首页> 外文OA文献 >Anaerobic and Aerobic Degradation of Cyanophycin by the Denitrifying Bacterium Pseudomonas alcaligenes Strain DIP1 and Role of Three Other Coisolates in a Mixed Bacterial Consortium▿
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Anaerobic and Aerobic Degradation of Cyanophycin by the Denitrifying Bacterium Pseudomonas alcaligenes Strain DIP1 and Role of Three Other Coisolates in a Mixed Bacterial Consortium▿

机译:反硝化细菌产碱假单胞菌菌株DIP1对蓝霉素的厌氧和好氧降解作用,以及混合菌群中其他三种共分离物的作用▿

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摘要

Four bacterial strains were isolated from a cyanophycin granule polypeptide (CGP)-degrading anaerobic consortium, identified by 16S rRNA gene sequencing, and assigned to species of the genera Pseudomonas, Enterococcus, Clostridium, and Paenibacillus. The consortium member responsible for CGP degradation was assigned as Pseudomonas alcaligenes strain DIP1. The growth of and CGP degradation by strain DIP1 under anaerobic conditions were enhanced but not dependent on the presence of nitrate as an electron acceptor. CGP was hydrolyzed to its constituting β-Asp-Arg dipeptides, which were then completely utilized within 25 and 4 days under anaerobic and aerobic conditions, respectively. The end products of CGP degradation by strain DIP1 were alanine, succinate, and ornithine as determined by high-performance liquid chromatography analysis. The facultative anaerobic Enterococcus casseliflavus strain ELS3 and the strictly anaerobic Clostridium sulfidogenes strain SGB2 were coisolates and utilized the β-linked isodipeptides from the common pool available to the mixed consortium, while the fourth isolate, Paenibacillus odorifer strain PNF4, did not play a direct role in the biodegradation of CGP. Several syntrophic interactions affecting CGP degradation, such as substrate utilization, the reduction of electron acceptors, and aeration, were elucidated. This study demonstrates the first investigation of CGP degradation under both anaerobic and aerobic conditions by one bacterial strain, with regard to the physiological role of other bacteria in a mixed consortium.
机译:从降解蓝藻颗粒多肽(CGP)的厌氧菌群中分离出四个细菌菌株,通过16S rRNA基因测序进行鉴定,并分配给假单胞菌属,肠球菌属,梭菌属和芽孢杆菌属的种。将负责CGP降解的财团成员指定为产酸假单胞菌菌株DIP1。 DIP1菌株在厌氧条件下的生长和CGP降解得到增强,但并不依赖于硝酸盐作为电子受体的存在。将CGP水解成其组成的β-Asp-Arg二肽,然后分别在厌氧和有氧条件下在25和4天内完全使用。通过高效液相色谱分析确定,菌株DIP1降解CGP的最终产物为丙氨酸,琥珀酸和鸟氨酸。兼性厌氧肠球菌菌株ELS3和严格厌氧梭状芽孢梭菌菌株SGB2是共分离株,并利用了可从混合财团获得的公共库中的β-连接的异肽,而第四个分离株,即臭味芽孢杆菌PNF4,没有直接作用。在CGP的生物降解中。阐明了影响CGP降解的几种同养相互作用,例如底物利用率,电子受体的减少和通气。这项研究表明,一个细菌菌株在厌氧和有氧条件下对CGP降解的首次研究涉及混合菌群中其他细菌的生理作用。

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