Wang Yunyi, Kim Jihyun, Hilty Christian
Department of Chemistry , Texas A&M University , 3255 TAMU , College Station , TX 77843 , USA . Email:
Chem Sci. 2020 May 6;11(23):5935-5943. doi: 10.1039/d0sc00266f. eCollection 2020 Jun 21.
Elucidation of small molecule-protein interactions provides essential information for understanding biological processes such as cellular signaling, as well as for rational drug development. Here, multi-dimensional NMR with sensitivity enhancement by dissolution dynamic nuclear polarization (D-DNP) is shown to allow the determination of the binding epitope of folic acid when complexed with the target dihydrofolate reductase. Protein signals are selectively enhanced by polarization transfer from the hyperpolarized ligand. A pseudo three-dimensional data acquisition with ligand-side Hadamard encoding results in protein-side [C, H] chemical shift correlations that contain intermolecular nuclear Overhauser effect (NOE) information. A scoring function based on this data is used to select pre-docked ligand poses. The top five poses are within 0.76 Å root-mean-square deviation from a reference structure for the encoded five protons, showing improvements compared with the poses selected by an energy-based scoring function without experimental inputs. The sensitivity enhancement provided by the D-DNP combined with multi-dimensional NMR increases the speed and potentially the selectivity of structure elucidation of ligand binding epitopes.
阐明小分子与蛋白质的相互作用,对于理解细胞信号传导等生物过程以及合理的药物开发而言,都提供了至关重要的信息。在此,通过溶解动态核极化(D-DNP)增强灵敏度的多维核磁共振技术,被证明能够确定叶酸与目标二氢叶酸还原酶结合时的结合表位。通过超极化配体的极化转移,蛋白质信号被选择性增强。采用配体侧哈达玛编码的伪三维数据采集,可得到包含分子间核Overhauser效应(NOE)信息的蛋白质侧[C, H]化学位移相关性。基于此数据的评分函数用于选择预先对接的配体构象。对于编码的五个质子,排名前五的构象与参考结构的均方根偏差在0.76 Å以内,与无实验输入的基于能量的评分函数选择的构象相比有改进。D-DNP与多维核磁共振相结合提供的灵敏度增强,提高了配体结合表位结构解析的速度以及潜在的选择性。