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模式有益植物-细菌共生关系中的趋化信号系统。

Chemotaxis signaling systems in model beneficial plant-bacteria associations.

作者信息

Scharf Birgit E, Hynes Michael F, Alexandre Gladys M

机构信息

Department of Biological Sciences, Life Sciences I, Virginia Polytechnic Institute and State University, Blacksburg, VA, 24061, USA.

Department of Biological Sciences, University of Calgary, Calgary, AB, T2N 1N4, Canada.

出版信息

Plant Mol Biol. 2016 Apr;90(6):549-59. doi: 10.1007/s11103-016-0432-4. Epub 2016 Jan 21.

Abstract

Beneficial plant-microbe associations play critical roles in plant health. Bacterial chemotaxis provides a competitive advantage to motile flagellated bacteria in colonization of plant root surfaces, which is a prerequisite for the establishment of beneficial associations. Chemotaxis signaling enables motile soil bacteria to sense and respond to gradients of chemical compounds released by plant roots. This process allows bacteria to actively swim towards plant roots and is thus critical for competitive root surface colonization. The complete genome sequences of several plant-associated bacterial species indicate the presence of multiple chemotaxis systems and a large number of chemoreceptors. Further, most soil bacteria are motile and capable of chemotaxis, and chemotaxis-encoding genes are enriched in the bacteria found in the rhizosphere compared to the bulk soil. This review compares the architecture and diversity of chemotaxis signaling systems in model beneficial plant-associated bacteria and discusses their relevance to the rhizosphere lifestyle. While it is unclear how controlling chemotaxis via multiple parallel chemotaxis systems provides a competitive advantage to certain bacterial species, the presence of a larger number of chemoreceptors is likely to contribute to the ability of motile bacteria to survive in the soil and to compete for root surface colonization.

摘要

有益的植物 - 微生物关联在植物健康中起着关键作用。细菌趋化性为有鞭毛的运动细菌在植物根表面定殖时提供竞争优势,这是建立有益关联的先决条件。趋化性信号传导使运动性土壤细菌能够感知并响应植物根系释放的化合物梯度。这一过程使细菌能够主动游向植物根系,因此对于竞争性的根表面定殖至关重要。几种与植物相关的细菌物种的完整基因组序列表明存在多个趋化系统和大量化学感受器。此外,大多数土壤细菌具有运动能力且能够进行趋化作用,与大块土壤相比,趋化编码基因在根际发现的细菌中更为丰富。本综述比较了模式有益植物相关细菌中趋化信号系统的结构和多样性,并讨论了它们与根际生活方式的相关性。虽然尚不清楚通过多个平行趋化系统控制趋化性如何为某些细菌物种提供竞争优势,但大量化学感受器的存在可能有助于运动细菌在土壤中生存并竞争根表面定殖的能力。

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