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酿酒酵母的Smc2/4凝聚素将DNA压缩成(+)手性结构,且无净超螺旋。

The Saccharomyces cerevisiae Smc2/4 condensin compacts DNA into (+) chiral structures without net supercoiling.

作者信息

Stray James E, Crisona Nancy J, Belotserkovskii Boris P, Lindsley Janet E, Cozzarelli Nicholas R

机构信息

Department of Molecular and Cell Biology, University of California, Berkeley, California 94720, USA.

出版信息

J Biol Chem. 2005 Oct 14;280(41):34723-34. doi: 10.1074/jbc.M506589200. Epub 2005 Aug 12.

Abstract

Smc2/4 forms the core of the Saccharomyces cerevisiae condensin, which promotes metaphase chromosome compaction. To understand how condensin manipulates DNA, we used two in vitro assays to study the role of SMC (structural maintenance of chromosome) proteins and ATP in reconfiguring the path of DNA. The first assay evaluated the topology of knots formed in the presence of topoisomerase II. Unexpectedly, both wild-type Smc2/4 and an ATPase mutant promoted (+) chiral knotting of nicked plasmids, revealing that ATP hydrolysis and the non-SMC condensins are not required to compact DNA chirally. The second assay measured Smc2/4-dependent changes in linking number (Lk). Smc2/4 did not induce (+) supercoiling, but instead induced broadening of topoisomer distributions in a cooperative manner without altering Lk(0). To explain chiral knotting in substrates devoid of chiral supercoiling, we propose that Smc2/4 directs chiral DNA compaction by constraining the duplex to retrace its own path. In this highly cooperative process, both (+) and (-) loops are sequestered (about one per kb), leaving net writhe and twist unchanged while broadening Lk. We have developed a quantitative theory to account for these results. Additionally, we have shown at higher molar stoichiometries that Smc2/4 prevents relaxation by topoisomerase I and nick closure by DNA ligase, indicating that Smc2/4 can saturate DNA. By electron microscopy of Smc2/4-DNA complexes, we observed primarily two protein-laden bound species: long flexible filaments and uniform rings or "doughnuts." Close packing of Smc2/4 on DNA explains the substrate protection we observed. Our results support the hypothesis that SMC proteins bind multiple DNA duplexes.

摘要

Smc2/4构成酿酒酵母凝聚素的核心,该凝聚素促进中期染色体的压缩。为了了解凝聚素如何操纵DNA,我们使用了两种体外测定方法来研究SMC(染色体结构维持)蛋白和ATP在重新配置DNA路径中的作用。第一种测定方法评估了在拓扑异构酶II存在下形成的结的拓扑结构。出乎意料的是,野生型Smc2/4和ATP酶突变体都促进了带切口质粒的(+)手性打结,这表明DNA的手性压缩不需要ATP水解和非SMC凝聚素。第二种测定方法测量了Smc2/4依赖的连接数(Lk)变化。Smc2/4不会诱导(+)超螺旋,而是以协同方式诱导拓扑异构体分布变宽,而不会改变Lk(0)。为了解释在没有手性超螺旋的底物中的手性打结现象,我们提出Smc2/4通过限制双链体回溯自身路径来指导手性DNA压缩。在这个高度协同的过程中,(+)和(-)环都被隔离(大约每kb一个),在拓宽Lk的同时使净扭曲和缠绕保持不变。我们已经开发了一个定量理论来解释这些结果。此外,我们还表明,在更高的摩尔化学计量比下,Smc2/4可防止拓扑异构酶I介导的松弛和DNA连接酶介导的切口封闭,这表明Smc2/4可以使DNA饱和。通过对Smc2/4-DNA复合物的电子显微镜观察,我们主要观察到两种富含蛋白质的结合物种:长的柔性细丝和均匀的环或“甜甜圈”。Smc2/4在DNA上的紧密堆积解释了我们观察到的底物保护现象。我们的结果支持了SMC蛋白结合多个DNA双链体的假设。

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