CAREER: Engineering crop plants to metabolize products of CO2 electrolysis to enable food production with artificial photosynthesis
CAREER: Engineering crop plants to metabolize products of CO2 electrolysis to enable food production with artificial photosynthesis
批准号:
2239243
负责人:
Robert Jinkerson
金额:
$58.25万
依托单位国家:
美国
项目类别:
Continuing Grant
财政年份:
2023
资助国家:
美国
项目状态:
未结题
起止时间:
2023-07-01 至 2028-06-30
中文摘要
植物捕捉阳光并进行光合作用来驱动植物生长。生物光合作用是非常低效的。因此,粮食种植需要大面积。人工光合作用比自然光合作用更节能,但从未用于粮食生产。该项目旨在开发植物和人工光合作用系统(APS)之间的接口。一旦该接口被开发出来,植物将被设计成利用APS增强更有效地生长。这项研究将与教育和外联活动结合起来。这些措施包括让本科生参与二氧化碳电解实验室,创建并举办“创业设计竞赛”,鼓励学生将研究成果转化为创业追求。人工光合作用具有比生物光合作用更节能的潜力,但尚未应用于粮食生产。研究了一种用于节能食品生产的无机-生物复合人工光合系统。在两个步骤的过程中,二氧化碳电解将二氧化碳转化为醋酸盐,醋酸盐为在黑暗中生长的食物生产生物(藻类、酵母和蘑菇)提供碳和能量来源。将该系统与商业光伏发电相结合,为藻类的生长提供了约4%的太阳能-生物质能转换效率。目前,农作物不能以二氧化碳电解废水作为其唯一的碳和能源来源。在二氧化碳电解废水中发现的短链羧酸、醇和醛的植物代谢方面存在许多知识空白。该项目的目标是发现植物如何代谢二氧化碳电解产物,并设计植物代谢,以更好地利用这些产物作为碳和能量的异养来源。为了实现这些目标,该项目有两个主要目标:(1)提高醋酸盐耐受性和利用率的工程工厂;(2)发现植物如何耐受和代谢二氧化碳电解的其他产物。该项目由ENG/CBET的细胞与生物化学工程(CBE)项目和BIO/MCB的系统与合成生物学(SSB)项目共同支持。该奖项反映了美国国家科学基金会的法定使命,并通过使用基金会的知识价值和更广泛的影响审查标准进行评估,被认为值得支持。
英文摘要
Plants capture sunlight and perform photosynthesis to drive plant growth. Biological photosynthesis is very energy inefficient. Therefore, large areas are required for food cultivation. Artificial photosynthesis is more energy efficient than natural photosynthesis but has never been used for food production. This project seeks to develop an interface between plants and artificial photosynthesis systems (APS). Once the interface has been developed, plants will be engineered to grow more efficiently utilizing APS augmentation. The research will be integrated with educational and outreach activities. These will include engaging undergraduates in labs focused on CO2 electrolysis and creating and running a ‘Startup Design Competition’ to encourage students to translate research results into entrepreneurial pursuits.Artificial photosynthesis has the potential to be much more energy efficient than biological photosynthesis but has not yet been applied to food production. A hybrid inorganic–biological artificial photosynthesis system for energy-efficient food production was recently developed. In a two-step process, CO2 electrolysis converts CO2 into acetate, which serves as a carbon and energy source for food producing organisms (algae, yeast, and mushrooms) grown in the dark. Coupling this system to commercial photovoltaics gives a solar energy-to-biomass energy conversion efficiency of ~4% for the growth of algae. Crop plants cannot currently be cultivated with CO2 electrolysis effluent as their sole carbon and energy source. Many knowledge gaps exist about plant metabolism of short chain carboxylic acids, alcohols, and aldehydes found in CO2 electrolysis effluent. The goals of this project are to discover how plants metabolize products of CO2 electrolysis and to engineer plant metabolism to better use these products as heterotrophic sources of carbon and energy. To achieve these goals the project has two main objectives: (1) engineer plants with improved acetate tolerance and utilization; and (2) discover how plants tolerate and metabolize other products of CO2 electrolysis.This project is being jointly supported by the Cellular and Biochemical Engineering (CBE) Program in ENG/CBET and by the Systems and Synthetic Biology (SSB) Program in BIO/MCB.This award reflects NSF's statutory mission and has been deemed worthy of support through evaluation using the Foundation's intellectual merit and broader impacts review criteria.
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批准号:2220620
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项目类别:Standard Grant
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资助金额:$49.79万
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财政年份:2022
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负责人:Robert Jinkerson
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依托单位:
国内基金
海外基金
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负责人:朱建军
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依托单位:
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批准号:21224004
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项目类别:专项基金项目
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资助金额:20.0万元
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负责人:廖叶华
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依托单位:
Chinese Journal of Chemical Engineering
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项目类别:专项基金项目
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资助金额:20.0万元
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批准年份:2010
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负责人:廖叶华
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依托单位: