Outlook on Synthetic Biology-Driven Hydrogen Production: Lessons from Algal Photosynthesis Applied to Cyanobacteria

蓝藻 光合作用 合成生物学 制氢 生产(经济) 环境科学 生化工程 化学 生态学 生物 植物 计算生物学 工程类 细菌 古生物学 有机化学 宏观经济学 经济
作者
Alfonso Jaramillo,Alessandro Satta,Filipe Pinto,Cecilia Faraloni,Graziella Chini Zittelli,Ana Margarita Silva Benavides,Giuseppe Torzillo,Conrad Schumann,Jorge Fernández Méndez,Gustav Berggren,Peter Lindblad,Maddalena Parente,Serena Esposito,Marcello Diano
出处
期刊:Energy & Fuels [American Chemical Society]
卷期号:39 (11): 4987-5006 被引量:13
标识
DOI:10.1021/acs.energyfuels.4c04772
摘要

Photobiological hydrogen production offers a sustainable route to clean energy by harnessing solar energy through photosynthetic microorganisms. The pioneering sulfur-deprivation technique developed by Melis and colleagues in the green alga Chlamydomonas reinhardtii successfully enabled sustained hydrogen production by downregulating photosystem II (PSII) activity to reduce oxygen evolution, creating anaerobic conditions necessary for hydrogenase activity. Inspired by this approach, we present the project of the European consortium PhotoSynH2, which builds on these biological insights and employs synthetic biology to replicate and enhance this strategy in cyanobacteria, specifically, Synechocystis sp. PCC 6803. By genetically engineering precise downregulation of PSII, we aim to reduce oxygen evolution without the unintended effects associated with nutrient deprivation, enabling efficient hydrogen production. Additionally, re-engineering endogenous respiration to continuously replenish glycogen consumed during respiration allows matching oxygen production with consumption, maintaining anaerobic conditions conducive to hydrogen production. This review discusses how focusing on molecular-level processes and leveraging advanced genetic tools can lead to a new methodology that potentially offers improved results over traditional approaches. By redirecting electron flow and optimizing redox pathways, we seek to enhance hydrogen production efficiency in cyanobacteria. Our approach demonstrates how harnessing photosynthesis through synthetic biology can contribute to scalable and sustainable hydrogen production, addressing the growing demand for renewable energy and advancing toward a carbon-neutral future.
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