详细信息

Integrative network-level rewiring of photosynthetic metabolism boosts phycocyanin biosynthesis in cyanobacterial chassis  ( SCI-EXPANDED收录 EI收录)  

文献类型:期刊文献

英文题名:Integrative network-level rewiring of photosynthetic metabolism boosts phycocyanin biosynthesis in cyanobacterial chassis

作者:Wei, Kaixin[1,2];Rui, Die[1,2];Yuan, Yuchen[1,2];Chen, Jianfeng[2];Cao, Jiajun[1,2];Sun, Liyun[1,2];Fan, Jianhua[1,2,3]

机构:[1]East China Univ Sci & Technol, State Key Lab Bioreactor Engn, Shanghai 200237, Peoples R China;[2]East China Univ Sci & Technol, Dept Appl Biol, Shanghai 200237, Peoples R China;[3]Shihezi Univ, Sch Chem & Chem Engn, Shihezi 832003, Peoples R China

年份:2026

卷号:126

期号:3

外文期刊名:PLANT JOURNAL

收录:;EI(收录号:20261920670757);WOS:【SCI-EXPANDED(收录号:WOS:001756907100001)】;

基金:This work was sponsored by National Key Research and Development Project of China (2025YFA0921100), Shanghai Science and Technology Innovation Action Plan (24HC2820800), Natural Science Foundation of Shanghai (23ZR1415100 and 24ZR1490800), Tianchi Talent Project (BT-2025-TCYC-0060), and Shanghai Collaborative Innovation Center for Biomanufacturing Technology.

语种:英文

外文关键词:Synechocystis sp. PCC 6803; phycocyanin; phycocyanobilin; systems metabolic engineering; photosynthetic cell factories

摘要:Phycocyanin (PC) is a key light-harvesting pigment protein in the phycobilisome of cyanobacteria and rhodophyta, and is currently the only natural blue pigment successfully commercialized. However, its application is limited by complex biosynthetic and degradative regulation, which constrain efficient CO2-based green production. Here, using Synechocystis sp. PCC 6803 as a photosynthetic chassis, the phycocyanobilin (PCB) precursor network was then systematically reconstructed to overcome key biosynthetic bottlenecks. For the first time in cyanobacteria, the C4 synthesis pathway of 5-aminolevulinic acid (5-ALA) was introduced together with enhancement of the native 5-ALA supply route. Combined with ferrochelatase (Ppfc)-mediated redirection of metabolic flux, this strategy expanded and stabilized the tetrapyrrole metabolic pool, resulting in a synergistic enhancement of PCB biosynthesis. In parallel, modulation of apophycocyanin expression was incorporated to better coordinate chromophore supply with phycobiliprotein assembly. In addition, genetic suppression of phycobilisome degradation under high light conditions effectively prolonged the functional half-life of PC. The multimodule engineered strain achieved a PC content of 124.62 mg g-1 under gas-bubbling cultivation, corresponding to a 66.92% increase over the wild-type, accompanied by improved photosystem II (PSII) photochemical efficiency, enhanced electron transport, and elevated photoprotective pigment levels. These results demonstrate that efficient PC biosynthesis emerges from coordinated, system-level engineering of the photosynthetic network rather than amplification of a single metabolic node. This work establishes a scalable paradigm for CO2-driven green manufacturing of pigment proteins and the construction of robust photosynthetic cell factories.

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