Dekker N H, Viard T, de La Tour C Bouthier, Duguet M, Bensimon D, Croquette V
Laboratoire de Physique Statistique et Département de Biologie, Ecole Normale Supérieure, UMR 8550 CNRS, 24 rue Lhomond, 75231 Paris, France.
J Mol Biol. 2003 May 30;329(2):271-82. doi: 10.1016/s0022-2836(03)00320-6.
Control of DNA topology is critical in thermophilic organisms in which heightened ambient temperatures threaten the stability of the double helix. An important role in this control is played by topoisomerase I, a member of the type IA family of topoisomerases. We investigated the binding and activity of this topoisomerase from the hyperthermophilic bacterium Thermotoga maritima on duplex DNA using single molecule techniques, presenting it with various substrates such as (+) plectonemes, (-) plectonemes, and denaturation bubbles. We found the topoisomerase inactive on both types of plectonemes, but active on denaturation bubbles produced at increased stretching forces in underwound DNA. The relaxation rate depended sensitively on the applied force and the protein concentration. These observations could be understood in terms of a preference of the topoisomerase for single-stranded DNA over double-stranded DNA and allowed for a better understanding of activity of the topoisomerase in bulk experiments on circular plasmids. Binding experiments on a single duplex molecule using a mutant unable to perform cleavage confirmed this interpretation and suggested that T.maritima topoisomerase I behaves like an SSB by lowering the denaturation threshold of underwound DNA. Finally, experiments with a unique single-stranded DNA showed that both ends of the cleaved DNA are tightly maintained by the enzyme, supporting an enzyme-bridged mechanism for this topoisomerase.
在嗜热生物中,DNA拓扑结构的控制至关重要,因为环境温度升高会威胁双螺旋的稳定性。拓扑异构酶I在这种控制中发挥着重要作用,它是IA型拓扑异构酶家族的一员。我们使用单分子技术研究了来自嗜热细菌海栖热袍菌的这种拓扑异构酶在双链DNA上的结合和活性,为其提供了各种底物,如(+)超螺旋、(-)超螺旋和变性泡。我们发现该拓扑异构酶对两种类型的超螺旋均无活性,但对在负超螺旋DNA中增加拉伸力时产生的变性泡有活性。松弛速率敏感地取决于施加的力和蛋白质浓度。这些观察结果可以从拓扑异构酶对单链DNA比对双链DNA的偏好来理解,并且有助于更好地理解在环状质粒的大量实验中该拓扑异构酶的活性。使用无法进行切割的突变体对单个双链分子进行的结合实验证实了这一解释,并表明海栖热袍菌拓扑异构酶I通过降低负超螺旋DNA的变性阈值而表现得像单链结合蛋白。最后,对独特单链DNA的实验表明,切割后的DNA两端被该酶紧密维持,支持了这种拓扑异构酶的酶桥机制。