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首页> 外文期刊>Biotechnology for Biofuels >Metabolic engineering of phosphite metabolism in Synechococcus elongatus PCC 7942 as an effective measure to control biological contaminants in outdoor raceway ponds
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Metabolic engineering of phosphite metabolism in Synechococcus elongatus PCC 7942 as an effective measure to control biological contaminants in outdoor raceway ponds

机译:SyneChocccus eLongatus PCC 7942中亚磷酸盐代谢的代谢工程作为控制室外滚道池塘生物污染物的有效措施

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摘要

The use of cyanobacteria and microalgae as cell factories to produce biofuels and added-value bioproducts has received great attention during the last two decades. Important investments have been made by public and private sectors to develop this field. However, it has been a challenge to develop a viable and cost-effective platform for cultivation of cyanobacteria and microalgae under outdoor conditions. Dealing with contamination caused by bacteria, weedy algae/cyanobacteria and other organisms is a major constraint to establish effective cultivation processes. Here, we describe the implementation in the cyanobacterium Synechococcus elongatus PCC 7942 of a phosphorus selective nutrition system to control biological contamination during cultivation. The system is based on metabolic engineering of S. elongatus to metabolize phosphite, a phosphorus source not normally metabolized by most organisms, by expressing a bacterial phosphite oxidoreductase (PtxD). Engineered S. elongatus strains expressing PtxD grow at a similar rate on media supplemented with phosphite as the non-transformed control supplemented with phosphate. We show that when grown in media containing phosphite as the sole phosphorus source in glass flasks, the engineered strain was able to grow and outcompete biological contaminants even when the system was intentionally inoculated with natural competitors isolated from an irrigation canal. The PtxD/phosphite system was successfully used for outdoor cultivation of engineered S. elongatus in 100-L cylindrical reactors and 1000-L raceway ponds, under non-axenic conditions and without the need of sterilizing containers and media. Finally, we also show that the PtxD/phosphite system can be used as selectable marker for S. elongatus PCC 7942 transgenic strains selection, eliminating the need of antibiotic resistance genes. Our results suggest that the PtxD/phosphite system is a stable and sufficiently robust strategy to control biological contaminants without the need of sterilization or other complex aseptic procedures. Our data show that the PtxD/phosphite system can be used as selectable marker and allows production of the cyanobacterium S. elongatus PCC 7942 in non-axenic outdoor reactors at lower cost, which in principle should be applicable to other cyanobacteria and microalgae engineered to metabolize phosphite.
机译:在过去的二十年中,使用蓝色细菌和微藻作为细胞工厂作为细胞工厂获得了极大的关注。公共和私营部门的重要投资是制定这一领域的。然而,在室外条件下开发一种可行且具有成本效益的平衡平台的挑战,这是一个挑战,培养蓝细菌和微藻。处理细菌引起的污染物,杂草藻类/蓝藻和其他生物是建立有效培养过程的主要约束。在这里,我们描述了磷选择性营养系统的蓝藻PCC 7942中的Cyanobacterium SyneChococcus Elongatum PCC 7942,以控制培养过程中的生物污染。该系统基于S.Elongatus的代谢工程来代谢亚磷酸盐,通过表达细菌亚磷酸盐氧化还原酶(PTXD),该磷矿通常不会被大多数生物代谢。表达PTXD的工程师S. Elongatus菌株以相似的速率在补充有亚磷酸盐作为补充磷酸盐的未转化对照的培养基类似的速率。我们表明,当在含有磷矿的培养基中生长作为玻璃烧瓶中的唯一磷源时,即使当系统被故意接种从灌溉运河中分离的天然竞争者有意地接种系统,工程菌株也能够生长和超越生物污染物。 PTXD /亚磷酸盐系统已成功用于100-L圆柱形反应器和1000-L滚道池的工程化S. Elongatus的户外培养,在非轴静脉条件下,无需灭菌容器和培养基。最后,我们还表明,PTXD /亚磷酸酯系统可用作S.Elongatus PCC 7942转基因菌株选择的可选标记,消除了抗生素抗性基因的需要。我们的研究结果表明,PTXD /亚磷酸盐系统是一种稳定且足够强大的策略来控制生物污染物而不需要灭菌或其他复杂的无菌程序。我们的数据表明,PTXD /亚磷酸盐系统可用作可选标记,并以较低的成本在非轴静电户外反应器中生产Cyanobacterium S. Elongatus PCC 7942,原则上应适用于其他Cyanobacteria和Microalgae以代谢为代谢亚磷酸酯。
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