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首页> 外文期刊>Applied and Environmental Microbiology >Analysis of the xplAB-Containing Gene Cluster Involved in the Bacterial Degradation of the Explosive Hexahydro-1,3,5-Trinitro-1,3,5-Triazine
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Analysis of the xplAB-Containing Gene Cluster Involved in the Bacterial Degradation of the Explosive Hexahydro-1,3,5-Trinitro-1,3,5-Triazine

机译:含xplAB的基因簇参与爆炸性六水合-1,3,5-三硝基-1,3,5-三嗪的细菌降解的分析

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Repeated use of the explosive compound hexahydro-1,3,5-trinitro-1,3,5-triazine (RDX) on military land has resulted in significant soil and groundwater pollution. Rates of degradation of RDX in the environment are low, and accumulated RDX, which the U.S. Environmental Protection Agency has determined is a possible human carcinogen, is now threatening drinking water supplies. RDX-degrading microorganisms have been isolated from RDX-contaminated land; however, despite the presence of these species in contaminated soils, RDX pollution persists. To further understand this problem, we studied RDX-degrading species belonging to four different genera (Rhodococcus, Microbacterium, Gordonia, and Williamsia) isolated from geographically distinct locations and established that the xplA and xplB (xplAB) genes, which encode a cytochrome P450 and a flavodoxin redox partner, respectively, are nearly identical in all these species. Together, the xplAB system catalyzes the reductive denitration of RDX and subsequent ring cleavage under aerobic and anaerobic conditions. In addition to xplAB, the Rhodococcus species studied here share a 14-kb region flanking xplAB; thus, it appears likely that the RDX-metabolizing ability was transferred as a genomic island within a transposable element. The conservation and transfer of xplAB-flanking genes suggest a role in RDX metabolism. We therefore independently knocked out genes within this cluster in the RDX-degrading species Rhodococcus rhodochrous 11Y. Analysis of the resulting mutants revealed that XplA is essential for RDX degradation and that XplB is not the sole contributor of reducing equivalents to XplA. While XplA expression is induced under nitrogen-limiting conditions and further enhanced by the presence of RDX, MarR is not regulated by RDX.
机译:在军用土地上重复使用爆炸性化合物hexahydro-1,3,5-trinitro-1,3,5-triazine(RDX)已导致严重的土壤和地下水污染。 RDX在环境中的降解率很低,并且累积的RDX被美国环境保护署确定为可能的人类致癌物,现在正威胁着饮用水的供应。已从受RDX污染的土地中分离出可降解RDX的微生物;但是,尽管这些物种存在于受污染的土壤中,RDX污染仍然存在。为了进一步了解这个问题,我们研究了从地理上不同的位置分离的属于四个不同属(红球菌,微细菌,戈登尼亚和威廉斯)的RDX降解菌种,并确定了xplA和xplB(xplAB)基因,它们编码细胞色素P450和在所有这些物种中,黄酮毒素的氧化还原伴侣都几乎相同。 xplAB系统一起在有氧和无氧条件下催化RDX的还原脱硝和随后的环裂解。除xplAB外,此处研究的红球菌属还具有一个xkbAB侧翼的14kb区域。因此,似乎RDX的代谢能力已作为基因组岛转移到可转座元件中。 xplAB侧翼基因的保守和转移表明在RDX代谢中起作用。因此,我们独立地敲除了RDX降解物种Rhodococcus rhodochrous 11Y中该簇中的基因。对所得突变体的分析表明,XplA对于RDX降解至关重要,并且XplB并不是减少XplA等效物的唯一原因。尽管XplA表达是在氮限制条件下诱导的,并通过RDX的存在进一步增强,但MarR不受RDX调控。

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