Institute for Protein Design, University of Washington, 3946 W Stevens Way NE, Seattle, Washington 98195, United States.
Department of Biochemistry, University of Washington, Seattle, Washington 98195, United States.
J Am Chem Soc. 2023 Jul 5;145(26):14307-14315. doi: 10.1021/jacs.3c02742. Epub 2023 Jun 21.
The catalytic versatility of pentacoordinated iron is highlighted by the broad range of natural and engineered activities of heme enzymes such as cytochrome P450s, which position a porphyrin cofactor coordinating a central iron atom below an open substrate binding pocket. This catalytic prowess has inspired efforts to design de novo helical bundle scaffolds that bind porphyrin cofactors. However, such designs lack the large open substrate binding pocket of P450s, and hence, the range of chemical transformations accessible is limited. Here, with the goal of combining the advantages of the P450 catalytic site geometry with the almost unlimited customizability of de novo protein design, we design a high-affinity heme-binding protein, dnHEM1, with an axial histidine ligand, a vacant coordination site for generating reactive intermediates, and a tunable distal pocket for substrate binding. A 1.6 Å X-ray crystal structure of dnHEM1 reveals excellent agreement to the design model with key features programmed as intended. The incorporation of distal pocket substitutions converted dnHEM1 into a proficient peroxidase with a stable neutral ferryl intermediate. In parallel, dnHEM1 was redesigned to generate enantiocomplementary carbene transferases for styrene cyclopropanation (up to 93% isolated yield, 5000 turnovers, 97:3 e.r.) by reconfiguring the distal pocket to accommodate calculated transition state models. Our approach now enables the custom design of enzymes containing cofactors adjacent to binding pockets with an almost unlimited variety of shapes and functionalities.
五配位铁的催化多功能性突出体现在血红素酶(如细胞色素 P450)的广泛的天然和工程化活性中,这些酶将卟啉辅因子置于一个开放的底物结合口袋下方,以配位中心铁原子。这种催化能力激发了设计从头设计的螺旋束支架以结合卟啉辅因子的努力。然而,这种设计缺乏 P450 的大的开放底物结合口袋,因此,可获得的化学转化范围有限。在这里,我们的目标是结合 P450 催化位点几何形状的优势与从头蛋白质设计的几乎无限的可定制性,设计了一种具有轴向组氨酸配体、生成反应性中间体的空位配位位点和可调节的远端口袋的高亲和力血红素结合蛋白 dnHEM1,用于底物结合。dnHEM1 的 1.6 Å X 射线晶体结构与设计模型非常吻合,关键特征按预期编程。通过引入远端口袋取代,dnHEM1 转变成一种有效的过氧化物酶,具有稳定的中性铁氧中间物。同时,dnHEM1 被重新设计为生成对映体互补的卡宾转移酶,用于苯乙烯环丙烷化(最高分离产率为 93%,5000 个周转率,97:3 e.r.),通过重新配置远端口袋以适应计算的过渡态模型。我们的方法现在能够定制包含紧邻结合口袋的辅因子的酶,其形状和功能几乎具有无限的多样性。