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DNA-segment-capture model for loop extrusion by structural maintenance of chromosome (SMC) protein complexes

机译:通过结构化染色体(SMC)蛋白复合物进行环挤出的DNA段捕获模型

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摘要

Cells possess remarkable control of the folding and entanglement topology of long and flexible chromosomal DNA molecules. It is thought that structural maintenance of chromosome (SMC) protein complexes play a crucial role in this, by organizing long DNAs into series of loops. Experimental data suggest that SMC complexes are able to translocate on DNA, as well as pull out lengths of DNA via a ‘loop extrusion’ process. We describe a Brownian loop-capture-ratchet model for translocation and loop extrusion based on known structural, catalytic, and DNA-binding properties of the Bacillus subtilis SMC complex. Our model provides an example of a new class of molecular motor where large conformational fluctuations of the motor ‘track’—in this case DNA—are involved in the basic translocation process. Quantitative analysis of our model leads to a series of predictions for the motor properties of SMC complexes, most strikingly a strong dependence of SMC translocation velocity and step size on tension in the DNA track that it is moving along, with ‘stalling’ occuring at subpiconewton tensions. We discuss how the same mechanism might be used by structurally related SMC complexes (Escherichia coli MukBEF and eukaryote condensin, cohesin and SMC5/6) to organize genomic DNA.
机译:细胞具有对长而灵活的染色体DNA分子的折叠和纠缠拓扑的显着控制。人们认为,通过将长DNA组织成一系列环,染色体(SMC)蛋白复合物的结构维持在其中起着至关重要的作用。实验数据表明,SMC复合物能够在DNA上移位,并可以通过“环挤”过程拉出一定长度的DNA。我们描述了基于已知的结构,催化和枯草芽孢杆菌SMC复合体的DNA结合特性的布朗环捕获-棘轮模型的易位和环挤出。我们的模型提供了一种新型分子马达的示例,其中马达“轨迹”的大构象波动(在这种情况下为DNA)参与了基本的移位过程。对我们模型的定量分析得出了SMC复合物运动特性的一系列预测,最令人惊讶的是SMC易位速度和步长强烈依赖于其运动的DNA轨道中的张力,“过时”发生在亚皮下紧张局势。我们讨论了结构相关的SMC复合物(大肠杆菌MukBEF和真核生物凝聚素,粘着蛋白和SMC5 / 6)如何使用相同的机制来组织基因组DNA。

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