Department of Plant Biology and Biotechnology, Faculty of Sciences, University of Copenhagen, Thorvaldsensvej 40, Frederiksberg 1871, Denmark.
J Biotechnol. 2012 Nov 30;162(1):134-47. doi: 10.1016/j.jbiotec.2012.05.006. Epub 2012 Jun 5.
Development of sustainable energy is a pivotal step towards solutions for today's global challenges, including mitigating the progression of climate change and reducing dependence on fossil fuels. Biofuels derived from agricultural crops have already been commercialized. However the impacts on environmental sustainability and food supply have raised ethical questions about the current practices. Cyanobacteria have attracted interest as an alternative means for sustainable energy productions. Being aquatic photoautotrophs they can be cultivated in non-arable lands and do not compete for land for food production. Their rich genetic resources offer means to engineer metabolic pathways for synthesis of valuable bio-based products. Currently the major obstacle in industrial-scale exploitation of cyanobacteria as the economically sustainable production hosts is low yields. Much effort has been made to improve the carbon fixation and manipulating the carbon allocation in cyanobacteria and their evolutionary photosynthetic relatives, algae and plants. This review aims at providing an overview of the recent progress in the bioengineering of carbon fixation and allocation in cyanobacteria; wherever relevant, the progress made in plants and algae is also discussed as an inspiration for future application in cyanobacteria.
可持续能源的发展是解决当今全球挑战的关键步骤,包括减缓气候变化的进程和减少对化石燃料的依赖。从农作物中提取的生物燃料已经商业化。然而,它们对环境可持续性和粮食供应的影响引发了人们对当前实践的伦理质疑。蓝细菌作为一种可持续能源生产的替代方法引起了人们的兴趣。作为水生光合自养生物,它们可以在非耕地中培养,并且不会与粮食生产争夺土地。它们丰富的遗传资源为合成有价值的基于生物的产品的代谢途径工程提供了手段。目前,将蓝细菌作为经济上可持续的生产宿主进行工业规模开发的主要障碍是产量低。人们已经做出了很大的努力来提高蓝细菌的固碳能力,并操纵其碳分配,以及它们的进化光合亲缘生物,藻类和植物。这篇综述旨在概述蓝细菌中固碳和碳分配的生物工程的最新进展;在相关的地方,还讨论了在植物和藻类中取得的进展,以作为未来在蓝细菌中应用的灵感。