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一种双管齐下的诱变和适应性进化策略,以提高眼点拟微绿球藻的温度耐受性和生产力。

A two-prong mutagenesis and adaptive evolution strategy to enhance the temperature tolerance and productivity of Nannochloropsis oculata.

作者信息

Arora Neha, Lo Enlin, Philippidis George P

机构信息

Department of Cell Biology, Microbiology and Molecular Biology, University of South Florida, Tampa, FL, USA.

Department of Chemical, Biological and Materials Engineering, University of South Florida, Tampa, FL, USA.

出版信息

Bioresour Technol. 2022 Nov;364:128101. doi: 10.1016/j.biortech.2022.128101. Epub 2022 Oct 12.

Abstract

Incorporation of microalgae in biorefineries intended to help society reach carbon neutrality is hindered by algal growth inhibition at high temperatures, necessitating the use of costly and carbon-intensive cooling systems. In the present study, a two-prong strategy of random mutagenesis and adaptive laboratory evolution to generate robust thermotolerant strains of Nannochloropsis oculata, was used. The best mutants demonstrated increased productivity at 35 °C, which was 10 °C higher than the optimal temperature of the wild type. In a 2-L photobioreactor at 35 °C, biomass and lipid productivity were 1.43-fold and 2.24-fold higher, respectively, than wild type at 25 °C. Higher pigment and carbohydrate content contributed to the mutants' rapid growth and enhanced photosynthetic efficiency. Metabolomics and lipidomics showed rewiring of the central carbon metabolism and membrane lipid synthesis in thermotolerant strains to ensure cellular homeostasis without compromising productivity. Tagatose and phosphatidylethanolamine upregulation were identified as future genetic targets for further enhancing lipid production.

摘要

微藻纳入旨在帮助社会实现碳中和的生物精炼厂,受到高温下藻类生长抑制的阻碍,这使得必须使用成本高昂且碳密集型的冷却系统。在本研究中,采用了随机诱变和适应性实验室进化的双管齐下策略,以产生强壮的耐温性眼点拟微绿球藻菌株。最佳突变体在35°C时表现出更高的生产力,比野生型的最适温度高10°C。在35°C的2升光生物反应器中,生物量和脂质生产力分别比25°C时的野生型高1.43倍和2.24倍。较高的色素和碳水化合物含量有助于突变体的快速生长并提高光合效率。代谢组学和脂质组学表明,耐温菌株的中心碳代谢和膜脂合成发生了重新布线,以确保细胞内稳态而不影响生产力。已确定塔格糖和磷脂酰乙醇胺的上调为进一步提高脂质产量的未来遗传靶点。

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