Loschmidt Laboratories, Department of Experimental Biology and RECETOX, Faculty of Science, Masaryk University, Brno, Czech Republic.
International Clinical Research Center, St. Anne's University Hospital Brno, Brno, Czech Republic.
Protein Sci. 2023 Oct;32(10):e4751. doi: 10.1002/pro.4751.
Haloalkane dehalogenase (HLD) enzymes employ an S 2 nucleophilic substitution mechanism to erase halogen substituents in diverse organohalogen compounds. Subfamily I and II HLDs are well-characterized enzymes, but the mode and purpose of multimerization of subfamily III HLDs are unknown. Here we probe the structural organization of DhmeA, a subfamily III HLD-like enzyme from the archaeon Haloferax mediterranei, by combining cryo-electron microscopy (cryo-EM) and x-ray crystallography. We show that full-length wild-type DhmeA forms diverse quaternary structures, ranging from small oligomers to large supramolecular ring-like assemblies of various sizes and symmetries. We optimized sample preparation steps, enabling three-dimensional reconstructions of an oligomeric species by single-particle cryo-EM. Moreover, we engineered a crystallizable mutant (DhmeA ) that provided diffraction-quality crystals. The 3.3 Å crystal structure reveals that DhmeA forms a ring-like 20-mer structure with outer and inner diameter of ~200 and ~80 Å, respectively. An enzyme homodimer represents a basic repeating building unit of the crystallographic ring. Three assembly interfaces (dimerization, tetramerization, and multimerization) were identified to form the supramolecular ring that displays a negatively charged exterior, while its interior part harboring catalytic sites is positively charged. Localization and exposure of catalytic machineries suggest a possible processing of large negatively charged macromolecular substrates.
卤代烷脱卤酶(HLD)酶采用 S 2 亲核取代机制来消除各种有机卤代化合物中的卤素取代基。I 型和 II 型 HLD 是特征明确的酶,但 III 型 HLD 亚家族的多聚化模式和目的尚不清楚。在这里,我们通过结合低温电子显微镜(cryo-EM)和 X 射线晶体学来研究来自古菌地中海盐沼盐球菌的 III 型 HLD 样酶 DhmeA 的结构组织。我们表明全长野生型 DhmeA 形成不同的四级结构,从小寡聚体到大的各种大小和对称性的超分子环状组装体。我们优化了样品制备步骤,通过单颗粒 cryo-EM 实现了寡聚体的三维重建。此外,我们设计了可结晶的突变体(DhmeA ),该突变体提供了衍射质量的晶体。3.3Å 的晶体结构表明 DhmeA 形成一个环状 20 聚体结构,外径约为 200Å,内径约为 80Å。酶同源二聚体代表晶体环的基本重复构建单元。鉴定了三个组装界面(二聚化、四聚化和多聚化)来形成超分子环,该环显示出带负电荷的外部,而其内部部分则含有催化部位,带正电荷。催化机制的定位和暴露表明可能对大的带负电荷的大分子底物进行处理。