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Unexpected Specificity of Interspecies Cobamide Transfer from Geobacter spp. to Organohalide-Respiring Dehalococcoides mccartyi Strains

机译:异种从土杆菌属物种中氨基甲酰胺转移的意外特异性。到呼吸有机卤化物的Mccartyi菌株

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Dehalococcoides mccartyi strains conserve energy from reductive dechlorination reactions catalyzed by corrinoid-dependent reductive dehalogenase enzyme systems. Dehalococcoides lacks the ability for de novo corrinoid synthesis, and pure cultures require the addition of cyanocobalamin (vitamin B_(12)) for growth. In contrast, Geobacter lovleyi , which dechlorinates tetrachloroethene to cis -1,2-dichloroethene ( cis -DCE), and the nondechlorinating species Geobacter sulfurreducens have complete sets of cobamide biosynthesis genes and produced 12.9 ± 2.4 and 24.2 ± 5.8 ng of extracellular cobamide per liter of culture suspension, respectively, during growth with acetate and fumarate in a completely synthetic medium. G. lovleyi - D. mccartyi strain BAV1 or strain FL2 cocultures provided evidence for interspecies corrinoid transfer, and cis -DCE was dechlorinated to vinyl chloride and ethene concomitant with Dehalococcoides growth. In contrast, negligible increase in Dehalococcoides 16S rRNA gene copies and insignificant dechlorination occurred in G. sulfurreducens - D. mccartyi strain BAV1 or strain FL2 cocultures. Apparently, G. lovleyi produces a cobamide that complements Dehalococcoides ' nutritional requirements, whereas G. sulfurreducens does not. Interestingly, Dehalococcoides dechlorination activity and growth could be restored in G. sulfurreducens - Dehalococcoides cocultures by adding 10 μM 5′,6′-dimethylbenzimidazole. Observations made with the G. sulfurreducens - Dehalococcoides cocultures suggest that the exchange of the lower ligand generated a cobalamin, which supported Dehalococcoides activity. These findings have implications for in situ bioremediation and suggest that the corrinoid metabolism of Dehalococcoides must be understood to faithfully predict, and possibly enhance, reductive dechlorination activities.
机译:麦卡迪脱盐球菌菌株可节省能量,这些能量来自类固醇依赖的还原性脱卤素酶系统催化的还原性脱氯反应。 Dehalococcoides缺乏从头合成类胡萝卜素的能力,并且纯培养物需要添加氰钴胺素(维生素B_(12))才能生长。相比之下,将四氯乙烯脱氯为顺式-1,2-二氯乙烯(cis -DCE)的洛弗氏土杆菌(Geobacter lovleyi)和非脱氯菌种Geobacter sulfreducens具有完整的cobamide生物合成基因,每单位产生12.9±2.4和24.2±5.8 ng细胞外cobamide。在完全合成的培养基中,用乙酸盐和富马酸盐生长期间,每升培养液分别悬浮1升。 G. lovleyi-D. mccartyi菌株BAV1或FL2菌株共培养为种间类海藻素转移提供了证据,顺式-DCE被脱氯成氯乙烯和乙烯,并伴随Dehalococcoides的生长。相比之下,脱硫球菌16S rRNA基因拷贝的增加可忽略不计,而在G. sulfreducens-D. mccartyi菌株BAV1或FL2菌株共培养物中脱氯作用不明显。显然,洛维酵母(G. lovleyi)产生的钴胺补充了Dehalococcoides的营养需求,而硫还原菌(G.sulfreducens)没有。有趣的是,通过添加10μM5',6'-二甲基苯并咪唑,可以在还原硫G.-Dehalococcoides共培养物中恢复Dehalococcoides的脱氯活性和生长。用硫还原菌-Dehalococcoides共培养物进行的观察表明,较低配体的交换产生了钴胺素,钴胺素支持Dehaloccocoides的活性。这些发现对原位生物修复具有影响,并表明必须了解Dehaloccocoides的类海藻糖代谢,以忠实地预测并可能增强还原性脱氯活性。

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