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Novel alterations in CDK1/cyclin B1 kinase complex formation occur during the acquisition of a polyploid DNA content.

机译:CDK1 / cyclin B1激酶复合物形成的新变化发生在多倍体DNA含量的获取过程中。

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摘要

The pathways that regulate the S-phase events associated with the control of DNA replication are poorly understood. The bone marrow megakaryocytes are unique in that they leave the diploid (2C) state to differentiate, synthesizing 4 to 64 times the normal DNA content within a single nucleus, a process known as endomitosis. Human erythroleukemia (HEL) cells model this process, becoming polyploid during phorbol diester-induced megakaryocyte differentiation. The mitotic arrest occurring in these polyploid cells involves novel alterations in the cdk1/cyclin B1 complex: a marked reduction in cdk1 protein levels, and an elevated and sustained expression of cyclin B1. Endomitotic cells thus lack cdk1/cyclin B1-associated H1-histone kinase activity. Constitutive over-expression of cdk1 in endomitotic cells failed to re-initiate normal mitotic events even though cdk1 was present in a 10-fold excess. This was due to an inability of cyclin-B1 to physically associate with cdk1. Nonetheless, endomitotic cyclin B1 possesses immunoprecipitable H1-histone kinase activity, and specifically translocates to the nucleus. We conclude that mitosis is abrogated during endomitosis due to the absence of cdk1 and the failure to form M-phase promoting factor, resulting in a disassociation of mitosis from the completion of S-phase. Further studies on cyclin and its interacting proteins should be informative in understanding endomitosis and cell cycle control.
机译:调控与DNA复制控制相关的S期事件的途径了解甚少。骨髓巨核细胞的独特之处在于,它们离开二倍体(2C)状态分化,合成单个核内正常DNA含量的4到64倍,这一过程称为内吞。人类红白血病(HEL)细胞可模拟此过程,在佛波二酯诱导的巨核细胞分化过程中变为多倍体。在这些多倍体细胞中发生的有丝分裂停滞涉及cdk1 / cyclin B1复合体的新变化:cdk1蛋白水平显着降低,并且cyclin B1的表达持续升高。因此,有丝分裂内膜细胞缺乏与cdk1 / cyclin B1相关的H1组蛋白激酶活性。即使cdk1过量存在10倍,内吞细胞中cdk1的组成型过表达也无法重新启动正常的有丝分裂事件。这是由于细胞周期蛋白B1无法与cdk1物理缔合。尽管如此,内吞性细胞周期蛋白B1具有可免疫沉淀的H1-组蛋白激酶活性,并特别易位至细胞核。我们得出的结论是,由于缺乏cdk1和未能形成M期促进因子,导致在有丝分裂期间废除有丝分裂,导致从S期完成有丝分裂开始。对细胞周期蛋白及其相互作用蛋白的进一步研究应有助于理解内吞和细胞周期控制。

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