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Joller, C.

Publications and source records attributed to Joller, C..

2 recordsLinked to original sources

Paralleled Dynamics of Arabidopsis Root Exudation and SynCom Assembly in a Controlled Environment

Plant roots host defined microbial communities that differ from those found in the surrounding soil and these communities shift dynamically in response to plant development and environmental changes. Whilst it is widely accepted that root exudates play a key role in the assembly and dynamics of root-associated microbial communities, the underlying mechanisms are not well understood. This is partly due to a lack of controlled experimental systems that monitor both exudate- and microbiome-dynamics simultaneously. Here, we compared two microcosm systems commonly used in either root microbiome (clay particle-based) or root exudate studies (glass bead-based) for their suitability to simultaneously monitor both aspects. We evaluated these systems based on plant performance, bacterial growth, and time-resolved community and exudate profiling. In both systems, we reveal an exudate effect, characterised by higher bacterial diversity and Pseudomonas abundances in proximity to plant roots. While clay particles impeded exudate recovery, even when plants were removed from microcosms for exudate collection, the glass bead set-up allowed us to uncover dynamic exudate shifts during bacterial community establishment. This highlighted a transient increase of glucosinolates upon root colonisation by initially dominant Pseudomonas species. Overall, the comparison proved only the glass bead-based semi-hydroponic system to be suitable for the paralleled study of exudate and root microbiome dynamics.

plant biology↗

Time-resolved, integrated multi-omic analysis reveals central role of amino acid pathways for defense responses in Arabidopsis thaliana

Plants respond to biotic stresses by altering gene expression and metabolism. However, how fast different tissues respond to microbial presence, and how similar these responses are is mostly unresolved. Here, we treat Arabidopsis thaliana with elicitors and investigate time-resolved changes in shoot, root, and root-derived (exudate) metabolite profiles. We find that root responses precede shoots and that first metabolite changes take place after 1.5 h and persist for 3 d. Exudates respond within 4 h (earliest timepoint available) to elicitor presence. This response diminishes when plants are pulse-treated but persists for continuously treated plants. Defense compounds such as phenylpropanoids increase after 1.5-4 h. Amino acids were iden6fied as central players in defense: they increase after 1.5 h in shoots, roots, and exudates. Transcriptome analysis at 4 h and 1 d and integrated, multi-omic analysis of transcription and metabolome suggest that aromatic and aliphatic amino acids are central players in defense responses. As their transcriptional and metabolite increases are fast and persisting over days for most amino acids, we propose amino acids as early indicators for biotic stress monitoring.

plant biology↗