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Peltz, N.

Publications and source records attributed to Peltz, N..

2 recordsLinked to original sources

Low intra-microbiota antagonism underlies stable and protective barley root microbiota

Plants rely on root-associated microbiota for growth and pathogen protection, yet the community properties underlying stable beneficial functions remain unclear. Here, we show that low intra-microbiota antagonism is associated with stability and pathogen protection in the barley root microbiota. Using a comprehensive culture collection of barley root endophytes, we reconstructed bacterial synthetic communities (SynComs) and compared a core SynCom resembling the natural microbiota with a trait-prioritized SynCom assembled from strains selected for predicted host benefits. Although strains from both communities exhibited broad pathogen-inhibitory potential, the communities behaved differently in planta. The core SynCom showed low internal antagonism, remained stable, and protected barley roots against fungal pathogens without impairing growth. In contrast, the trait-prioritized SynCom exhibited strong internal antagonism, unstable assembly, loss of protection, and reduced root growth. Together, our findings indicate that microbiota function cannot be predicted from individual strain traits alone. Rather, low intra-microbiota antagonism promotes community stability and enables protective functions to emerge in barley roots. Significance statementPlants rely on root microbiota for disease protection, yet the principles governing community stability and protective function remain poorly understood. Here, we show that low intra-microbiota antagonism is associated with a stable and protective barley root microbiota, whereas strong internal antagonism destabilizes communities, impairs root growth, and abolishes pathogen protection. These findings show that microbiota function depends not only on beneficial traits of individual strains, but also on compatibility among community members. HighlightsO_LILow intra-microbiota antagonism is associated with stable and protective barley root microbiota. C_LIO_LITrait-prioritized SynCom assembly with higher intra-microbiota antagonism can lead to dysbiosis. C_LIO_LIA highly antagonistic Pseudomonas strain is buffered by the core SynCom but detrimental in an unstable community. C_LIO_LICommunity compatibility better explains protection than individual strain traits. C_LIO_LIStable bacterial communities support fungal endophyte-mediated protection and maintain pathogen protection across barley genotypes. C_LI

plant biology↗

A fungal root endophyte functionally complements host immunity and mitigates natural immune variation in Arabidopsis

Beneficial root-associated microbes can enhance plant resilience by complementing aspects of host immunity. The fungal root endophyte Serendipita indica (Si) is known to promote plant growth and confer broad stress tolerance. To assess how natural host genetic variation influences Si-mediated protection, we screened 47 Arabidopsis thaliana accessions for susceptibility to the fungal pathogen Bipolaris sorokiniana (Bs) with and without Si colonization. All accessions benefited from Si, indicating that endophyte-mediated disease mitigation occurs broadly across diverse host genotypes. A focused comparison of two genetically and geographically proximate Swedish accessions, T510 and T530, which displayed the most divergent protection scores, revealed substantial differences in Bs susceptibility. Transcriptome profiling under bi- and tripartite colonization showed conserved defense responses in both accessions. Bs infection downregulated growth- and development-related genes, consistent with a growth-immunity trade-off, with T530 exhibiting higher Bs colonization and a stronger transcriptional response than T510. Co-colonization with Si effectively suppressed pathogen growth and disease symptoms in both accessions. Comparative genomic and transcriptomic analyses identified four immune receptor genes, including the TIR-NLR ISI, present in T510 but absent in T530. An isi T-DNA insertion mutant phenocopied the heightened Bs susceptibility of T530, confirming that ISI contributes to root immunity, while Si-mediated protection remained intact despite increased pathogen susceptibility. Together, these findings demonstrate that fungal endophytes can mitigate the functional consequences of natural immune variation and enhance the resilience of genetically diverse plant populations. HighlightsO_LIS. indica confers broad protection against B. sorokiniana largely independent of host genotype or pathogen susceptibility. C_LIO_LIThe TIR-NLR immune receptor ISI contributes to root immunity but is not essential for S. indica-mediated protection. C_LIO_LIBeneficial endophytes can mitigate natural immune variation effects and support overall plant health. C_LI

ecology↗