胞中,并且 mUNG2 有助于将其定位到细胞核中。基于 mFAM72A-mUNG2 相互作用的计算机模型,我们构建了几种 mFAM72A 突变体,发现虽然它们降低了耗尽 mUNG2 的能力,但突变也使前一种蛋白质不稳定。我们证实,醉茄素 A(一种用于设计 FAM72A 抑制剂的预测先导分子)以微摩尔亲和力结合 mFAM72A,但对 mUNG2 的亲和力很小。我们鉴定了 mFAM72A 中的两个潜在金属结合位点,并表明其中一个位点含有一个 Fe-S 簇。这个氧化还原敏感的簇参与 mFAM72A-mUNG2 相互作用并调节 mFAM72A 活性。细胞中过氧化氢处理以 FAM72A 依赖性方式增加 mUNG2 的耗竭,表明 mFAM72A 活性是氧化还原敏感的。