亚细亚蓝藻对光能梯度的生物反应曲线。

Luigi Pistelli, Angelo Del Mondo, Arianna Smerilli, Federico Corato, Clementina Sansone, Christophe Brunet
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摘要

背景:微藻具有快速生长能力、物种多样性和细胞内次生生物活性代谢产物,是满足人类需求的合适且可持续的生态资源。这些高附加值化合物对人类健康或动物饲料具有重大意义。这些有价值的化合物家族的细胞内含量与微藻的生物状态密切相关,并对光照等环境线索做出反应。我们的研究开发了一种生物技术反应曲线策略,以探索海洋蓝藻亚螺旋藻在光能梯度上的生物活性代谢物合成。我们研究中生成的相对光能指数综合了红色、绿色和蓝色光子通量密度及其相对光子能量。生物技术反应曲线结合了大分子成分(总蛋白质、脂质和碳水化合物含量)、总固醇、多酚和类黄酮、类胡萝卜素、酚类化合物、维生素(A、B1、B2、B6、B9、B12、C、D2、D3、E、H 和 K1)、藻胶蛋白的生化分析,以及生物质的抗氧化活性、生长能力和光合作用:结果:研究结果表明,光能极大地调节了亚藻类螺旋藻的生化状态,揭示了光能指数与解释光诱导生物变异的相关性。在高光能条件下,光合速率急剧下降,同时类胡萝卜素、总多酚和抗氧化能力等抗氧化网络反应增加。相反,与高光能相比,低光能有利于提高细胞内脂类和维生素(B2、B6、B9、D3、K1、A、C、H 和 B12)的含量:讨论了生物技术反应曲线的结果与其功能和生理相关性,以及其潜在生物技术应用的本质。这项研究强调,光能是解释微藻对光气候变异的生物反应的相关工具,因此也是设计微藻代谢操作的相关工具。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

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Biotechnological response curve of the cyanobacterium Spirulina subsalsa to light energy gradient.

Background: Microalgae represent a suitable and eco-sustainable resource for human needs thanks to their fast growth ability, together with the great diversity in species and intracellular secondary bioactive metabolites. These high-added-value compounds are of great interest for human health or animal feed. The intracellular content of these valuable compound families is tightly associated with the microalgal biological state and responds to environmental cues, e.g., light. Our study develops a Biotechnological response curve strategy exploring the bioactive metabolites synthesis in the marine cyanobacterium Spirulina subsalsa over a light energy gradient. The Relative Light energy index generated in our study integrates the red, green and blue photon flux density with their relative photon energy. The Biotechnological response curve combined biochemical analysis of the macromolecular composition (total protein, lipid, and carbohydrate content), total sterols, polyphenols and flavonoids, carotenoids, phenolic compounds, vitamins (A, B1, B2, B6, B9, B12, C, D2, D3, E, H, and K1), phycobiliproteins, together with the antioxidant activity of the biomass as well as the growth ability and photosynthesis.

Results: Results demonstrated that light energy significantly modulate the biochemical status of the microalga Spirulina subsalsa revealing the relevance of the light energy index to explain the light-induced biological variability. The sharp decrease of the photosynthetic rate at high light energy was accompanied with an increase of the antioxidant network response, such as carotenoids, total polyphenols, and the antioxidant capacity. Conversely, low light energy favorized the intracellular content of lipids and vitamins (B2, B6, B9, D3, K1, A, C, H, and B12) compared to high light energy.

Conclusions: Results of the Biotechnological response curves were discussed in their functional and physiological relevance as well as for the essence of their potential biotechnological applications. This study emphasized the light energy as a relevant tool to explain the biological responses of microalgae towards light climate variability, and, therefore, to design metabolic manipulation of microalgae.

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