合成生物学驱动制氢的展望:藻类光合作用在蓝藻中的应用

IF 5.2 3区 工程技术 Q2 ENERGY & FUELS
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 and Marcello Diano, 
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引用次数: 0

摘要

光生物制氢通过光合微生物利用太阳能,为清洁能源提供了一条可持续的途径。Melis及其同事在绿藻莱茵衣藻(Chlamydomonas reinhardtii)中开发的开创性硫剥夺技术成功地通过下调光系统II (PSII)活性来减少氧的释放,从而创造出加氢酶活性所必需的厌氧条件,从而实现了持续的氢气生产。受这种方法的启发,我们提出了欧洲联盟PhotoSynH2项目,该项目建立在这些生物学见解的基础上,并利用合成生物学在蓝藻中复制和增强了这一策略,特别是Synechocystis sp. PCC 6803。通过基因工程精确下调PSII,我们的目标是减少氧的进化,而不会产生与营养剥夺相关的意外影响,从而实现高效的氢气生产。此外,重新设计内源性呼吸以不断补充呼吸过程中消耗的糖原,使氧气的产生与消耗相匹配,维持有利于氢气产生的厌氧条件。这篇综述讨论了如何关注分子水平的过程和利用先进的遗传工具可以导致一种新的方法,有可能提供比传统方法更好的结果。通过重定向电子流和优化氧化还原途径,我们寻求提高蓝藻的产氢效率。我们的方法表明,通过合成生物学利用光合作用可以促进可扩展和可持续的氢气生产,解决对可再生能源日益增长的需求,并朝着碳中和的未来迈进。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Outlook on Synthetic Biology-Driven Hydrogen Production: Lessons from Algal Photosynthesis Applied to Cyanobacteria

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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来源期刊
Energy & Fuels
Energy & Fuels 工程技术-工程:化工
CiteScore
9.20
自引率
13.20%
发文量
1101
审稿时长
2.1 months
期刊介绍: Energy & Fuels publishes reports of research in the technical area defined by the intersection of the disciplines of chemistry and chemical engineering and the application domain of non-nuclear energy and fuels. This includes research directed at the formation of, exploration for, and production of fossil fuels and biomass; the properties and structure or molecular composition of both raw fuels and refined products; the chemistry involved in the processing and utilization of fuels; fuel cells and their applications; and the analytical and instrumental techniques used in investigations of the foregoing areas.
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