Faculty of Biology, Technion - Israel Institute of Technology, Haifa 32000, Israel.
Faculty of Physics, Technion - Israel Institute of Technology, Haifa 32000, Israel.
Nucleic Acids Res. 2021 Nov 8;49(19):10975-10987. doi: 10.1093/nar/gkab843.
The interaction of transcription factors with their response elements in DNA is emerging as a highly complex process, whose characterization requires measuring the full distribution of binding and dissociation times in a well-controlled assay. Here, we present a single-molecule assay that exploits the thermal fluctuations of a DNA hairpin to detect the association and dissociation of individual, unlabeled transcription factors. We demonstrate this new approach by following the binding of Egr1 to its consensus motif and the three binding sites found in the promoter of the Lhb gene, and find that both association and dissociation are modulated by the 9 bp core motif and the sequences around it. In addition, CpG methylation modulates the dissociation kinetics in a sequence and position-dependent manner, which can both stabilize or destabilize the complex. Together, our findings show how variations in sequence and methylation patterns synergistically extend the spectrum of a protein's binding properties, and demonstrate how the proposed approach can provide new insights on the function of transcription factors.
转录因子与 DNA 中其反应元件的相互作用正逐渐成为一个高度复杂的过程,其特征描述需要在一个精心控制的测定中测量结合和解离时间的完整分布。在这里,我们提出了一种单分子测定方法,该方法利用 DNA 发夹的热涨落来检测单个未标记的转录因子的结合和解离。我们通过跟踪 Egr1 与其共有基序以及在 Lhb 基因启动子中发现的三个结合位点的结合,证明了这种新方法的有效性,并且发现结合和解离都受到 9 个碱基核心基序及其周围序列的调节。此外,CpG 甲基化以序列和位置依赖性的方式调节解离动力学,这可以稳定或破坏复合物。总之,我们的研究结果表明,序列和甲基化模式的变化如何协同扩展蛋白质结合特性的范围,并展示了所提出的方法如何为转录因子的功能提供新的见解。