Department of Chemistry, Georgia State University, Atlanta, Georgia 30302, United States.
Department of Biology, Georgia State University, Atlanta, Georgia 30302, United States.
J Phys Chem Lett. 2021 Sep 2;12(34):8384-8396. doi: 10.1021/acs.jpclett.1c02173. Epub 2021 Aug 26.
This study utilizes the FMN-dependent NADH:quinone oxidoreductase from PAO1 to investigate the effect of introducing an active site negative charge on the flavin absorption spectrum both in the absence and presence of a long-range electrostatic potential coming from solution ions. There were no observed changes in the flavin UV-visible spectrum when an active site tyrosine (Y277) becomes deprotonated . These results could only be reproduced computationally using average solvent electrostatic configuration (ASEC) QM/MM simulations that include both positive and negative solution ions. The same calculations performed with minimal ions to neutralize the total protein charge predicted that deprotonating Y277 would significantly alter the flavin absorption spectrum. Analyzing the distribution of solution ions indicated that the ions reorganize around the protein surface upon Y277 deprotonation to cancel the effect of the tyrosinate on the flavin absorption spectrum. Additional biochemical experiments were performed to test this hypothesis.
本研究利用来自 PAO1 的 FMN 依赖型 NADH:醌氧化还原酶,研究在不存在和存在来自溶液离子的长程静电势的情况下,引入活性位点负电荷对黄素吸收光谱的影响。当活性位点酪氨酸(Y277)去质子化时,黄素的紫外-可见光谱没有观察到变化。这些结果只能通过使用包含正离子和负离子的平均溶剂静电配置(ASEC)QM/MM 模拟来重现。用最小离子中和总蛋白电荷进行相同的计算预测,去质子化 Y277 将显著改变黄素的吸收光谱。分析溶液离子的分布表明,在 Y277 去质子化时,离子在蛋白质表面重新排列以抵消酪氨酸对黄素吸收光谱的影响。进行了额外的生化实验来验证这一假设。