Novák Béla, Heldt Frank Stefan, Tyson John J
Department of Biochemistry, University of Oxford, UK.
Department of Biological Sciences, Virginia Tech, Blacksburg VA, USA.
Curr Opin Syst Biol. 2018 Jun;9:22-31. doi: 10.1016/j.coisb.2018.02.004. Epub 2018 Feb 22.
Well-nourished cells in a favorable environment (well supplied with growth factors, cytokines, and/or hormones and free from stresses, ionizing radiation, etc.) will grow, replicate their genome, and divide into two daughter cells, fully prepared to repeat the process. This cycle of DNA replication and division underlies all aspects of biological growth, reproduction, repair and development. As such, it is essential that the cell's genome be guarded against damage during the replication/division process, lest the error(s) be irrevocably passed down to all future generations of progeny. Hence, cell cycle progression is closely guarded against major sources of errors, in particular DNA damage and misalignment of replicated chromosomes on the mitotic spindle. In this review article we examine closely the molecular mechanisms that maintain genomic integrity during the cell division cycle, and we find an unexpected and intriguing arrangement of concatenated and nested bistable toggle switches. The topology of the network seems to play crucial roles in maintaining the stability of the genome during cell proliferation.
在有利环境中营养良好的细胞(生长因子、细胞因子和/或激素供应充足,且无应激、电离辐射等)会生长、复制其基因组,并分裂为两个子细胞,完全准备好重复这一过程。DNA复制和分裂的这个循环是生物生长、繁殖、修复和发育各个方面的基础。因此,至关重要的是,在复制/分裂过程中要保护细胞的基因组免受损伤,以免错误不可挽回地传递给所有后代。因此,细胞周期进程受到严格保护,防止出现主要的错误来源,特别是DNA损伤和复制后的染色体在有丝分裂纺锤体上的排列错误。在这篇综述文章中,我们仔细研究了在细胞分裂周期中维持基因组完整性的分子机制,并且发现了一种由串联和嵌套双稳态拨动开关组成的意想不到且引人入胜的排列。网络的拓扑结构似乎在细胞增殖过程中维持基因组稳定性方面发挥着关键作用。