Fujino Aiko, Ose Toyouki, Yao Min, Tokiwano Tetsuo, Honma Mamoru, Watanabe Nobuhisa, Tanaka Isao
Division of Biological Sciences, Graduate School of Science, Hokkaido University, Sapporo, Japan.
J Mol Biol. 2004 Aug 20;341(4):999-1013. doi: 10.1016/j.jmb.2004.06.062.
1-Aminocyclopropane-l-carboxylate deaminase (ACCD) is a pyridoxal 5/-phosphate dependent enzyme that shows deaminase activity toward ACC, a precursor of plant hormone ethylene. ACCD from some soil bacteria has been reported to be able to break the cyclopropane ring of ACC to yield a-ketobutyrate and ammonia. We reported the crystal structure of ACCD from the yeast Hansenula saturnus in the absence/presence of substrate ACC, and proposed its ingenious reaction mechanisms. In order to study the enzyme further, we overexpressed the ACCD homologue protein (phAHP) from the fully decoded hyperthermophilic archearon, Pyrococcus horikoshii OT3. However, phAHP does not show ACCD activity at high temperature as well as at room temperature, though it has significant sequence similarity. Instead of ACCD activity, the GC-MS analysis and enzymatic method show that phAHP has deaminase activity toward L and D-serine. Here, we present the crystal structures of the native and ACC-complexed phAHP. The overall topology of the phAHP structure is very similar to that of ACCD; however, critical differences were observed around the active site. Here, the differences of enzymatic activity between phAHP and ACCD are discussed based on the structural differences of these two proteins. We suggest that the catalytic disagreement between these two enzymes comes from the difference of the residues near the pyridine ring of pyridoxal 5'-phosphate (PLP), not the difference of the catalytic residues themselves. We also propose a condition necessary in the primary sequence to have ACCD activity.
1-氨基环丙烷-1-羧酸脱氨酶(ACCD)是一种依赖于磷酸吡哆醛5'-磷酸的酶,对植物激素乙烯的前体ACC具有脱氨酶活性。据报道,一些土壤细菌中的ACCD能够断裂ACC的环丙烷环,生成α-酮丁酸和氨。我们报道了来自酵母土星汉逊酵母的ACCD在有无底物ACC情况下的晶体结构,并提出了其巧妙的反应机制。为了进一步研究该酶,我们从完全解码的嗜热古菌火球菌OT3中过表达了ACCD同源蛋白(phAHP)。然而,尽管phAHP具有显著的序列相似性,但它在高温和室温下均未表现出ACCD活性。气相色谱-质谱分析和酶法表明,phAHP对L-丝氨酸和D-丝氨酸具有脱氨酶活性,而非ACCD活性。在此,我们展示了天然phAHP和与ACC结合的phAHP的晶体结构。phAHP结构的整体拓扑与ACCD非常相似;然而,在活性位点周围观察到了关键差异。在此,基于这两种蛋白质的结构差异,讨论了phAHP和ACCD之间酶活性的差异。我们认为这两种酶的催化差异来自磷酸吡哆醛(PLP)吡啶环附近残基的差异,而非催化残基本身的差异。我们还提出了在一级序列中具有ACCD活性所必需的条件。