Collaborative Research: Nitroplast: A Light-Driven, Synthetic Nitrogen-Fixing Organelle
Collaborative Research: Nitroplast: A Light-Driven, Synthetic Nitrogen-Fixing Organelle
批准号:
1331195
负责人:
Christopher Voigt
金额:
$52.1万
依托单位国家:
美国
项目类别:
Continuing Grant
财政年份:
2013
资助国家:
美国
项目状态:
已结题
起止时间:
2013-09-01 至 2016-08-31
中文摘要
为了获得最佳产量,农作物需要以氨或硝酸盐肥料的形式固定氮,但这需要大量化石燃料投入,还可能导致径流污染含水层和河口。与一些具有固定大气氮的能力的微生物不同,植物没有这种能力。本研究的最终目标是设计一种新的合成固氮细胞器,其长期目标是在非豆科作物植物中实现有效的固氮。然而,在实现这一目标之前存在重大障碍,包括高代谢能量成本和克服该过程的氧敏感性。在这个项目中,合成生物学的工具将被用来工程固氮成一个简单的模型系统。蓝细菌是单细胞生物,在进化上与植物质体有关。在蓝细菌中,工程目标应该是易于处理的,构成了一个技术的垫脚石,将导致固氮工程到植物质体。为了使这个项目取得成功,需要达到几个目标。首先,需要确定固氮所需的理想候选基因簇。其次,利用这些信息,可以精确控制的可调固氮基因模块将被构建并转移到蓝藻中。最后,为了解决该过程的高代谢能量成本,将采用一种新的策略,通过该策略将额外的光吸收能力工程化到蓝藻中。这些目标是复杂和多方面的,需要参与实验室之间的密切协调。这项研究的成功完成将导致一个工程化的合成,可控的固氮基因簇与光能,这最终可以转移到作物的质体的形式“固氮体”。更广泛的影响二十一世纪的主要挑战之一是确保粮食安全的世界人民。这一挑战的核心是非豆科作物的氮同化问题。本项目的目标是在蓝藻中构建一种新型的合成的、可控的固氮模块。为实现这一目标,已从生物物理学、生物化学、分子遗传学和合成生物学领域召集了一个科学专家小组。这项研究的成果预计将有利于学术界的基础研究人员以及应用科学家,通过开发新的工具,蓝藻,并通过产品,如引入固氮植物。该项目是美国和英国之间进行方法学交流的一个独特机会。科学家和开发工具,将免费提供给合成生物学和蓝藻研究社区。如果成功,这项工作也将有利于传统的农业研究。培养下一代科学家是这个跨学科团队的主要目标。该研究将通过在本科,研究生和博士后水平的强化研究培训,并通过美国和英国合作者,出版物和科学会议上的演示文稿之间的国际交流,使高等教育受益。这项工作产生的新技术应该提供工具和知识,以提高固氮能力,这可能会对农业产生重大影响。
英文摘要
INTELLECTUAL MERIT For optimal yields, crop plants require fixed nitrogen in the form of ammonia or nitrate fertilizers, but this requires large fossil fuel inputs and can also result in runoff which contaminates aquifers and estuaries. Unlike some microbes that have the capacity to fix atmospheric nitrogen, plants do not have this ability. The ultimate goal of this research is to engineer a novel synthetic nitrogen fixing organelle, with the long-term aim of conferring efficient nitrogen fixation in non-leguminous crop plants. However, there are significant hurdles before realizing this goal, which include high metabolic energy costs and overcoming oxygen sensitivity of the process. In this project, tools of synthetic biology will be used to engineer nitrogen fixation into a simple model system. Cyanobacteria are single-celled organisms that are evolutionarily related to plant plastids. In cyanobacteria, the engineering goals should be tractable, constituting a technological stepping stone that would lead to the engineering of nitrogen fixation into plant plastids. For this project to be successful, several objectives need to be met. First, ideal candidate gene clusters required for nitrogen fixation need to be identified. Second, using this information, tunable nitrogen-fixing gene modules, which can be precisely controlled, will be built and moved into cyanobacteria. Finally, to deal with the high metabolic energy costs of the process, a novel strategy will be employed by which extra light absorption capacity is engineered into cyanobacteria. These objectives are complex and multi-faceted, requiring tight coordination between participating laboratories. Successful completion of this research will lead to an engineered synthetic, controllable nitrogen fixing gene cluster linked energetically to light energy, which can ultimately be transferred into plastids of crop plants in the form of a 'nitroplast'.BROADER IMPACTSOne of the major challenges of the twenty-first century is to ensure food security for the world's people. At the core of this challenge is the problem of nitrogen assimilation by non-leguminous crop plants. The goal of this project is to build a novel synthetic, controllable nitrogen-fixing module into a cyanobacterium. To achieve this goal, a team of scientific experts have been assembled from the fields of biophysics, biochemistry, molecular genetics and synthetic biology. The outcome of this research is expected to benefit basic researchers in academia as well as applied scientists through the development of new tools for cyanobacteria, and through products such as the introduction of nitrogen fixation into plants. This project is a unique opportunity for methodology exchange between U.S and U.K. scientists and for developing tools that will be freely available to the synthetic biology and cyanobacterial research communities. If successful, the work will also benefit traditional agricultural research. The preparation of the next generation of scientists is a major goal of this interdisciplinary team. The research will benefit higher education through intensive research training at the undergraduate, graduate and postdoctoral levels and through international exchange between US and UK collaborators, publications and presentations at scientific meetings. The new technologies derived from this work should provide tools and knowledge to boost nitrogen fixation capacity that could strongly impact agriculture.
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SemiSynBio: Collaborative Research: Very Large-Scale Genetic Circuit Design Automation
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批准号:1807575
-
项目类别:Continuing Grant
-
资助金额:$100.0万
-
财政年份:2018
-
负责人:Christopher Voigt
-
依托单位:
Synthetic Biology: Engineering, Evolution and Design (SEED) Conference 2014; Los Angeles, Manhatten Beach Marriott Conference Center, CA, July 14-17, 2014
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批准号:1446280
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项目类别:Standard Grant
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资助金额:$2.5万
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财政年份:2014
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负责人:Christopher Voigt
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依托单位:
Conference: Gordon Conference on Synthetic Biology: (Re-constructing and Re-programming Life at Mount Snow Resort, Vermont
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批准号:1341255
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项目类别:Standard Grant
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资助金额:$1.57万
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财政年份:2013
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负责人:Christopher Voigt
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依托单位:
Collaborative Research: Cyberplasm - An autonomous micro-robot constructed using synthetic biology
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批准号:1224898
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项目类别:Standard Grant
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资助金额:$23.41万
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财政年份:2011
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负责人:Christopher Voigt
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依托单位:
Collaborative Research: Cyberplasm - An autonomous micro-robot constructed using synthetic biology
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批准号:0943302
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项目类别:Standard Grant
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资助金额:$41.97万
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财政年份:2009
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负责人:Christopher Voigt
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依托单位:
CAREER: Multi-input Multi-output Cellular Control: Bacterial Type III Secretion as a Model System
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批准号:0547637
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项目类别:Continuing Grant
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资助金额:$40.0万
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财政年份:2006
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负责人:Christopher Voigt
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依托单位:
国内基金
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