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用于微藻和蓝细菌高光耐受性的底盘工程。

Chassis engineering for high light tolerance in microalgae and cyanobacteria.

作者信息

Dou Biyun, Li Yang, Wang Fangzhong, Chen Lei, Zhang Weiwen

机构信息

Laboratory of Synthetic Microbiology, School of Chemical Engineering and Technology, Tianjin University, Tianjin, P.R. China.

Key Laboratory of Systems Bioengineering (Ministry of Education), Tianjin University, Tianjin, P.R. China.

出版信息

Crit Rev Biotechnol. 2025 Mar;45(2):257-275. doi: 10.1080/07388551.2024.2357368. Epub 2024 Jul 10.

Abstract

Oxygenic photosynthesis in microalgae and cyanobacteria is considered an important chassis to accelerate energy transition and mitigate global warming. Currently, cultivation systems for photosynthetic microbes for large-scale applications encountered excessive light exposure stress. High light stress can: affect photosynthetic efficiency, reduce productivity, limit cell growth, and even cause cell death. Deciphering photoprotection mechanisms and constructing high-light tolerant chassis have been recent research focuses. In this review, we first briefly introduce the self-protection mechanisms of common microalgae and cyanobacteria in response to high light stress. These mechanisms mainly include: avoiding excess light absorption, dissipating excess excitation energy, quenching excessive high-energy electrons, ROS detoxification, and PSII repair. We focus on the species-specific differences in these mechanisms as well as recent advancements. Then, we review engineering strategies for creating high-light tolerant chassis, such as: reducing the size of the light-harvesting antenna, optimizing non-photochemical quenching, optimizing photosynthetic electron transport, and enhancing PSII repair. Finally, we propose a comprehensive exploration of mechanisms: underlying identified high light tolerant chassis, identification of new genes pertinent to high light tolerance using innovative methodologies, harnessing CRISPR systems and artificial intelligence for chassis engineering modification, and introducing plant photoprotection mechanisms as future research directions.

摘要

微藻和蓝细菌中的氧光合作用被认为是加速能源转型和缓解全球变暖的重要底盘。目前,用于大规模应用的光合微生物培养系统面临过度光照胁迫。高光胁迫会:影响光合效率、降低生产力、限制细胞生长,甚至导致细胞死亡。解读光保护机制并构建耐高光底盘一直是近期的研究重点。在本综述中,我们首先简要介绍常见微藻和蓝细菌响应高光胁迫的自我保护机制。这些机制主要包括:避免过多的光吸收、耗散过多的激发能、淬灭过量的高能电子、ROS解毒以及PSII修复。我们重点关注这些机制中的物种特异性差异以及最新进展。然后,我们综述了创建耐高光底盘的工程策略,例如:减小捕光天线的尺寸、优化非光化学淬灭、优化光合电子传递以及增强PSII修复。最后,我们提出对耐高光底盘潜在机制进行全面探索、使用创新方法鉴定与耐高光相关的新基因、利用CRISPR系统和人工智能进行底盘工程改造以及引入植物光保护机制作为未来的研究方向。

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