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三聚体蛋白磷酸酶复合物在顺铂诱导的与非交联DNA损伤恢复过程中的作用表征。

Characterization of the role of a trimeric protein phosphatase complex in recovery from cisplatin-induced versus noncrosslinking DNA damage.

作者信息

Vázquez-Martin Cristina, Rouse John, Cohen Patricia T W

机构信息

Medical Research Council Protein Phosphorylation Unit, College of Life Sciences, University of Dundee, UK.

出版信息

FEBS J. 2008 Aug;275(16):4211-21. doi: 10.1111/j.1742-4658.2008.06568.x. Epub 2008 Jul 18.

DOI:10.1111/j.1742-4658.2008.06568.x
PMID:18647348
Abstract

Cisplatin (cis-diamminedichloroplatinum) and related chemotherapeutic DNA-crosslinking agents are widely used to treat human cancers. Saccharomyces cerevisiae with separate deletions of the genes encoding the trimeric protein serine/threonine phosphatase (Pph)3p-platinum sensitivity (Psy)4p-Psy2p complex, are more sensitive than the isogenic wild-type (WT) strain to cisplatin. We show here that cisplatin causes an enhanced intra-S-phase cell cycle delay in these three deletion mutants. The C-terminal tail of histone 2AX (H2AX) is hyperphosphorylated in the same mutants, and Pph3p is found to interact with phosphorylated H2AX (gammaH2AX). After cisplatin treatment is terminated, pph3Delta, psy4Delta and psy2Delta mutants are delayed as compared with the WT strain in the dephosphorylation of Rad53p. In contrast, only pph3Delta and psy2Delta cells are more sensitive than WT cells to methylmethanesulfonate, a noncrosslinking DNA-alkylating agent that is known to cause a Rad53p-dependent intra-S-phase cell cycle delay. Dephosphorylation of Rad53p and the recovery of chromosome replication are delayed in the same mutants, but not in psy4Delta cells. By comparison with their mammalian orthologues, the regulatory subunit Psy4p is likely to inhibit Pph3p catalytic activity. The presence of a weak but active Pph3p-Psy2p complex may allow psy4Delta cells to escape from the Rad53p-mediated cell cycle arrest. Overall, our data suggest that the trimeric Pph3p-Psy4p-Psy2p complex may dephosphorylate both gammaH2AX and Rad53p, the differences lying in the more stable interaction of the Pph3 phosphatase with gammaH2AX as opposed to a transient interaction with Rad53p.

摘要

顺铂(顺二氨二氯铂)及相关的化疗性DNA交联剂被广泛用于治疗人类癌症。酿酒酵母中编码三聚体蛋白丝氨酸/苏氨酸磷酸酶(Pph)3p-铂敏感性(Psy)4p-Psy2p复合物的基因分别缺失后,与同基因野生型(WT)菌株相比,对顺铂更为敏感。我们在此表明,顺铂在这三个缺失突变体中导致S期内细胞周期延迟增强。组蛋白2AX(H2AX)的C末端尾巴在相同突变体中发生超磷酸化,并且发现Pph3p与磷酸化的H2AX(γH2AX)相互作用。顺铂处理终止后,与WT菌株相比,pph3Δ、psy4Δ和psy2Δ突变体在Rad53p的去磷酸化过程中出现延迟。相比之下,只有pph3Δ和psy2Δ细胞比WT细胞对甲磺酸甲酯更敏感,甲磺酸甲酯是一种已知会导致依赖Rad53p的S期内细胞周期延迟的非交联DNA烷化剂。Rad53p的去磷酸化和染色体复制的恢复在相同突变体中延迟,但在psy4Δ细胞中没有延迟。与它们的哺乳动物直系同源物相比,调节亚基Psy4p可能抑制Pph3p的催化活性。弱但有活性的Pph3p-Psy2p复合物的存在可能使psy4Δ细胞逃避Rad53p介导的细胞周期停滞。总体而言,我们的数据表明三聚体Pph3p-Psy4p-Psy2p复合物可能使γH2AX和Rad53p都去磷酸化,不同之处在于Pph3磷酸酶与γH2AX的相互作用更稳定,而与Rad53p的相互作用是短暂的。

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