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首页> 外文期刊>Applied and Environmental Microbiology >Flavobacterium johnsoniae as a Model Organism for Characterizing Biopolymer Utilization in Oligotrophic Freshwater Environments
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Flavobacterium johnsoniae as a Model Organism for Characterizing Biopolymer Utilization in Oligotrophic Freshwater Environments

机译:约翰逊黄杆菌是表征寡营养淡水环境中生物聚合物利用的模型生物

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Biopolymers are important substrates for heterotrophic bacteria in oligotrophic freshwater environments, but information on bacterial growth kinetics with biopolymers is scarce. The objective of this study was to characterize bacterial biopolymer utilization in these environments by assessing the growth kinetics of Flavobacterium johnsoniae strain A3, which is specialized in utilizing biopolymers at μg liter?1 levels. Growth of strain A3 with amylopectin, xyloglucan, gelatin, maltose, or fructose at 0 to 200 μg C liter?1 in tap water followed Monod or Teissier kinetics, whereas growth with laminarin followed Teissier kinetics. Classification of the specific affinity of strain A3 for the tested substrates resulted in the following affinity order: laminarin (7.9 × 10?2 liter·μg?1 of C·h?1) ? maltose > amylopectin ≈ gelatin ≈ xyloglucan > fructose (0.69 × 10?2 liter·μg?1 of C·h?1). No specific affinity could be determined for proline, but it appeared to be high. Extracellular degradation controlled growth with amylopectin, xyloglucan, or gelatin but not with laminarin, which could explain the higher affinity for laminarin. The main degradation products were oligosaccharides or oligopeptides, because only some individual monosaccharides and amino acids promoted growth. A higher yield and a lower ATP cell?1 level was achieved at ≤10 μg C liter?1 than at >10 μg C liter?1 with every substrate except gelatin. The high specific affinities of strain A3 for different biopolymers confirm that some representatives of the classes Cytophagia-Flavobacteria are highly adapted to growth with these compounds at μg liter?1 levels and support the hypothesis that Cytophagia-Flavobacteria play an important role in biopolymer degradation in (ultra)oligotrophic freshwater environments.
机译:生物聚合物是贫营养淡水环境中异养细菌的重要底物,但有关生物聚合物细菌生长动力学的信息很少。这项研究的目的是通过评估约翰逊黄杆菌菌株A3的生长动力学来表征在这些环境中细菌生物聚合物的利用,该菌株专门用于利用μg升?1水平的生物聚合物。在自来水中,支链淀粉,木葡聚糖,明胶,麦芽糖或果糖在0至200μgC升?1的菌株A3的生长遵循Monod或Teissier动力学,而层粘连蛋白的生长遵循Teissier动力学。菌株A3对被测底物的特异性亲和力的分类产生以下亲和力顺序:层粘连蛋白(7.9×10?2升·μg?1的C·h?1)?麦芽糖>支链淀粉≈明胶≈木葡聚糖>果糖(0.69×10?2升·μg?1的C·h?1)。无法确定脯氨酸的特异性亲和力,但似乎很高。细胞外降解用支链淀粉,木葡聚糖或明胶控制生长,但不使用层板蛋白,这可以解释对层板蛋白更高的亲和力。主要降解产物是寡糖或寡肽,因为只有一些单个的单糖和氨基酸促进生长。与除明胶外的所有底物相比,在≤10μgC升≤1的条件下,与在> 10μgC升≤1的条件下相比,获得了更高的产量和更低的ATP细胞?1水平。菌株A3对不同生物聚合物的高比亲和力证实,细胞噬菌体-黄细菌的某些代表高度适应这些化合物在μg升?1水平下的生长,并支持以下假设:细胞噬菌体-黄细菌在微生物降解中起重要作用。 (超)富营养淡水环境。

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