The presence of plant-associated bacteria alters responses to N-acyl homoserine lactone quorum sensing signals that modulate nodulation
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Veliz Vallejos, Debora
Mathesius, Ulrike
Kawasaki, Akitomo
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MDPI
Abstract
Bacteria use quorum sensing signaling for cell-to-cell communication, which is also
important for their interactions with plant hosts. Quorum sensing via N-acyl-homoserine lactones
(AHLs) is important for successful symbioses between legumes and nitrogen-fixing rhizobia.
Previous studies have shown that plant hosts can recognize and respond to AHLs. Here, we tested
whether the response of the model legume Medicago truncatula to AHLs from its symbiont and
other bacteria could be modulated by the abundance and composition of plant-associated microbial
communities. Temporary antibiotic treatment of the seeds removed the majority of bacterial taxa
associated with M. truncatula roots and significantly altered the effect of AHLs on nodule numbers,
but lateral root density, biomass, and root length responses were much less affected. The AHL
3-oxo-C14-HSL (homoserine lactone) specifically increased nodule numbers but only after the
treatment of seeds with antibiotics. This increase was associated with increased expression of the
early nodulation genes RIP1 and ENOD11 at 24 h after infection. A 454 pyrosequencing analysis
of the plant-associated bacteria showed that antibiotic treatment had the biggest effect on bacterial
community composition. However, we also found distinct effects of 3-oxo-C14-HSL on the abundance
of specific bacterial taxa. Our results revealed a complex interaction between plants and their
associated microbiome that could modify plant responses to AHLs.
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Plants
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