Jakub Grzesiak, Jan Gawor, Małgorzata Marta Rogala, Xenie Kouřilová, Stanislav Obruča
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引用次数: 0
摘要
近年来,极端微生物已被用作微生物生物塑料聚羟基烷酸酯(PHA)的生产商,具有重要的生物技术价值。然而,喜冷或嗜冷(嗜冷)细菌在这方面被忽视了。在这里,我们对北极冰川衍生的PHA生产商Acidovorax sp.A1169进行了调查。Biolog GEN III微孔板被用作筛选工具,以确定与PHA合成有关的最合适的碳底物。当以果糖或甘露醇作为碳源时,该菌株在15°C的温度下最有效地产生均聚物聚(3-羟基丁酸)(PHB)(2 g/L),在17.5°C时PHB生物合成显著降低。当碳源浓度超过10 g/L时,PHB产量没有显著增加,甚至下降,这表明该菌株本质上是寡营养的。该菌株还能够将3-羟基戊酸酯(3HV)引入聚合物结构中,已知这可以改善PHA热塑性性能。这是第一项通过真正的嗜冷菌深入了解PHA生物合成过程的研究,为极地细菌培养、PHA的生产以及嗜冷菌的基因工程方法提供了指导。
Genetic engineering of low-temperature polyhydroxyalkanoate production by Acidovorax sp. A1169, a psychrophile isolated from a subglacial outflow.
In recent years, extremophilic microorganisms have been employed as producers of the microbial bioplastics polyhydroxyalkanoates (PHA), which are of great biotechnological value. Nevertheless, cold-loving or psychrophilic (cryophilic) bacteria have been neglected in this regard. Here, we present an investigation of the Arctic glacier-derived PHA producer Acidovorax sp. A1169. Biolog GEN III Microplates were used as a screening tool to identify the most suitable carbon substrate concerning PHA synthesis. The strain produced homopolymer poly(3-hydroxybutyrate) (PHB) most efficiently (2 g/L) at a temperature of 15 °C when supplied with fructose or mannitol as carbon sources with a substantial decrease of PHB biosynthesis at 17.5 °C. The PHB yield did not increase considerably or even decreased when carbon source concentration exceeded 10 g/L hinting that the strain is oligotrophic in nature. The strain was also capable of introducing 3-hydroxyvalerate (3HV) into the polymer structure, which is known to improve PHA thermoplastic properties. This is the first investigation providing insight into a PHA biosynthesis process by means of a true psychrophile, offering guidelines on polar-region bacteria cultivation, production of PHA and also on the methodology for genetic engineering of psychrophiles.
期刊介绍:
Extremophiles features original research articles, reviews, and method papers on the biology, molecular biology, structure, function, and applications of microbial life at high or low temperature, pressure, acidity, alkalinity, salinity, or desiccation; or in the presence of organic solvents, heavy metals, normally toxic substances, or radiation.