Department of Chemistry and Physical Sciences , Mount St. Joseph University , Cincinnati , Ohio 45233 , United States.
Department of Physics , University of Cincinnati , Cincinnati , Ohio 45220 , United States.
Biochemistry. 2018 May 15;57(19):2796-2813. doi: 10.1021/acs.biochem.8b00195. Epub 2018 Apr 30.
An important but poorly characterized contribution to the thermodynamics of protein-DNA interactions is the loss of entropy that occurs from restricting the conformational freedom of amino acid side chains. The effect of restricting the flexibility of several side chains at a protein-DNA interface may be comparable in many cases to the other factors that determine the binding thermodynamics and may, therefore, play a key role in dictating the binding affinity and/or specificity. Because the entropic contributions, including the presence and influence of side-chain dynamics, are especially difficult to estimate based on structural information, it is important to pursue experimental and theoretical studies that can provide direct information regarding these issues. We report on studies of a model system, the homeodomain/DNA complex, focusing on the Lys50 class of homeodomains where a key lysine residue in position 50 was shown previously to be critical for binding site specificity. NMR methodology was employed for determining the dynamics of lysine side-chain amino groups via N relaxation measurements in the Lys50-class homeodomains from the Drosophila protein Bicoid and the human protein Pitx2. In the case of Pitx2, complexes with both a consensus and a nonconsensus DNA binding site were examined. NMR-derived order parameters indicated moderate to substantial conformational freedom for the lysine NH group in the complexes studied. To complement the experimental NMR measurements, molecular dynamics simulations were performed for the consensus complexes to gain further, detailed insights regarding the dynamics of the Lys50 side chain and other important residues in the protein-DNA interface.
蛋白质-DNA 相互作用热力学的一个重要但特征不明显的贡献是,限制氨基酸侧链的构象自由度会导致熵的损失。在许多情况下,限制蛋白质-DNA 界面上几个侧链的灵活性的效果可能与决定结合热力学的其他因素相当,因此可能在决定结合亲和力和/或特异性方面发挥关键作用。由于熵贡献,包括侧链动力学的存在和影响,特别是难以根据结构信息进行估计,因此重要的是要进行实验和理论研究,这些研究可以提供关于这些问题的直接信息。我们报告了一个模型系统,即同源域/DNA 复合物的研究,重点是 Lys50 类同源域,其中先前表明第 50 位的关键赖氨酸残基对于结合位点特异性至关重要。NMR 方法学用于通过在来自果蝇蛋白 Bicoid 和人蛋白 Pitx2 的 Lys50 类同源域中的 N 弛豫测量来确定赖氨酸侧链氨基基团的动力学。在 Pitx2 的情况下,研究了与共识和非共识 DNA 结合位点的复合物。NMR 衍生的有序参数表明,在所研究的复合物中,赖氨酸 NH 基团具有中等至较大的构象自由度。为了补充实验 NMR 测量,对共识复合物进行了分子动力学模拟,以更详细地了解 Lys50 侧链和蛋白质-DNA 界面上其他重要残基的动力学。