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Crystal structure of a thiolase from Escherichia coli at 1.8 Å resolution

机译:大肠杆菌中硫解酶的晶体结构分辨率为1.8Å

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摘要

Thiolases catalyze the Claisen condensation of two acetyl-CoA molecules to give acetoacetyl-CoA, as well as the reverse degradative reaction. Four genes coding for thiolases or thiolase-like proteins are found in the Escherichia coli genome. In this communication, the successful cloning, purification, crystallization and structure determination at 1.8 Å resolution of a homotetrameric E. coli thiolase are reported. The structure of E. coli thiolase co-crystallized with acetyl-CoA at 1.9 Å resolution is also reported. As observed in other tetrameric thiolases, the present E. coli thiolase is a dimer of two tight dimers and probably functions as a biodegradative enzyme. Comparison of the structure and biochemical properties of the E. coli enzyme with those of other well studied thiolases reveals certain novel features of this enzyme, such as the modification of a lysine in the dimeric interface, the possible oxidation of the catalytic Cys88 in the structure of the enzyme obtained in the presence of CoA and active-site hydration. The tetrameric enzyme also displays an interesting departure from exact 222 symmetry, which is probably related to the deformation of the tetramerization domain that stabilizes the oligomeric structure of the protein. The current study allows the identification of substrate-binding amino-acid residues and water networks at the active site and provides the structural framework required for understanding the biochemical properties as well as the physiological function of this E. coli thiolase.
机译:硫醇酶催化两个乙酰基-CoA分子的克莱森缩合反应,生成乙酰乙酰基-CoA以及逆向降解反应。在大肠杆菌基因组中发现了四个编码硫解酶或硫解酶样蛋白的基因。在这种交流中,据报道成功地克隆,纯化,结晶和以1.8Å的分辨率确定了同四聚体大肠杆菌硫解酶的结构。还报道了以1.9CoÅ分辨率与乙酰辅酶A共结晶的大肠杆菌硫解酶的结构。如在其他四聚体硫解酶中所观察到的,本发明的大肠杆菌硫解酶是两个紧密二聚体的二聚体,并且可能起生物降解酶的作用。大肠杆菌酶的结构和生化特性与其他经过充分研究的硫磺酶的比较表明,该酶具有某些新特征,例如在二聚体界面上修饰赖氨酸,结构中催化性Cys88可能被氧化在CoA和活性位点水合的情况下获得的酶的量。四聚酶还显示出与精确的222对称性的有趣偏离,这可能与稳定蛋白质寡聚结构的四聚化结构域的变形有关。当前的研究允许在活性位点鉴定结合底物的氨基酸残基和水网络,并提供理解该大肠杆菌硫解酶的生化特性和生理功能所需的结构框架。

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