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Evolution of condensin and cohesin complexes driven by replacement of Kite by Hawk proteins

机译:用Hawk蛋白替代风筝驱动的缩合素和cohesin复合物的演变

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摘要

Mitotic chromosome condensation, sister chromatid cohesion, and higher order folding of interphase chromatin are mediated by condensin and cohesin, eukaryotic members of the SMC (structural maintenance of chromosomes)–kleisin protein family. Other members facilitate chromosome segregation in bacteria [1] . A hallmark of these complexes is the binding of the two ends of a kleisin subunit to the apices of V-shaped Smc dimers, creating a tripartite ring capable of entrapping DNA ( Figure 1 A). In addition to creating rings, kleisins recruit regulatory subunits. One family of regulators, namely Kite dimers (Kleisin interacting winged-helix tandem elements), interact with Smc–kleisin rings from bacteria, archaea and the eukaryotic Smc5-6 complex, but not with either condensin or cohesin [2] . These instead possess proteins containing HEAT (Huntingtin/EF3/PP2A/Tor1) repeat domains whose origin and distribution have not yet been characterized. Using a combination of profile Hidden Markov Model (HMM)-based homology searches, network analysis and structural alignments, we identify a common origin for these regulators, for which we propose the name Hawks, i.e. HEAT proteins associated with kleisins.
机译:有丝分裂染色体凝结,姐妹染色单体凝聚和相间染色质的高阶折叠是由缩合蛋白和粘着蛋白(SMC(染色体的结构维持)-kleisin蛋白家族的真核成员)介导的。其他成员促进细菌中的染色体分离[1]。这些复合物的标志是,kleisin亚基的两个末端与V形Smc二聚体的顶点结合,形成了能够捕获DNA的三重环(图1A)。除产生环外,kleisins还募集调节亚基。一个调节子家族,即风筝二聚体(Kleisin与有翅螺旋串联元件相互作用),与细菌,古细菌和真核Smc5-6复合物中的Smc-kleisin环相互作用,但不与condensin或cohesin相互作用[2]。相反,它们具有包含HEAT(Huntingtin / EF3 / PP2A / Tor1)重复域的蛋白质,其起源和分布尚未被鉴定。结合基于轮廓隐式马尔可夫模型(HMM)的同源性搜索,网络分析和结构比对,我们确定了这些调节子的共同来源,为此我们提出了Hawks的名称,即与kleisins相关的HEAT蛋白。

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