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利用双重DNA操作揭示H - NS蛋白的细菌染色质组织

Bacterial chromatin organization by H-NS protein unravelled using dual DNA manipulation.

作者信息

Dame Remus T, Noom Maarten C, Wuite Gijs J L

机构信息

Department of Physics and Astronomy and Laser Centre, Vrije Universiteit, De Boelelaan 1081, 1081 HV, Amsterdam, The Netherlands.

出版信息

Nature. 2006 Nov 16;444(7117):387-90. doi: 10.1038/nature05283.

Abstract

Both prokaryotic and eukaryotic organisms contain DNA bridging proteins, which can have regulatory or architectural functions. The molecular and mechanical details of such proteins are hard to obtain, in particular if they involve non-specific interactions. The bacterial nucleoid consists of hundreds of DNA loops, shaped in part by non-specific DNA bridging proteins such as histone-like nucleoid structuring protein (H-NS), leucine-responsive regulatory protein (Lrp) and SMC (structural maintenance of chromosomes) proteins. We have developed an optical tweezers instrument that can independently handle two DNA molecules, which allows the systematic investigation of protein-mediated DNA-DNA interactions. Here we use this technique to investigate the abundant non-specific nucleoid-associated protein H-NS, and show that H-NS is dynamically organized between two DNA molecules in register with their helical pitch. Our optical tweezers also allow us to carry out dynamic force spectroscopy on non-specific DNA binding proteins and thereby to determine an energy landscape for the H-NS-DNA interaction. Our results explain how the bacterial nucleoid can be effectively compacted and organized, but be dynamic in nature and accessible to DNA-tracking motor enzymes. Finally, our experimental approach is widely applicable to other DNA bridging proteins, as well as to complex DNA interactions involving multiple DNA molecules.

摘要

原核生物和真核生物都含有DNA桥连蛋白,这些蛋白可能具有调控或构建功能。此类蛋白的分子和力学细节很难获得,尤其是当它们涉及非特异性相互作用时。细菌类核由数百个DNA环组成,部分由非特异性DNA桥连蛋白塑造,如组蛋白样类核结构蛋白(H-NS)、亮氨酸响应调节蛋白(Lrp)和SMC(染色体结构维持)蛋白。我们开发了一种光镊仪器,它可以独立操控两个DNA分子,从而能够系统地研究蛋白质介导的DNA-DNA相互作用。在此,我们使用该技术研究丰富的非特异性类核相关蛋白H-NS,并表明H-NS在两个DNA分子之间动态组织,与它们的螺旋间距对齐。我们的光镊还使我们能够对非特异性DNA结合蛋白进行动态力谱分析,从而确定H-NS与DNA相互作用的能量景观。我们的结果解释了细菌类核如何能够有效地压缩和组织,但本质上是动态的,并且可供DNA追踪运动酶访问。最后,我们的实验方法广泛适用于其他DNA桥连蛋白,以及涉及多个DNA分子的复杂DNA相互作用。

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