首页> 外文期刊>Journal of microbiology and biotechnology >Molecular and Biochemical Characteristics of β-Propeller Phytase from Marine Pseudomonas sp. BS10-3 and Its Potential Application for Animal Feed Additives~S
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Molecular and Biochemical Characteristics of β-Propeller Phytase from Marine Pseudomonas sp. BS10-3 and Its Potential Application for Animal Feed Additives~S

机译:海洋假单胞菌β-推进酶植酸酶的分子和生化特性BS10-3及其在动物饲料添加剂中的潜在应用〜S

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摘要

Phytate is an antinutritional factor that impacts the bioavailability of essential minerals such as Ca~(2+), Mg~(2+), Mn~(2+), Zn~(2+), and Fe~(2+) by forming insoluble mineral-phytate salts. These insoluble mineral-phytate salts are hydrolyzed rarely by monogastric animals, because they lack the hydrolyzing phytases and thus excrete the majority of them. The p-propeller phytases (BPPs) hydrolyze these insoluble mineral-phytate salts efficiently. In this study, we cloned a novel BPP gene from a marine Pseudomonas sp. This Pseudomonas BPP gene (PsBPP) had low sequence identity with other known phytases and contained an extra internal repeat domain (residues 24-279) and a typical BPP domain (residues 280-634) at the C-terminus. Structure- based sequence alignment suggested that the N-terminal repeat domain did not possess the active-site residues, whereas the C-terminal BPP domain contained multiple calcium-binding sites, which provide a favorable electrostatic environment for substrate binding and catalytic activity. Thus, we overexpressed the BPP domain from Pseudomonas sp. to potentially hydrolyze insoluble mineral-phytate salts. Purified recombinant PsBPP required Ca~(2+) or Fe~(2+) for phytase activity, indicating that PsBPP hydrolyzes insoluble Fe~(2+)-phytate or Ca~(2+)-phytate salts. The optimal temperature and pH for the hydrolysis of Ca~(2+)-phytate by PsBPP were 50°C and 6.0, respectively. Biochemical and kinetic studies clearly showed that PsBPP efficiently hydrolyzed Ca~(2+)-phytate salts and yielded myo-inositol 2,4,6-trisphosphate and three phosphate groups as final products. Finally, we showed that PsBPP was highly effective for hydrolyzing rice bran with high phytate content. Taken together, our results suggest that PsBPP has great potential in the animal feed industry for reducing phytates.
机译:植酸是一种抗营养因子,会通过以下方式影响诸如Ca〜(2 +),Mg〜(2 +),Mn〜(2 +),Zn〜(2+)和Fe〜(2+)等必需矿物质的生物利用度。形成不溶性矿物植酸盐。这些不溶性肌醇六磷酸盐很少被单胃动物水解,因为它们缺乏水解肌醇六磷酸酶,因此排泄了其中大部分。对位螺旋桨植酸酶(BPP)可以有效地水解这些不溶性矿物植酸盐。在这项研究中,我们从海洋假单胞菌sp。克隆了一个新的BPP基因。该假单胞菌BPP基因(PsBPP)与其他已知的肌醇六磷酸酶具有低序列同一性,并且在C末端包含额外的内部重复结构域(残基24-279)和典型的BPP结构域(残基280-634)。基于结构的序列比对表明N末端重复结构域不具有活性位点残基,而C末端BPP结构域包含多个钙结合位点,这为底物结合和催化活性提供了良好的静电环境。因此,我们过表达假单胞菌sp的BPP域。潜在地水解不溶性矿物植酸盐。纯化的重组PsBPP需要Ca〜(2+)或Fe〜(2+)才能具有植酸酶活性,表明PsBPP水解了不溶性的Fe〜(2 +)-植酸盐或Ca〜(2 +)-植酸盐。 PsBPP水解Ca〜(2 +)-植酸盐的最佳温度和pH分别为50°C和6.0。生化和动力学研究清楚地表明,PsBPP有效地水解了Ca〜(2 +)-植酸盐,并生成了肌醇2,4,6-三磷酸和三个磷酸基团作为最终产物。最后,我们证明了PsBPP对水解具有高植酸含量的米糠非常有效。两者合计,我们的结果表明PsBPP在动物饲料工业中具有减少植酸盐的巨大潜力。

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