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Teutloff, E.

Publications and source records attributed to Teutloff, E..

2 recordsLinked to original sources

Deterministic colonization arises early during the transition of soil bacteria to the phyllosphere and is shaped by plant-microbe interactions.

BackgroundUpon seed germination, soil bacteria are activated to transition to the plant and eventually colonize mature tissues like leaves. These bacteria are poised to significantly influence plant health, but we know little about their colonization routes. We studied the mechanisms of the transition of soil bacteria to germinating plants and leaves by experimentally manipulating inoculation times and using in-planta isolation to understand bacteria that can make the complex soil-to-leaf transition. Using a trackable, labeled Pseudomonas viridiflava (Pv3D9) amended to soil, we tested how plant-microbe-microbe interactions shape assembly mechanisms in natural soil communites. ResultsWe found that the stages of the transition of bacteria from soil to leaves before true leaf emergence were important in establishing uniquely diverse leaf bacteriomes. A wide diversity of leaf-associated taxa can individually make this transition, but most are still shaped by stochastic processes. Interestingly, deterministic processes drove some important taxa only when they transitioned from soil to leaves, but not when they were inoculated later. The opportunistic pathogen Pv3D9 promoted plant growth in a natural soil, likely by activating plant immunity. These effects in turn strongly affected the soil-to-leaf transition of almost strictly taxa that colonized deterministically, demonstrating the important role of plant-microbe-microbe interactions in controlling deterministic processes. ConclusionsDiverse, well-adapted bacterial taxa make the soil-to-leaf transition during natural colonization resulting in characteristic diversity in healthy leaf microbiomes. The domination of stochastic mechanisms during this colonization indicates that many taxa must strongly compete to establish their niche. During this complex transition, however, specific important taxa emerge that are driven by deterministic processes, suggesting they occupy unique niches. The malleability of these processes suggests that they may be controlled, for example by targeted soil manipulations. This finding is significant given the important roles of these bacteria in plant health and offers directions forward for engineering beneficial plant microbiomes.

microbiology↗

Immunity and bacterial recruitment in plant leaves are parallel processes whose link shapes sensitivity to temperature stress

Rising global temperatures necessitate developing resilient crops with better adaptability to changing climates. Under elevated temperatures, plant immunity is downregulated, increasing risk of foliar pathogen attack. Manipulating plant defense hormones is one way to mitigate this detrimental effect. However, it is unclear how plant immunity interacts with plant microbiome assembly and how temperature will thus affect overall plant health and stability. In this study, we compared two Arabidopsis thaliana genotypes that feature divergent strategies for recruitment of commensal bacteria from natural soil. NG2, an A. thaliana ecotype we collected from Jena, Germany, was grown in its native soil and compared to CLLF, a genotype that recruits higher bacterial loads and higher bacterial diversity but without any dysbiotic phenotype. CLLF hyperaccumulates salicylic acid (SA) and jasmonates, has constitutively upregulated innate defenses, and shows increased resistance to necrotrophic fungal and hemi-biotrophic bacterial pathogens, indicating that pathogen immunity and non-pathogen recruitment function in parallel. Some of its leaf bacteria can utlize SA as a carbon source, suggesting that immunity and recruitment may even be linked by chemical hormones. CLLF exhibits high tolerance to heat stress in comparison to the NG2, with SA-associated defense processes remaining active under heat. Synthetic community (SynCom) experiments revealed that when the taxonomic diversity of bacteria available to CLLF is artificially reduced, resilience to heat stress is compromised, leading to dysbiosis. However, this dysbiosis does not occur in CLLF with a full SynCom or in the NG2 with any SynCom. These findings suggest that the downregulation of defenses in response to heat may contribute to the avoidance of dysbiosis caused by certain leaf bacteria, while full bacteriome taxonomic diversity can help maintain balance.

microbiology↗