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Structures and DNA-Binding Activities of the Hinge Domains from the Structural Maintenance of Chromosomes Proteins of Pyrococcus furiosus and the Mouse Condensin Complex

机译:Fyrococcus Furiosus和小鼠Condensin复合物染色体结构维持结构域的结构和DNa结合活性

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摘要

Structural Maintenance of Chromosomes (SMC) proteins are vital for a wide range of cellular processes including chromosome structure and dynamics, gene regulation, and DNA repair. Whereas prokaryotic genomes encode for only one SMC protein that exists as a homodimer, eukaryotes possess six different SMC proteins that form three distinct heterodimeric complexes, with the holocomplexes additionally containing several specific regulatory subunits. The prokaryotic SMC complex is required for chromosome condensation and segregation. In eukaryotes, this function is carried out by the condensin complex with SMC2 and SMC4 at its core. The complex containing SMC1 and SMC3, named cohesin, is responsible for sister chromatid cohesion during mitosis and meiosis. Cohesin is also employed in DNA double-strand break repair, whereas condensin participates in single-strand break repair. The as yet unnamed SMC5-SMC6 complex is involved in several DNA repair pathways as well as homologous recombination in meiosis.SMC proteins consist of N and C-terminal domains that fold back onto each other to create an ATPase “head” domain, connected to a central “hinge” domain via long antiparallel coiled-coils. The hinge domain mediates dimerisation of SMC proteins and binds DNA, but it is not clear to what purpose this activity serves. The aim of this work was therefore to characterise the structure and function of the SMC hinge domain in more detail. Specifically, the hinge domains of the Pyrococcus furiosus SMC protein and of mouse condensin were studied. Both their high-resolution crystal structures as well as low-resolution solution envelopes were determined, and their DNA-binding activity was analysed qualitatively and quantitatively. While the SMC hinge domain fold is largely conserved from prokaryotes to eukaryotes, functionally relevant structural differences can be observed. Most importantly, the surface charge has been almost reversed throughout evolution. The data obtained confirm that of all three eukaryotic SMC complexes, condensin is most closely related to prokaryotic SMC proteins. Both the P. furiosus and the mouse condensin hinge domain preferentially bind single-stranded DNA, but the mouse condensin hinge displays a much higher affinity than its prokaryotic counterpart, suggesting that this function has been enhanced during the course of evolution. The single-stranded DNA-binding activity might be important for the function of the condensin complex in single-strand break repair, but probably plays a different role in prokaryotes, possibly in the DNA-loading process of the prokaryotic SMC complex during replication.
机译:染色体(SMC)蛋白质的结构维护对于广泛的细胞过程至关重要,包括染色体结构和动力学,基因调节和DNA修复。原核生物基因组仅编码一种以同型二聚体形式存在的SMC蛋白,而真核生物则具有六种不同的SMC蛋白,它们形成了三种不同的异二聚体复合物,而全息复合物还包含多个特定的调控亚基。染色体浓缩和分离需要原核SMC复合体。在真核生物中,此功能由以SMC2和SMC4为核心的凝聚素复合物完成。包含SMC1和SMC3的复合物(称为粘着素)负责有丝分裂和减数分裂过程中的姐妹染色单体凝聚。粘着蛋白也用于DNA双链断裂修复,而凝缩蛋白参与单链断裂修复。尚未命名的SMC5-SMC6复合物参与减数分裂中的几种DNA修复途径和同源重组。SMC蛋白由N和C末端结构域组成,它们相互折叠形成一个ATPase“头部”结构域,与通过长的反平行盘绕线圈形成中央“铰链”区域。铰链结构域介导SMC蛋白的二聚化并结合DNA,但尚不清楚此活性的作用是什么。因此,这项工作的目的是更详细地描述SMC铰链结构域的结构和功能。具体来说,研究了激烈热球菌SMC蛋白和小鼠凝缩蛋白的铰链结构域。确定了它们的高分辨率晶体结构和低分辨率溶液包膜,并定性和定量地分析了它们的DNA结合活性。虽然SMC铰链域折叠从原核生物到真核生物在很大程度上是保守的,但可以观察到功能相关的结构差异。最重要的是,表面电荷在整个演化过程中几乎都被逆转了。获得的数据证实,在所有三种真核SMC复合物中,凝缩素与原核SMC蛋白最密切相关。激烈疟原虫和小鼠凝集素铰链结构域都优先结合单链DNA,但是小鼠凝缩蛋白铰链显示出比原核对应物更高的亲和力,这表明该功能在进化过程中得到了增强。单链DNA结合活性可能对冷凝蛋白复合物在单链断裂修复中的功能很重要,但可能在原核生物中发挥不同的作用,可能在复制过程中原核SMC复合物的DNA加载过程中。

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    Griese Julia Johanna;

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  • 年度 2010
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  • 原文格式 PDF
  • 正文语种 {"code":"en","name":"English","id":9}
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