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首页> 外文期刊>Journal of applied microbiology >Enhanced production of a lutein-rich acidic environment microalga.
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Enhanced production of a lutein-rich acidic environment microalga.

机译:增强了富含叶黄素的酸性环境微藻的生产。

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Aims: This study was aimed at increasing productivity of a novel lutein-rich acidic environment microalga, Coccomyxa onubensis, based on efficient inorganic carbon use. Methods and Results: Productivity was determined based on dry weight data; inorganic carbon concentration mechanisms were determined by means of carbonic anhydrase activity; carotenoids were extracted with methanol and measured by HPLC techniques. The existence of carbon concentration mechanisms and conditions that might lead to use them for addressing increased productivity of C. onubensis was studied. Best growth and carbon uptake capacity occurred at acidic pH, proving acid-tolerant behaviour of C. onubensis. Incubation in air followed by shift to high carbon conditions enhanced carbon-use efficiency in terms of growth rate and biomass productivity, based on the action of both carbonic anhydrase activities. Lutein accumulated in the microalga at high concentrations above 5-6 g kg-1 dry weight and did not depend on inorganic carbon conditions. Conclusions: Consequently, repeated cycles of air incubation and high CO2 incubation of C. onubensis might become a suitable tool to perform production processes of lutein-enriched biomass. Significant and Impact of the Study: This study intends to show that acidic environment microalgae can be produced at similar productivities of nonextreme microalgae, with the added advantage of their growth in highly selective culture medium. Particularly, it is applied to C. onubensis which accumulates lutein at commercially relevant concentrations.
机译:目的:本研究旨在基于有效的无机碳利用,提高新型富含叶黄素的酸性环境微藻(球藻)的生产力。方法和结果:根据干重数据确定生产率;通过碳酸酐酶的活性确定了无机碳的浓度机制。用甲醇提取类胡萝卜素并通过HPLC技术测量。研究了碳浓缩机制和条件的存在,这些机制和条件可能导致将其用于解决onubensis生产力的提高。最佳的生长和碳吸收能力发生在酸性pH下,证明了C. onubensis的耐酸行为。在空气中孵化,然后转向高碳条件,基于两种碳酸酐酶活性的作用,在生长速率和生物量生产率方面提高了碳利用效率。叶黄素以高于干重5-6 g kg -1 的高浓度积累在微藻中,并且不依赖于无机碳条件。结论:因此,反复进行的空气孵育和高浓度CO 2 孵育的循环过程可能是适于进行富含叶黄素生物质生产过程的工具。研究的意义和影响:该研究旨在表明,酸性环境微藻可以在非极端微藻的相似生产率下生产,并且具有在高度选择性培养基中生长的额外优势。特别地,它被应用于在商业上相关浓度下积累叶黄素的C. onubensis。

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