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Redesigning photosynthesis to sustainably meet global food and bioenergy demand

机译:重新设计光合作用以可持续地满足全球粮食和生物能源需求

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摘要

The world’s crop productivity is stagnating whereas population growth, rising affluence, and mandates for biofuels put increasing demands on agriculture. Meanwhile, demand for increasing cropland competes with equally crucial global sustainability and environmental protection needs. Addressing this looming agricultural crisis will be one of our greatest scientific challenges in the coming decades, and success will require substantial improvements at many levels. We assert that increasing the efficiency and productivity of photosynthesis in crop plants will be essential if this grand challenge is to be met. Here, we explore an array of prospective redesigns of plant systems at various scales, all aimed at increasing crop yields through improved photosynthetic efficiency and performance. Prospects range from straightforward alterations, already supported by preliminary evidence of feasibility, to substantial redesigns that are currently only conceptual, but that may be enabled by new developments in synthetic biology. Although some proposed redesigns are certain to face obstacles that will require alternate routes, the efforts should lead to new discoveries and technical advances with important impacts on the global problem of crop productivity and bioenergy production.
机译:世界的农作物生产力停滞不前,而人口增长,富裕程度不断提高以及对生物燃料的要求令对农业的需求日益增加。同时,对增加耕地的需求与全球至关重要的可持续性和环境保护需求竞争。解决这一迫在眉睫的农业危机将是未来几十年我们最大的科学挑战之一,要取得成功,就需要在许多方面进行重大改进。我们断言,要应对这一巨大挑战,提高作物光合作用的效率和生产力至关重要。在这里,我们探索了一系列不同规模的植物系统的前瞻性重新设计,旨在通过提高光合作用效率和性能来提高作物产量。前景不一,从已经有可行性的初步证据支持的直接变更到目前仅是概念性的,但可能由合成生物学的新发展实现的实质性重新设计。尽管某些拟议的重新设计肯定会遇到需要替代路线的障碍,但这些努力应导致新发现和技术进步,对全球作物生产力和生物能源生产问题产生重大影响。

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