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高浓度乙酸条件下富亚油酸油脂微藻杜氏盐藻异养培养同步生产藻细胞生物质和油脂。

Simultaneous production of algal biomass and lipid by heterotrophic cultivation of linoleic acid-rich oleaginous microalga Chlorella sorokiniana using high acetate dosage.

机构信息

Biomass Energy Technology Research Centre, Key Laboratory of Development and Application of Rural Renewable Energy (Ministry of Agriculture and Rural Affairs), Biogas Institute of Ministry of Agriculture and Rural Affairs, Chengdu 610041, PR China.

Biomass Energy Technology Research Centre, Key Laboratory of Development and Application of Rural Renewable Energy (Ministry of Agriculture and Rural Affairs), Biogas Institute of Ministry of Agriculture and Rural Affairs, Chengdu 610041, PR China.

出版信息

Bioresour Technol. 2024 May;399:130566. doi: 10.1016/j.biortech.2024.130566. Epub 2024 Mar 10.

Abstract

The low-cost carbon source, acetate, was utilized to feed a linoleic acid-rich Chlorella sorokiniana for microalgal biomass and lipid accumulation. Remarkably high tolerance capability to high acetate dosage up to 30 g/L was observed, with heterotrophy being the preferred trophic mode for algal growth and lipogenesis when supplemented 20 g/L acetate. Transcriptome analysis revealed a marked activation of pathways involved in acetate bioconversion and lipogenesis upon exposure to high-level of acetate. However, the enhancement of photorespiration inhibited photosynthesis, which ultimately led to a decrease in biomass and lipid under mixotrophy. Heterotrophic acetate-feeding generated more superior amino acid profiling of algal biomass and a predominant linoleic acid content (50 %). Heterotrophic repeat fed-batch strategy in 5 L fermenter significantly increased the growth performance and lipid titer, with the highest levels achieved being 23.4 g/L and 7.0 g/L, respectively. This work provides a viable approach for bio-products production through acetate-based heterotrophic algal cultivation.

摘要

利用低成本的碳源乙酸盐来喂养富含亚油酸的绿球藻,以实现微藻生物质和脂质的积累。令人惊讶的是,该藻种对高达 30 g/L 的高乙酸盐剂量表现出了极高的耐受性,当补充 20 g/L 乙酸盐时,异养是藻类生长和脂生成的首选营养模式。转录组分析表明,在暴露于高水平乙酸盐时,与乙酸盐生物转化和脂生成相关的途径明显被激活。然而,增强的光呼吸抑制了光合作用,这最终导致混养条件下生物量和脂质减少。异养乙酸盐喂养产生了更优异的藻类生物质的氨基酸谱和占主导地位的亚油酸含量(50%)。在 5 L 发酵罐中采用异养重复分批进料策略显著提高了生长性能和脂质浓度,分别达到了 23.4 g/L 和 7.0 g/L。这项工作为通过基于乙酸盐的异养藻类培养生产生物制品提供了一种可行的方法。

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