Department of Biochemistry, Duke University, Durham, North Carolina 27710, USA.
Department of Pharmaceutical Chemistry, Cardiovascular Research Institute, University of California, San Francisco, California 94158, USA.
Nat Chem. 2017 Dec;9(12):1157-1164. doi: 10.1038/nchem.2846. Epub 2017 Aug 21.
Protein catalysis requires the atomic-level orchestration of side chains, substrates and cofactors, and yet the ability to design a small-molecule-binding protein entirely from first principles with a precisely predetermined structure has not been demonstrated. Here we report the design of a novel protein, PS1, that binds a highly electron-deficient non-natural porphyrin at temperatures up to 100 °C. The high-resolution structure of holo-PS1 is in sub-Å agreement with the design. The structure of apo-PS1 retains the remote core packing of the holoprotein, with a flexible binding region that is predisposed to ligand binding with the desired geometry. Our results illustrate the unification of core packing and binding-site definition as a central principle of ligand-binding protein design.
蛋白质催化需要侧链、底物和辅因子在原子水平上的协调,然而,从第一原理完全设计出具有精确预定结构的小分子结合蛋白的能力尚未得到证明。在这里,我们报告了一种新型蛋白质 PS1 的设计,该蛋白质可以在高达 100°C 的温度下结合高度缺电子的非天然卟啉。全 PS1 的高分辨率结构与设计相符。apo-PS1 的结构保留了全蛋白的远程核心堆积,具有灵活的结合区域,有利于以所需的几何形状进行配体结合。我们的结果说明了核心堆积和结合位点定义的统一是配体结合蛋白设计的一个中心原则。