Kariawasam Ruvini, Touma Christine, Cubeddu Liza, Gamsjaeger Roland
School of Science and Health, Western Sydney University, Penrith, NSW, 2751, Australia.
School of Life and Environmental Sciences, University of Sydney, Sydney, NSW, 2006, Australia.
Biomol NMR Assign. 2016 Oct;10(2):297-300. doi: 10.1007/s12104-016-9687-6. Epub 2016 May 18.
Single-stranded DNA-binding proteins (SSBs) are highly important in DNA metabolism and play an essential role in all major DNA repair pathways. SSBs are generally characterised by the presence of an oligonucleotide binding (OB) fold which is able to recognise single-stranded DNA (ssDNA) with high affinity. We discovered two news SSBs in humans (hSSB1 and hSSB2) that both contain a single OB domain followed by a divergent spacer region and a charged C-terminus. We have extensively characterised one of these, hSSB1 (NABP2/OBFC2B), in numerous important DNA processing events such as, in DNA double-stranded break repair and in the response to oxidative DNA damage. Although the structure of hSSB1 bound to ssDNA has recently been determined using X-ray crystallography, the detailed atomic level mechanism of the interaction of hSSB1 with ssDNA in solution has not been established. In this study we report the solution-state backbone chemical shift assignments of the OB domain of hSSB1. In addition, we have utilized NMR to map the DNA-binding interface of hSSB1, revealing major differences between recognition of ssDNA under physiological conditions and in the recently determined crystal structure. Our NMR data in combination with further biophysical and biochemical experiments will allow us to address these discrepancies and shed light onto the structural basis of DNA-binding by hSSB1 in solution.
单链DNA结合蛋白(SSB)在DNA代谢中非常重要,在所有主要的DNA修复途径中都发挥着关键作用。SSB的一般特征是存在一个寡核苷酸结合(OB)折叠,它能够以高亲和力识别单链DNA(ssDNA)。我们在人类中发现了两种新的SSB(hSSB1和hSSB2),它们都包含一个单一的OB结构域,后面跟着一个不同的间隔区和一个带电荷的C末端。我们已经在许多重要的DNA加工事件中广泛地对其中一种hSSB1(NABP2/OBFC2B)进行了表征,例如在DNA双链断裂修复和对氧化性DNA损伤的反应中。尽管最近已经通过X射线晶体学确定了与ssDNA结合的hSSB1的结构,但hSSB1在溶液中与ssDNA相互作用的详细原子水平机制尚未建立。在本研究中,我们报告了hSSB1的OB结构域的溶液状态主链化学位移归属。此外,我们利用核磁共振(NMR)来绘制hSSB1的DNA结合界面,揭示了生理条件下ssDNA识别与最近确定的晶体结构之间的主要差异。我们的NMR数据与进一步的生物物理和生化实验相结合,将使我们能够解决这些差异,并阐明hSSB1在溶液中结合DNA的结构基础。