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Increased biomass and lipid production by continuous cultivation of Nannochloropsis salina transformant overexpressing a bHLH transcription factor

机译:通过连续培养过表达bHLH转录因子的拟南芥盐酸盐转化体提高生物量和脂质产量

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摘要

Microalgae are promising feedstocks for sustainable and eco‐friendly production of biomaterials, which can be improved by genetic engineering. It is also necessary to optimize the processes to produce biomaterials from engineered microalgae. We previously reported that genetic improvements of an industrial microalga Nannochloropsis salina by overexpressing a basic helix‐loop‐helix transcription factor (NsbHLH2). These transformants showed an improved growth and lipid production particularly during the early phase of culture under batch culture. However, they had faster uptake of nutrients, resulting in earlier starvation and reduced growth during the later stages. We attempted to optimize the growth and lipid production by growing one of the transformants in continuous culture with variable dilution rate and feed nitrogen concentration. Relative to wild‐type, NsbHLH2 transformant consumed more nitrate at a high dilution rate (0.5 day −1), and had greater biomass production. Subsequently, nitrogen limitation at continuous cultivation led to an increased fatty acid methyl ester production by 83.6 mg l −1 day −1. To elucidate genetic mechanisms, we identified the genes containing E‐boxes, known as binding sites for bHLH transcription factors. Among these, we selected 18 genes involved in the growth and lipid metabolism, and revealed their positive contribution to the phenotypes via quantitative real‐time polymerase chain reaction. These results provide proof‐of‐concept that NsbHLH2 can be used to produce biomass and lipids.
机译:微藻是可持续和生态友好的生物材料生产的有前途的原料,可以通过基因工程加以改进。还必须优化从工程微藻生产生物材料的工艺。我们先前曾报道过通过过度表达基本的螺旋-环-螺旋转录因子(NsbHLH2)来改善工业微藻Nannochloropsis salina的遗传。这些转化体显示出改善的生长和脂质产生,特别是在分批培养下的培养早期。但是,它们吸收养分的速度更快,从而导致较早的饥饿和后期阶段的生长减少。我们试图通过以可变的稀释率和饲料氮浓度在连续培养中生长一种转化体来优化生长和脂质生产。相对于野生型,NsbHLH2转化子以较高的稀释率(0.5?day -1 )消耗更多的硝酸盐,并具有更高的生物量产量。随后,连续培养中的氮限制导致脂肪酸甲酯的产量增加了83.6 mg l -1 -1 。为了阐明遗传机制,我们鉴定了含有E-box的基因,称为bHLH转录因子的结合位点。其中,我们选择了18个参与生长和脂质代谢的基因,并通过定量实时聚合酶链反应揭示了它们对表型的积极贡献。这些结果提供了概念证明,即NsbHLH2可用于生产生物量和脂质。

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