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Doty, S.

Publications and source records attributed to Doty, S..

2 recordsLinked to original sources

Endophytes induce systemic spatial reprogramming of metabolism in poplar roots under drought

Beneficial endophytes help plants thrive in challenging environments by altering their hosts metabolism, but how these cellular scale metabolic changes propagate to the systems biology scale is unknown. In this work, we employed a high-resolution chemical imaging approach to map metabolic changes at the root zone and cell type levels and found that a 9-strain consortium of beneficial endophytes differentially altered the metabolome of droughted root tissues according to cell types and locations along the root system architecture. Using machine learning (ML) models, we identified root metabolites and exudates that have predictive power over treatment class and could therefore be used as systems biology indicators of drought and endophyte inoculation status. We calculated the correlation between each endophyte and metabolite and found that this relationship shifts under drought conditions, indicating the dynamic role endophytes play in a plants microbiome and metabolism in response to environmental changes.

plant biology↗

Salicaceae endophyte inoculation alters stomatal patterning and improves the intrinsic water-use efficiency of Populus trichocarpa after a water-deficit.

Microorganisms may enhance plant resilience to water stress by influencing their hosts physiology and anatomy at the leaf-level. Bacterial and yeast endophytes, isolated from wild poplar and willow, can improve the intrinsic water-use efficiency (iWUE) of cultivated poplar (Populus) under water-deficits by lowering stomatal conductance (gsw). However, the relevance of stomatal anatomy underlying this reduction remains unclear. We hypothesized endophyte inoculation could change host stomatal anatomy, and this would relate to decreases in gsw. We subjected Salicaceae endophyte-inoculated and uninoculated Populus trichocarpa to well-watered and water-deficit treatments in greenhouse studies. We examined the changes of individual stomatal traits and related the composition of these parameters, termed stomatal patterning, to leaf gas-exchange under light saturation. After a water-deficit, inoculation improved iWUE at light saturation from preserving carbon assimilation (Anet) and lowering gsw, but these changes were independent of soil-moisture status. Drops in gsw corresponded to underlying shifts in stomatal patterning. Inoculated plants had smaller, more compact stomata and greater anatomical maximum stomatal conductance (gsmax) relative to the control. Salicaceae endophytes may alter stomatal density and size, lowering gsw and increasing iWUE. Future efforts may quantify endophyte colonization of the host to draw direct relationships between microbes and stomatal traits. HIGHLIGHTPoplars inoculated with specific bacteria had leaves containing many, tiny pores relative to the trees without the microbes; these plants with the small, dense pores related to greater intrinsic water-use efficiency.

plant biology↗