14-ERASynBio Engineering the chloroplast of microalgae as a chassis for the direct production of solar fuels and chemicals
14-ERASynBio Engineering the chloroplast of microalgae as a chassis for the direct production of solar fuels and chemicals
批准号:
BB/M005720/1
负责人:
Fraser Armstrong
金额:
$42.51万
依托单位:
依托单位国家:
英国
项目类别:
Research Grant
财政年份:
2014
资助国家:
英国
项目状态:
已结题
起止时间:
2014 至 --
中文摘要
21世纪最大的挑战之一是可再生资源的能源和化学品的可持续供应。在太阳能的驱动下,叶绿体在自然界中发挥着最有效的最小电池工厂的作用,通过氧化水来产生化学能,但它们自然地调整为固定碳,以建立细胞组件。我们的长期目标是在“绿色酵母”莱茵衣藻中设计一种合成叶绿体,作为可持续生产生物燃料和化学品的底盘。为了实现这一雄心勃勃的目标,我们将开发各种工具,这些工具对于从自下而上的方法构建我们的底盘是必不可少的。首先,我们将开发定义明确的微藻生物块,以便在叶绿体中高效地插入蛋白质和新陈代谢回路。其次,我们将通过重定向光合作用电子线路来产生合适的衣藻菌株。第三,我们将遵循达尔文进化论的原理设计光合作用链中的关键角色,以控制能量传递。工程生物催化剂最先进的蛋白质膜电化学将指导设计过程。作为一项原则证明,我们将使用优化菌株的叶绿体将BioBricks与经过改造的光合链成员组装在一起,从光和水中产生生物氢和烷烃作为副产品。该项目将被视为原则上的证明,并将加快发展新的生物技术概念,建立“太阳能电池叶绿体工厂”。按照合成生物学原理设计和建造叶绿体底盘将允许可持续地生产生物燃料和有价值的化学品,为碳中性生物经济奠定基础,这种生物经济可以为我们的社会提供日益增长的能源需求,同时减轻气候变化的破坏性影响。
英文摘要
One of the greatest challenges of the 21st century is the sustainable supply of energy and chemicals from renewable resources. Driven by solar energy, chloroplasts function in nature as the most efficient minimal cell factories for generating chemical energy through the oxidation of water, but they are naturally tuned towards the fixation of carbon for building-up cellular components. Our long-term goal is to design a synthetic chloroplast in the "green yeast" Chlamydomonas reinhardtii that can be used as a chassis for the sustainable production of biofuels and chemicals. To achieve such an ambitious goal, we will develop various tools that will be indispensable to construct our chassis from a bottom-up approach. First, we will develop well-defined microalgal BioBricks to allow an efficient plug-in of protein and metabolic circuits in the chloroplast. Secondly, we will generate suitable Chlamydomonas strains by re-directing the photosynthetic electron circuits. Thirdly, we will engineer key players of the photosynthetic chain following the principles of Darwinian evolution for controlling energy delivery. State-of-the-art protein film electrochemistry of the engineered biocatalysts will guide the design processes. As a proof-of-principle, we will then use the chloroplast of optimised strains for assembling the BioBricks with the engineered photosynthetic chain players to produce bio-hydrogen and alkanes as by-products from light and water. This project is to be considered as a proof of principle and will step-up the development of novel biotechnology concepts that will establish "solar-cell chloroplast factories". The design and construction of a chloroplast chassis following synthetic biology principles will allow the sustainable production of biofuels and valuable chemicals, paving down the grounds for a carbon-neutral bio-economy that can supply our society with an increasing energy demand, while mitigating the damaging effects of climate change.
期刊论文(10)
专著(0)
科研奖励(0)
会议论文
Electrochemical Investigations of the Mechanism of Assembly of the Active-Site H-Cluster of [FeFe]-Hydrogenases.
[FeFe]-氢化酶活性位点 H 簇组装机制的电化学研究。
DOI:
10.1021/jacs.6b09366
发表时间:
2016
期刊:
Journal of the American Chemical Society
影响因子:
15
作者:
[Megarity CF]
通讯作者:
Megarity CF
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依托单位:
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依托单位:
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资助金额:$66.79万
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财政年份:2009
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依托单位:
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依托单位:
海外基金