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Understanding and engineering beneficial plant–microbe interactions: plant growth promotion in energy crops

机译:了解和工程化有益的植物与微生物的相互作用:促进能源作物中的植物生长

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摘要

Plant production systems globally must be optimized to produce stable high yields from limited land under changing and variable climates. Demands for food, animal feed, and feedstocks for bioenergy and biorefining applications, are increasing with population growth, urbanization and affluence. Low-input, sustainable, alternatives to petrochemical-derived fertilizers and pesticides are required to reduce input costs and maintain or increase yields, with potential biological solutions having an important role to play. In contrast to crops that have been bred for food, many bioenergy crops are largely undomesticated, and so there is an opportunity to harness beneficial plant–microbe relationships which may have been inadvertently lost through intensive crop breeding. Plant–microbe interactions span a wide range of relationships in which one or both of the organisms may have a beneficial, neutral or negative effect on the other partner. A relatively small number of beneficial plant–microbe interactions are well understood and already exploited; however, others remain understudied and represent an untapped reservoir for optimizing plant production. There may be near-term applications for bacterial strains as microbial biopesticides and biofertilizers to increase biomass yield from energy crops grown on land unsuitable for food production. Longer term aims involve the design of synthetic genetic circuits within and between the host and microbes to optimize plant production. A highly exciting prospect is that endosymbionts comprise a unique resource of reduced complexity microbial genomes with adaptive traits of great interest for a wide variety of applications.
机译:在全球范围内,必须优化植物生产系统,以在气候变化和多变的情况下从有限的土地上稳定地获得高产。随着人口增长,城市化和富裕化,对用于生物能源和生物精炼应用的食品,动物饲料和原料的需求正在增加。需要低投入,可持续的石化衍生肥料和农药替代品,以降低投入成本并保持或提高产量,而潜在的生物解决方案将发挥重要作用。与以粮食为食的农作物相比,许多生物能源农作物基本上没有驯化,因此有机会利用有益的植物与微生物的关系,这种关系可能因集约化育种而无意间失去了。植物与微生物之间的相互作用涉及多种关系,其中一种或两种生物可能对另一种伴侣产生有益,中性或负面影响。相对较少的有益的植物-微生物相互作用已经得到很好的理解,并且已经被利用。但是,其他研究仍未充分研究,它们代表了尚未开发的储藏库,用于优化工厂生产。细菌菌株如微生物杀生物剂和生物肥料可能会在近期应用,以增加在不适合粮食生产的土地上种植能源作物的生物量。长期目标涉及设计宿主和微生物内部和之间的合成遗传回路,以优化植物生产。令人振奋的前景是内共生体包括降低复杂性的微生物基因组的独特资源,其适应性特征对于各种应用具有极大的兴趣。

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