Chen Shu-Wen W, Banneville Anne-Sophie, Teulon Jean-Marie, Timmins Joanna, Pellequer Jean-Luc
Univ. Grenoble Alpes, CEA, CNRS, Institut de Biologie Structurale (IBS), F-38000 Grenoble, France.
Nanoscale. 2020 Nov 19;12(44):22628-22638. doi: 10.1039/d0nr05320a.
The Deinococcus radiodurans protein HU (DrHU) was shown to be critical for nucleoid activities, yet its functional and structural properties remain largely unexplored. We have applied atomic force microscopy (AFM) imaging to study DrHU binding to pUC19-DNA in vitro and analyzed the topographic structures formed at the nanoscale. At the single-molecule level, AFM imaging allows visualization of super-helical turns on naked DNA surfaces and characterization of free DrHU molecules observed as homodimers. When enhancing the molecular surface structures of AFM images by the Laplacian weight filter, the distribution of bound DrHUs was visibly varied as a function of the DrHU/DNA molar ratio. At a low molar ratio, DrHU binding was found to reduce the volume of condensed DNA configuration by about 50%. We also show that DrHU is capable of bridging distinct DNA segments. Moreover, at a low molar ratio, the binding orientation of individual DrHU dimers could be perceived on partially "open" DNA configuration. At a high molar ratio, DrHU stiffened the DNA molecule and enlarged the spread of the open DNA configuration. Furthermore, a lattice-like pattern could be seen on the surface of DrHU-DNA complex, indicating that DrHU multimerization had occurred leading to the formation of a higher order architecture. Together, our results show that the functional plasticity of DrHU in mediating DNA organization is subject to both the conformational dynamics of DNA molecules and protein abundance.
耐辐射球菌蛋白HU(DrHU)已被证明对类核活动至关重要,但其功能和结构特性在很大程度上仍未得到探索。我们应用原子力显微镜(AFM)成像技术在体外研究DrHU与pUC19-DNA的结合,并分析了在纳米尺度上形成的形貌结构。在单分子水平上,AFM成像能够可视化裸露DNA表面的超螺旋结构,并对观察到的作为同二聚体的游离DrHU分子进行表征。当通过拉普拉斯权重滤波器增强AFM图像的分子表面结构时,结合的DrHUs的分布随DrHU/DNA摩尔比的变化而明显不同。在低摩尔比下,发现DrHU的结合使浓缩DNA构型的体积减少了约50%。我们还表明,DrHU能够桥接不同的DNA片段。此外,在低摩尔比下,可以在部分“开放”的DNA构型上感知单个DrHU二聚体的结合方向。在高摩尔比下,DrHU使DNA分子变硬并扩大了开放DNA构型的伸展范围。此外,在DrHU-DNA复合物的表面可以看到一种晶格状图案,表明发生了DrHU多聚化,导致形成了更高阶的结构。总之,我们的结果表明,DrHU在介导DNA组织方面的功能可塑性既受DNA分子构象动力学的影响,也受蛋白质丰度的影响。