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Cloning, sequencing, and overexpression in Escherichia coli of the Enterobacter sp. Px6-4 gene for ferulic acid decarboxylase

机译:肠杆菌属细菌在大肠杆菌中的克隆,测序和过表达。阿魏酸脱羧酶的Px6-4基因

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摘要

Ferulic acid decarboxylase (FADase) can catalyze the transformation of ferulic acid into 4-vinyl guaiacol via decarboxylation in microorganisms. In this study, a gene encoding FADase was first isolated from the bacterium Enterobacter sp. Px6-4 using degenerate primers and a genome walking technique. The putative encoding gene (fad) of FADase consists of 507-bp nucleotides, coding a polypeptide of 168 amino acid residues. In addition, a putative gene encoding the transcriptional regulator was identified from the upstream of the fad gene. The deduced peptide sequence of the FADase from Enterobacter sp. Px6-4 showed a 51.2-53.3% sequence identity to decarboxylases from other bacteria. The gene fad was successfully expressed in Escherichia coli BL21, and the recombinant FADase was purified as a protein of ca. 23 kDa with an optimal activity at pH 4.0 and 28°C. The purified FADase could convert ferulic acid to 4-vinyl guaiacol effectively, and its hydrolytic activity could be inhibited by Cu2+ (99%) and Hg2+ (99.5%). A phylogenetic analysis of the FADase protein from bacteria revealed several different clades. Our result provided a basis for further studies of the ferulic acid transformation pathway and for enhanced production of vanillin in the future.
机译:阿魏酸脱羧酶(FADase)可以通过微生物中的脱羧作用催化阿魏酸转化为4-乙烯基愈创木酚。在这项研究中,首先从细菌Enterobacter sp。中分离出编码FADase的基因。 Px6-4使用简并引物和基因组步移技术。 FADase的推定编码基因(fad)由507bp核苷酸组成,编码168个氨基酸残基的多肽。另外,从fad基因的上游鉴定出编码转录调节子的推定基因。从肠杆菌属中推导的FADase的肽序列。 Px6-4与来自其他细菌的脱羧酶显示51.2-53.3%的序列同一性。 fad基因在大肠杆菌BL21中成功表达,重组的FADase被纯化为ca. 23 kDa,在pH 4.0和28°C下具有最佳活性。纯化的FADase能有效地将阿魏酸转化为4-乙烯基愈创木酚,其水解活性可被Cu2 +(99%)和Hg2 +(99.5%)抑制。对细菌中FADase蛋白的系统发育分析发现了几个不同的进化枝。我们的结果为进一步研究阿魏酸转化途径和提高香草醛的产量提供了基础。

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