Chung Joon-hui, Song Geun Cheol, Ryu Choong-Min
Molecular Phytobactriology Laboratory, KRIBB, Daejeon, 305-806, South Korea.
Biosystems and Bioengineering Program, University of Science and Technology (UST), Yuseong-gu, Daejeon, 305-333, South Korea.
Plant Mol Biol. 2016 Apr;90(6):677-87. doi: 10.1007/s11103-015-0344-8. Epub 2015 Jul 16.
Beneficial bacteria produce diverse chemical compounds that affect the behavior of other organisms including plants. Bacterial volatile compounds (BVCs) contribute to triggering plant immunity and promoting plant growth. Previous studies investigated changes in plant physiology caused by in vitro application of the identified volatile compounds or the BVC-emitting bacteria. This review collates new information on BVC-mediated plant-bacteria airborne interactions, addresses unresolved questions about the biological relevance of BVCs, and summarizes data on recently identified BVCs that improve plant growth or protection. Recent explorations of bacterial metabolic engineering to alter BVC production using heterologous or endogenous genes are introduced. Molecular genetic approaches can expand the BVC repertoire of beneficial bacteria to target additional beneficial effects, or simply boost the production level of naturally occurring BVCs. The effects of direct BVC application in soil are reviewed and evaluated for potential large-scale field and agricultural applications. Our review of recent BVC data indicates that BVCs have great potential to serve as effective biostimulants and bioprotectants even under open-field conditions.
有益细菌会产生多种化合物,这些化合物会影响包括植物在内的其他生物体的行为。细菌挥发性化合物(BVCs)有助于触发植物免疫并促进植物生长。先前的研究调查了体外应用已鉴定的挥发性化合物或产生BVCs的细菌所引起的植物生理变化。本综述整理了有关BVC介导的植物-细菌空气传播相互作用的新信息,解决了有关BVCs生物学相关性的未解决问题,并总结了有关最近鉴定出的可改善植物生长或保护作用的BVCs的数据。介绍了利用异源或内源基因通过细菌代谢工程改变BVC产生的最新探索。分子遗传学方法可以扩展有益细菌的BVC种类,以实现其他有益效果,或者简单地提高天然存在的BVCs的生产水平。本文对直接在土壤中施用BVCs的效果进行了综述,并对其在大规模田间和农业应用中的潜力进行了评估。我们对近期BVC数据的综述表明,即使在露天条件下,BVCs也具有作为有效生物刺激剂和生物保护剂的巨大潜力。