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Amrhein, A.

Publications and source records attributed to Amrhein, A..

2 recordsLinked to original sources

A multigenic quantitative trait locus underlies natural variation in Arabidopsis thaliana root system architecture and transcriptional responses to microbiota-derived Pseudomonas

Plants interact with structured microbial communities called the microbiota, which can have a profound impact on plant growth and health. However, how plants perceive and respond to specific core microbiota members at a molecular level is still unclear. We identified natural variation in Arabidopsis thaliana root responses to bacterial strains of the genus Pseudomonas, a core genus of the plant microbiota. Some A. thaliana accessions such as Van-0 show strong root responses to Pseudomonas strains, including changes in root system architecture and transcriptional reprogramming. Through a forward genetic screen using Pseudomonas isolate R569, we found that the nuo NADH dehydrogenase complex, part of the bacterial electron transport chain, contributes to the bacterial activity on Van-0 roots. Using recombinant inbred lines, we further mapped a multigenic quantitative trait locus in the host that is associated with the root responses. In Van-0, the exocyst subunit EXO70E2 positively contributes to the response, while Col-0 haplotypes of malectin-like and leucine-rich-repeat domain-containing receptor-like kinases play an inhibitory role. The identification of these components in the bacteria and the host establishes a genetic framework for how root developmental plasticity is integrated with the microbe-rich soil environment and is subject to intraspecific natural variation.

plant biology↗

Pseudomonas intra-genus competition determines protective function of SynComs in Arabidopsis thaliana

The plant root microbiota is crucial for nutrient acquisition, development, and disease suppression. Although commensal bacteria display host preference, their beneficial impact on their cognate host and mechanisms of species selection by the plant are still unclear. We use bacterial culture collections derived from the two model species Arabidopsis thaliana (At) and Lotus japonicus (Lj) to design synthetic communities (SynComs) and test their protective function upon exposure of At Col-0 to the detrimental root-colonizing Pseudomonas isolate R401. Lj-derived SynComs were fully protective, whereas At-derived SynComs displayed full protective activity only towards a R401 mutant impaired in the production of inhibitory exometabolites. The protective phenotypes were associated with a reduced titer of the R401 opportunistic pathogen. In vitro antagonist assays, in planta and in vitro bacterial community profiling, as well as strain-swapping and strain-dropout experiments revealed that competition among commensal Pseudomonas strains and R401 determines the success of the opportunist, independent of the original host or the phylogeny of the commensals. Furthermore, we determine the carbon utilization potential of these isolates, which may explain the competition with the detrimental strain and the role of host-secreted compounds. Our results provide evidence that intra-genus interactions within SynComs modulate plant health and disease, and that an individual beneficial strain can be sufficient to outcompete an opportunistic relative. This has implications for the successful development of beneficial microbial consortia for agriculture.

plant biology↗