Hwangbo Seung-A, Kim Ji-Won, Jung Sun-Ju, Jin Kyeong Sik, Lee Jie-Oh, Kim Jeong-Sun, Park Suk-Youl
Pohang Accelerator Laboratory, Pohang University of Science and Technology, Pohang, South Korea.
Institute of Membrane Proteins, Pohang University of Science and Technology, Pohang, South Korea.
Front Microbiol. 2019 Nov 26;10:2755. doi: 10.3389/fmicb.2019.02755. eCollection 2019.
Many organisms have genes to protect themselves from toxic conditions such as high ethanol and/or ammonia concentrations. When a high ethanol condition is induced to ZM4, a representative ethanologenic organism, this bacterium overexpresses several genes to overcome this ethanol stress. Among them, we characterized a gene product annotated as an arginase (zmARG) from ZM4. Even though all of the arginase-determining sequence motifs are not strictly conserved in zmARG, this enzyme converts L-arginine to urea and L-ornithine in the presence of a divalent manganese ion. The revealed high-resolution crystal structure of zmARG shows that it has a typical globular α/β arginase fold with a protruded C-terminal helix. Two zinc ions reside in the active site, where one metal ion is penta-coordinated and the other has six ligands, discerning this zmARG from the reported arginases with two hexa-liganded metal ions. zmARG forms a dimeric structure in solution as well as in the crystalline state. The dimeric assembly of zmARG is formed mainly by interaction formed between the C-terminal α-helix of one molecule and the α/β hydrolase fold of another molecule. The presented findings demonstrate the first reported dimeric arginase formed by the C-terminal tail and has two metal ions coordinated by different number of ligands.
许多生物体都有保护自身免受高乙醇和/或高氨浓度等毒性条件影响的基因。当对典型的产乙醇生物体ZM4施加高乙醇条件时,这种细菌会过度表达几个基因以克服这种乙醇胁迫。其中,我们对ZM4中一个注释为精氨酸酶(zmARG)的基因产物进行了表征。尽管zmARG中所有精氨酸酶决定序列基序并非严格保守,但这种酶在二价锰离子存在的情况下能将L-精氨酸转化为尿素和L-鸟氨酸。所揭示的zmARG的高分辨率晶体结构表明,它具有典型的球状α/β精氨酸酶折叠结构,带有一个突出的C端螺旋。两个锌离子位于活性位点,其中一个金属离子为五配位,另一个有六个配体,这使得该zmARG与已报道的具有两个六配位金属离子的精氨酸酶有所不同。zmARG在溶液和晶体状态下均形成二聚体结构。zmARG的二聚体组装主要通过一个分子的C端α-螺旋与另一个分子的α/β水解酶折叠之间形成的相互作用而形成。所呈现的研究结果证明了首个由C端尾部形成的二聚体精氨酸酶的报道,且该酶有两个由不同数量配体配位的金属离子。