Manosas Maria, Camunas-Soler Joan, Croquette Vincent, Ritort Felix
Small Biosystems Lab, Departament de Fsica de la Matèria Condensada, Facultat de Física, Universitat de Barcelona, Barcelona, 08028, Spain.
CIBER de Bioingeniería, Biomateriales y Nanomedicina, Instituto de Salud Carlos III, Madrid, 28029, Spain.
Nat Commun. 2017 Aug 21;8(1):304. doi: 10.1038/s41467-017-00379-w.
Most DNA processes are governed by molecular interactions that take place in a sequence-specific manner. Determining the sequence selectivity of DNA ligands is still a challenge, particularly for small drugs where labeling or sequencing methods do not perform well. Here, we present a fast and accurate method based on parallelized single molecule magnetic tweezers to detect the sequence selectivity and characterize the thermodynamics and kinetics of binding in a single assay. Mechanical manipulation of DNA hairpins with an engineered sequence is used to detect ligand binding as blocking events during DNA unzipping, allowing determination of ligand selectivity both for small drugs and large proteins with nearly base-pair resolution in an unbiased fashion. The assay allows investigation of subtle details such as the effect of flanking sequences or binding cooperativity. Unzipping assays on hairpin substrates with an optimized flat free energy landscape containing all binding motifs allows determination of the ligand mechanical footprint, recognition site, and binding orientation.Mapping the sequence specificity of DNA ligands remains a challenge, particularly for small drugs. Here the authors develop a parallelized single molecule magnetic tweezers approach using engineered DNA hairpins that can detect sequence selectivity, thermodynamics and kinetics of binding for small drugs and large proteins.
大多数DNA过程受以序列特异性方式发生的分子相互作用支配。确定DNA配体的序列选择性仍然是一项挑战,特别是对于那些标记或测序方法效果不佳的小分子药物而言。在此,我们提出一种基于并行化单分子磁镊的快速且准确的方法,用于在单一测定中检测序列选择性并表征结合的热力学和动力学。利用对具有工程化序列的DNA发夹进行机械操作,在DNA解链过程中将配体结合检测为阻断事件,从而能够以无偏差的方式,以近乎碱基对的分辨率确定小分子药物和大蛋白质的配体选择性。该测定法能够研究细微细节,例如侧翼序列的影响或结合协同性。对具有包含所有结合基序的优化平坦自由能态势的发夹底物进行解链测定,能够确定配体的机械足迹、识别位点和结合方向。绘制DNA配体的序列特异性仍然是一项挑战,特别是对于小分子药物。本文作者开发了一种使用工程化DNA发夹的并行化单分子磁镊方法,该方法能够检测小分子药物和大蛋白质的序列选择性、结合的热力学和动力学。