Kumar Garima, Johnson Jordyn L, Frantom Patrick A
Department of Chemistry, The University of Alabama , 250 Hackberry Lane, Tuscaloosa, Alabama 35487, United States.
Biochemistry. 2016 Mar 29;55(12):1863-72. doi: 10.1021/acs.biochem.5b01193. Epub 2016 Mar 18.
Within the DRE-TIM metallolyase superfamily, members of the Claisen-like condensation (CC-like) subgroup catalyze C-C bond-forming reactions between various α-ketoacids and acetyl-coenzyme A. These reactions are important in the metabolic pathways of many bacterial pathogens and serve as engineering scaffolds for the production of long-chain alcohol biofuels. To improve functional annotation and identify sequences that might use novel substrates in the CC-like subgroup, a combination of structural modeling and multiple-sequence alignments identified active site residues on the third, fourth, and fifth β-strands of the TIM-barrel catalytic domain that are differentially conserved within the substrate-diverse enzyme families. Using α-isopropylmalate synthase and citramalate synthase from Methanococcus jannaschii (MjIPMS and MjCMS), site-directed mutagenesis was used to test the role of each identified position in substrate selectivity. Kinetic data suggest that residues at the β3-5 and β4-7 positions play a significant role in the selection of α-ketoisovalerate over pyruvate in MjIPMS. However, complementary substitutions in MjCMS fail to alter substrate specificity, suggesting residues in these positions do not contribute to substrate selectivity in this enzyme. Analysis of the kinetic data with respect to a protein similarity network for the CC-like subgroup suggests that evolutionarily distinct forms of IPMS utilize residues at the β3-5 and β4-7 positions to affect substrate selectivity while the different versions of CMS use unique architectures. Importantly, mapping the identities of residues at the β3-5 and β4-7 positions onto the protein similarity network allows for rapid annotation of probable IPMS enzymes as well as several outlier sequences that may represent novel functions in the subgroup.
在DRE-TIM金属裂解酶超家族中,类克莱森缩合(CC样)亚组的成员催化各种α-酮酸与乙酰辅酶A之间形成碳-碳键的反应。这些反应在许多细菌病原体的代谢途径中很重要,并且作为生产长链醇生物燃料的工程支架。为了改善功能注释并识别可能在CC样亚组中使用新型底物的序列,结合结构建模和多序列比对,确定了TIM桶催化结构域第三、第四和第五β链上的活性位点残基,这些残基在底物多样的酶家族中具有不同程度的保守性。利用詹氏甲烷球菌的α-异丙基苹果酸合酶和柠苹酸合酶(MjIPMS和MjCMS),通过定点诱变来测试每个确定位置在底物选择性中的作用。动力学数据表明,β3-5和β4-7位置的残基在MjIPMS中对α-酮异戊酸相对于丙酮酸的选择中起重要作用。然而,MjCMS中的互补取代未能改变底物特异性,表明这些位置的残基对该酶的底物选择性没有贡献。关于CC样亚组的蛋白质相似性网络对动力学数据的分析表明,进化上不同形式的IPMS利用β3-5和β4-7位置的残基来影响底物选择性,而不同版本的CMS使用独特的结构。重要的是,将β3-5和β4-7位置的残基身份映射到蛋白质相似性网络上,可以快速注释可能的IPMS酶以及几个可能代表该亚组新功能的异常序列。