Plant growth-promoting rhizobacteria and root system functioning

根际 根际细菌 生物 生态学 植物 细菌 植物生长 遗传学
作者
Jordan Vacheron,Guilhem Desbrosses,Marie‐Lara Bouffaud,Bruno Touraine,Yvan Moënne‐Loccoz,Daniel Müller,Laurent Legendre,Florence Wisniewski‐Dyé,Claire Prigent‐Combaret
出处
期刊:Frontiers in Plant Science [Frontiers Media]
卷期号:4: 356-356 被引量:1432
标识
DOI:10.3389/fpls.2013.00356
摘要

The rhizosphere supports the development and activity of a huge and diversified microbial community, including microorganisms capable to promote plant growth. Among the latter, plant growth-promoting rhizobacteria (PGPR) colonize roots of monocots and dicots, and enhance plant growth by direct and indirect mechanisms. Modification of root system architecture by PGPR implicates the production of phytohormones and other signals that lead, mostly, to enhanced lateral root branching and development of root hairs. PGPR also modify root functioning, improve plant nutrition and influence the physiology of the whole plant. Recent results provided first clues as to how PGPR signals could trigger these plant responses. Whether local and/or systemic, the plant molecular pathways involved remain often unknown. From an ecological point of view, it emerged that PGPR form coherent functional groups, whose rhizosphere ecology is influenced by a myriad of abiotic and biotic factors in natural and agricultural soils, and these factors can in turn modulate PGPR effects on roots. In this paper, we address novel knowledge and gaps on PGPR modes of action and signals, and highlight recent progress on the links between plant morphological and physiological effects induced by PGPR. We also show the importance of taking into account the size, diversity, and gene expression patterns of PGPR assemblages in the rhizosphere to better understand their impact on plant growth and functioning. Integrating mechanistic and ecological knowledge on PGPR populations in soil will be a prerequisite to develop novel management strategies for sustainable agriculture.
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