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碱性植酸酶与二价金属离子和肌醇六磷酸复合物的晶体结构

Crystal structures of Bacillus alkaline phytase in complex with divalent metal ions and inositol hexasulfate.

机构信息

Institute of Biotechnology, National Taiwan University, Taipei 106, Taiwan.

出版信息

J Mol Biol. 2011 Jun 3;409(2):214-24. doi: 10.1016/j.jmb.2011.03.063. Epub 2011 Apr 2.

Abstract

Alkaline phytases from Bacillus species, which hydrolyze phytate to less phosphorylated myo-inositols and inorganic phosphate, have great potential as additives to animal feed. The thermostability and neutral optimum pH of Bacillus phytase are attributed largely to the presence of calcium ions. Nonetheless, no report has demonstrated directly how the metal ions coordinate phytase and its substrate to facilitate the catalytic reaction. In this study, the interactions between a phytate analog (myo-inositol hexasulfate) and divalent metal ions in Bacillus subtilis phytase were revealed by the crystal structure at 1.25 Å resolution. We found all, except the first, sulfates on the substrate analog have direct or indirect interactions with amino acid residues in the enzyme active site. The structures also unraveled two active site-associated metal ions that were not explored in earlier studies. Significantly, one metal ion could be crucial to substrate binding. In addition, binding of the fourth sulfate of the substrate analog to the active site appears to be stronger than that of the others. These results indicate that alkaline phytase starts by cleaving the fourth phosphate, instead of the third or the sixth that were proposed earlier. Our high-resolution, structural representation of Bacillus phytase in complex with a substrate analog and divalent metal ions provides new insight into the catalytic mechanism of alkaline phytases in general.

摘要

芽孢杆菌属的碱性植酸酶能够将植酸水解为磷酸化程度较低的肌醇六磷酸和无机磷酸,作为动物饲料添加剂具有巨大的潜力。芽孢杆菌植酸酶的热稳定性和中性最适 pH 值主要归因于钙离子的存在。尽管如此,目前还没有报道直接证明金属离子如何与植酸酶及其底物配位,以促进催化反应。在这项研究中,通过 1.25 Å 分辨率的晶体结构揭示了植酸盐类似物(肌醇六硫酸酯)与枯草芽孢杆菌植酸酶中二价金属离子之间的相互作用。我们发现,除了第一个硫酸盐之外,底物类似物上的所有硫酸盐都与酶活性位点中的氨基酸残基直接或间接相互作用。这些结构还揭示了两个在早期研究中未探索的活性位点相关金属离子。重要的是,一个金属离子可能对底物结合至关重要。此外,底物类似物的第四个硫酸盐与活性位点的结合似乎比其他三个硫酸盐更强。这些结果表明,碱性植酸酶首先从第四磷酸开始切割,而不是之前提出的从第三或第六个磷酸开始切割。我们对枯草芽孢杆菌植酸酶与底物类似物和二价金属离子复合物的高分辨率结构表示,为碱性植酸酶的一般催化机制提供了新的见解。

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