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Rid Enhances the 6-Hydroxypseudooxynicotine Dehydrogenase Reaction in Nicotine Degradation by Agrobacterium tumefaciens S33

机译:用土豆杆菌S33增强尼古丁降解中的6-羟基吡啶脱氧钠脱氢酶反应

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Agrobacterium tumefaciens S33 degrades nicotine through a hybrid of the pyridine and pyrrolidine pathways. The oxidation of 6-hydroxypseudooxynicotine to 6-hydroxy-3-succinoyl-semialdehyde-pyridine by 6-hydroxypseudooxynicotine dehydrogenase (Pno) is an important step in the breakdown of the N -heterocycle in this pathway. Although Pno has been characterized, the reaction is not fully understood; what is known is that it starts at a high speed followed by a rapid drop in the reaction rate, leading to the formation of a very small amount of product. In this study, we speculated that an unstable imine intermediate that is toxic with regard to the metabolism is produced in the reaction. We found that a Rid protein (designated Rid-NC) encoded by a gene in the nicotine-degrading gene cluster enhanced the reaction. Rid is a widely distributed family of small proteins with various functions, and some subfamilies have deaminase activity to eliminate the toxicity of the reactive intermediate, imine. Biochemical analyses showed that Rid-NC relieved the toxicity of the presumed imine intermediate produced in the Pno reaction and that, in the presence of Rid-NC, Pno maintained a high level of activity and the amount of the reaction product was increase by at least 5-fold. Disruption of the rid -NC gene led to slower growth of strain S33 on nicotine. The mechanism of Rid-NC-mediated detoxification of the imine intermediate was discussed. A phylogenetic analysis indicated that Rid-NC belongs to the rarely studied Rid6 subfamily. These results further our understanding of the biochemical mechanism of nicotine degradation and provide new insights into the function of the Rid6 subfamily proteins.IMPORTANCE Rid is a family of proteins that participate in metabolite damage repair and is widely distributed in different organisms. In this study, we found that Rid-NC, which belongs to the Rid6 subfamily, promoted the 6-hydroxypseudooxynicotine dehydrogenase (Pno) reaction in the hybrid of the pyridine and pyrrolidine pathways for nicotine degradation by Agrobacterium tumefaciens S33. Rid-NC hydrolyzed the presumed reactive imine intermediate produced in the reaction to remove its toxicity on Pno. The finding furthers our understanding of the metabolic process of the toxic N -heterocyclic aromatic compounds in microorganisms. This study demonstrated that the Rid family of proteins also functions in the metabolism of N -heterocyclic aromatic alkaloids, in addition to the amino acid metabolism, and that Rid6-subfamily proteins also have deaminase activity, similar to the RidA subfamily. The ability of reactive imines to damage a non-pyridoxal-5′-phosphate-dependent enzyme was reported. This study provides new insights into the function of the Rid family of proteins.
机译:Tumefaciens S33通过吡啶和吡咯烷途径的杂种降解尼古丁。通过6-羟基丙酮氧基脱氢酶(PNO)氧化6-羟基-3-琥珀酰基半丙醛 - 吡啶的氧化至6-羟基-3-琥珀酰基 - 吡啶(PNO)是该途径中的N-汉腔系的分解的重要步骤。虽然PNO已经表征,但反应不完全理解;所知的是,它以高速开始,然后在反应速率下迅速下降,导致形成非常少量的产品。在这项研究中,我们推测,在反应中产生了对代谢的不稳定亚胺中间体。我们发现,在尼古丁降解基因簇中编码的基因编码的除蛋白(指定的RID-NC)增强了反应。除去是一种广泛分布的小蛋白质,具有各种功能,并且一些亚壳具有脱氨酶活性,以消除反应性中间体,亚胺的毒性。生物化学分析表明,RID-NC缓解了PNO反应中产生的假定亚胺中间体的毒性,并且在RID-NC存在下,PNO保持高水平的活性,并且至少至少增加反应产物的量增加5倍。 RID -NC基因的破坏导致尼古丁菌株S33慢的生长较慢。讨论了亚胺中间体的RID-NC介导的解毒机制。系统发育分析表明,RID-NC属于很少研究的RID6亚家族。这些结果进一步了解尼古丁降解的生化机制,并为RID6亚家族蛋白的功能提供了新的见解。分析是参与代谢物损伤修复的蛋白质家族,并广泛分布在不同的生物中。在这项研究中,我们发现,属于RID6亚家族的RID-NC在吡啶和吡啶唑杆菌S33的吡啶降解中促进了吡啶和吡咯烷途径的6-羟基Xyoxynotine脱氢酶(PNO)反应。 Rid-NC水解了反应中产生的假定反应性亚胺中间体,以除去其对PNO的毒性。该发现传统我们对微生物中有毒N-杂环芳族化合物的代谢过程的理解。本研究表明,除了氨基酸代谢之外,除去蛋白质的蛋白质还在N-磷酸环芳族生物碱的代谢中起作用,并且RID6-亚家族蛋白也具有类似于RADA亚家族的脱氨酶活性。报道了反应性亚胺损伤非吡哆醛-5'-磷酸依赖性酶的能力。本研究提供了新的见解蛋白质蛋白质的功能。

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