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Meeting the Global Food Demand of the Future by Engineering Crop Photosynthesis and Yield Potential

机译:通过工程作物光合作用和产量潜力满足未来的全球粮食需求

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摘要

Increase in demand for our primary foodstuffs is outstripping increase in yields, an expanding gap that indicates large potential food shortages by mid-century. This comes at a time when yield improvements are slowing or stagnating as the approaches of the Green Revolution reach their biological limits. Photosynthesis, which has been improved little in crops and falls far short of its biological limit, emerges as the key remaining route to increase the genetic yield potential of our major crops. Thus, there is a timely need to accelerate our understanding of the photosynthetic process in crops to allow informed and guided improvements via in-silico-assisted genetic engineering. Potential and emerging approaches to improving crop photosynthetic efficiency are discussed, and the new tools needed to realize these changes are presented.
机译:对初级食品的需求增加是产量的延伸,其巨大差距表明中世纪的潜在粮食短缺。 这是在产生改进正在减慢或停滞不前时出现的,因为绿色革命的方法达到生物学限制。 光合作用,在农作物中有所提高,远远缩短其生物极限,作为增加我们主要作物遗传产量潜力的关键剩余途径。 因此,及时需要加速我们对作物中的光合作用过程的理解,以允许通过硅辅助基因工程中的知识和引导的改进。 讨论了提高作物光合效率的潜力和新兴方法,并提出了实现这些变化所需的新工具。

著录项

  • 来源
    《Cell》 |2015年第1期|共11页
  • 作者单位

    Univ Illinois Dept Plant Biol Urbana IL 61801 USA;

    Univ Illinois Dept Plant Biol Urbana IL 61801 USA;

    CAS MPG Partner Inst Computat Biol CAS Key Lab Computat Biol Shanghai 200031 Peoples R China;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 细胞生物学;
  • 关键词

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