Eeftens Jorine M, Bisht Shveta, Kerssemakers Jacob, Kschonsak Marc, Haering Christian H, Dekker Cees
Department of Bionanoscience, Kavli Institute of Nanoscience Delft, Delft University of Technology, Delft, The Netherlands.
Cell Biology and Biophysics Unit, Structural and Computational Biology Unit, European Molecular Biology Laboratory (EMBL), Heidelberg, Germany.
EMBO J. 2017 Dec 1;36(23):3448-3457. doi: 10.15252/embj.201797596. Epub 2017 Nov 8.
Condensin, a conserved member of the SMC protein family of ring-shaped multi-subunit protein complexes, is essential for structuring and compacting chromosomes. Despite its key role, its molecular mechanism has remained largely unknown. Here, we employ single-molecule magnetic tweezers to measure, in real time, the compaction of individual DNA molecules by the budding yeast condensin complex. We show that compaction can proceed in large steps, driving DNA molecules into a fully condensed state against forces of up to 2 pN. Compaction can be reversed by applying high forces or adding buffer of high ionic strength. While condensin can stably bind DNA in the absence of ATP, ATP hydrolysis by the SMC subunits is required for rendering the association salt insensitive and for the subsequent compaction process. Our results indicate that the condensin reaction cycle involves two distinct steps, where condensin first binds DNA through electrostatic interactions before using ATP hydrolysis to encircle the DNA topologically within its ring structure, which initiates DNA compaction. The finding that both binding modes are essential for its DNA compaction activity has important implications for understanding the mechanism of chromosome compaction.
凝聚素是一种由环形多亚基蛋白质复合物组成的SMC蛋白质家族的保守成员,对染色体的构建和压缩至关重要。尽管其具有关键作用,但其分子机制在很大程度上仍不清楚。在这里,我们使用单分子磁镊实时测量出芽酵母凝聚素复合物对单个DNA分子的压缩情况。我们发现压缩可以大步进行,将DNA分子逆着高达2皮牛的力驱动到完全凝聚状态。通过施加高力或添加高离子强度的缓冲液可以使压缩逆转。虽然凝聚素在没有ATP的情况下可以稳定结合DNA,但SMC亚基的ATP水解对于使这种结合对盐不敏感以及随后的压缩过程是必需的。我们的结果表明,凝聚素反应循环涉及两个不同的步骤,其中凝聚素首先通过静电相互作用结合DNA,然后利用ATP水解在其环形结构内拓扑性地环绕DNA,从而启动DNA压缩。两种结合模式对其DNA压缩活性都至关重要这一发现,对于理解染色体压缩机制具有重要意义。