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Physiological Effects of Free Fatty Acid Production in Genetically Engineered Synechococcus elongatus PCC 7942

机译:在基因工程细长聚球藻pCC 7942游离脂肪酸生产的生理效应

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摘要

The direct conversion of carbon dioxide into biofuels by photosynthetic microorganisms is a promising alternative energy solution. In this study, a model cyanobacterium, Synechococcus elongatus PCC 7942, is engineered to produce free fatty acids (FFA), potential biodiesel precursors, via gene knockout of the FFA-recycling acyl-ACP synthetase and expression of a thioesterase for release of the FFA. Similar to previous efforts, the engineered strains produce and excrete FFA, but the yields are too low for large-scale production. While other efforts have applied additional metabolic engineering strategies in an attempt to boost FFA production, we focus on characterizing the engineered strains to identify the physiological effects that limit cell growth and FFA synthesis. The strains engineered for FFA-production show reduced photosynthetic yields, chlorophyll-a degradation, and changes in the cellular localization of the light-harvesting pigments, phycocyanin and allophycocyanin. Possible causes of these physiological effects are also identified. The addition of exogenous linolenic acid, a polyunsaturated FFA, to cultures of S. elongatus 7942 yielded a physiological response similar to that observed in the FFA-producing strains with only one notable difference. In addition, the lipid constituents of the cell and thylakoid membranes in the FFA-producing strains show changes in both the relative amounts of lipid components and the degree of saturation of the fatty acid side chains. These changes in lipid composition may affect membrane integrity and structure, the binding and diffusion of phycobilisomes, and the activity of membrane-bound enzymes including those involved in photosynthesis. Thus, the toxicity of unsaturated FFA and changes in membrane composition may be responsible for the physiological effects observed in FFA-producing S. elongatus 7942. These issues must be addressed to enable the high yields of FFA synthesis necessary for large-scale biofuel production.
机译:通过光合微生物将二氧化碳直接转化为生物燃料是一个有前途的替代能源解决方案。在本研究中,模型肌腱杆菌,SyneChocccus elongatus PCC 7942被设计成通过FFA再循环酰基-ACP合成酶的基因敲除,产生游离脂肪酸(FFA),潜在的生物柴油前体,并使硫酸酶的表达释放FFA 。与以往的努力类似,工程化菌株产生和排泄FFA,但由于大规模生产,产量太低。虽然其他努力应用了额外的代谢工程策略,以试图提高FFA生产,但我们专注于表征工程菌株,以确定限制细胞生长和FFA合成的生理效果。用于FFA-生产的菌株显示出降低光合产量,叶绿素 - 一种降解和光收集颜料,植物皂苷苷和联合蛋白的细胞定位的变化。还确定了这些生理效应的可能原因。添加外源性亚麻酸,一种多不饱和FFA,对S.Elongatus 7942的培养物产生了类似于在FFA产生菌株中观察到的生理反应,其仅具有一个值得注意的差异。此外,FFA产生菌株中细胞和囊体膜的脂质成分显示出脂质组分的相对量和脂肪酸侧链的饱和度的变化。这些脂质组合物的这些变化可能影响膜完整性和结构,植物硅酰胺的结合和扩散,以及膜结合酶的活性,包括参与光合作用的酶。因此,不饱和FFA的毒性和膜组合物的变化可能负责在生产FFA的S. Elongatus 7942中观察到的生理效果。必须解决这些问题,以实现大规模生物燃料生产所需的FFA合成的高产率。

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  • 年(卷),期 -1(109),9
  • 年度 -1
  • 页码 2190–2199
  • 总页数 20
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