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Nicotine Dehydrogenase Complexed with 6-Hydroxypseudooxynicotine Oxidase Involved in the Hybrid Nicotine-Degrading Pathway in Agrobacterium tumefaciens S33

机译:尼古丁脱氢酶与6-羟基吡啶氧基氧化酶组成,参与突厥杆菌S33中的杂交尼古丁降解途径

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Nicotine, a major toxic alkaloid in tobacco wastes, is degraded by bacteria, mainly via pyridine and pyrrolidine pathways. Previously, we discovered a new hybrid of the pyridine and pyrrolidine pathways in Agrobacterium tumefaciens S33 and characterized its key enzyme 6-hydroxy-3-succinoylpyridine (HSP) hydroxylase. Here, we purified the nicotine dehydrogenase initializing the nicotine degradation from the strain and found that it forms a complex with a novel 6-hydroxypseudooxynicotine oxidase. The purified complex is composed of three different subunits encoded by ndhAB and pno , where ndhA and ndhB overlap by 4 bp and are ~26 kb away from pno . As predicted from the gene sequences and from chemical analyses, NdhA (82.4 kDa) and NdhB (17.1 kDa) harbor a molybdopterin cofactor and two [2Fe-2S] clusters, respectively, whereas Pno (73.3 kDa) harbors an flavin mononucleotide and a [4Fe-4S] cluster. Mutants with disrupted ndhA or ndhB genes did not grow on nicotine but grew well on 6-hydroxynicotine and HSP, whereas the pno mutant did not grow on nicotine or 6-hydroxynicotine but grew well on HSP, indicating that NdhA and NdhB are responsible for initialization of nicotine oxidation. We successfully expressed pno in Escherichia coli and found that the recombinant Pno presented 2,6-dichlorophenolindophenol reduction activity when it was coupled with 6-hydroxynicotine oxidation. The determination of reaction products catalyzed by the purified enzymes or mutants indicated that NdhAB catalyzed nicotine oxidation to 6-hydroxynicotine, whereas Pno oxidized 6-hydroxypseudooxynicotine to 6-hydroxy-3-succinoylsemialdehyde pyridine. These results provide new insights into this novel hybrid pathway of nicotine degradation in A. tumefaciens S33.
机译:尼古丁是烟草废物中的主要毒性生物碱,受细菌降解,主要是通过吡啶和吡咯烷途径。以前,我们发现了甘啶和吡咯烷途径的新杂种,在土壤杆菌S33中,其特征在于其关键酶6-羟基-3-琥珀酰基吡啶(HSP)羟化酶。在此,我们纯化尼古丁脱氢酶从菌株初始化尼古丁降解,发现它形成了一种与新的6-羟基丙酮氧基氧化酶形成复合物。纯化的络合物由Ndhab和PNO编码的三种不同亚基组成,其中NDHA和NDHB重叠4bp,远离PNO〜26kb。从基因序列和化学分析中预测,NDHA(82.4kDa)和NDHB(17.1kDa)分别含有钼蛋白辅因子和两个[2FE-2S]簇,而PNO(73.3kDa)哈尔林单核苷酸和[ 4FE-4S]集群。破坏的NDHA或NDHB基因的突变体在尼古丁上不会在尼古丁上生长,但在6-羟基肌约和HSP上生长良好,而PNO突变体在尼古丁或6-羟基肌约上没有生长,但在HSP上种得很好,表明NDHA和NDHB负责初始化尼古丁氧化。我们在大肠杆菌中成功地表达了PNO,发现重组PNO呈现出2,6-二氯吲哚苯酚还原活性,当其与6-羟基尼陶氏氧化氧化时。由纯化的酶或突变体催化的反应产物的测定表明,NDHAB催化的尼古丁氧化至6-羟基肌肉,而PNO氧化6-羟基苏氧阳炎至6-羟基-3-琥珀酰咪锰醛丙酸吡啶。这些结果为A.Tumefaciens S33中的尼古丁降解的这种新型杂交途径提供了新的见解。

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