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1.
Nat Commun ; 15(1): 6535, 2024 Aug 02.
Artículo en Inglés | MEDLINE | ID: mdl-39095376

RESUMEN

Root exudates contain specialised metabolites that shape the plant's root microbiome. How host-specific microbes cope with these bioactive compounds, and how this ability affects root microbiomes, remains largely unknown. We investigated how maize root bacteria metabolise benzoxazinoids, the main specialised metabolites of maize. Diverse and abundant bacteria metabolised the major compound in the maize rhizosphere MBOA (6-methoxybenzoxazolin-2(3H)-one) and formed AMPO (2-amino-7-methoxy-phenoxazin-3-one). AMPO forming bacteria were enriched in the rhizosphere of benzoxazinoid-producing maize and could use MBOA as carbon source. We identified a gene cluster associated with AMPO formation in microbacteria. The first gene in this cluster, bxdA encodes a lactonase that converts MBOA to AMPO in vitro. A deletion mutant of the homologous bxdA genes in the genus Sphingobium, did not form AMPO nor was it able to use MBOA as a carbon source. BxdA was identified in different genera of maize root bacteria. Here we show that plant-specialised metabolites select for metabolisation-competent root bacteria. BxdA represents a benzoxazinoid metabolisation gene whose carriers successfully colonize the maize rhizosphere and thereby shape the plant's chemical environmental footprint.


Asunto(s)
Benzoxazinas , Raíces de Plantas , Rizosfera , Zea mays , Zea mays/microbiología , Benzoxazinas/metabolismo , Raíces de Plantas/microbiología , Raíces de Plantas/metabolismo , Proteínas Bacterianas/metabolismo , Proteínas Bacterianas/genética , Familia de Multigenes , Microbiota/genética , Microbiología del Suelo , Sphingomonadaceae/genética , Sphingomonadaceae/metabolismo , Sphingomonadaceae/enzimología
2.
New Phytol ; 241(6): 2575-2588, 2024 Mar.
Artículo en Inglés | MEDLINE | ID: mdl-38087806

RESUMEN

Plants can suppress the growth of other plants by modifying soil properties. These negative plant-soil feedbacks are often species-specific, suggesting that some plants possess resistance strategies. However, the underlying mechanisms remain largely unknown. Here, we investigated whether benzoxazinoids, a class of dominant secondary metabolites that are exuded into the soil by maize and other cereals, allow maize plants to cope with plant-soil feedbacks. We find that three out of five tested crop species reduce maize (Zea mays L.) performance via negative plant-soil feedbacks relative to the mean across species. This effect is partially alleviated by the capacity of maize plants to produce benzoxazinoids. Soil complementation with purified benzoxazinoids restores the protective effect for benzoxazinoid-deficient mutants. Sterilization and reinoculation experiments suggest that benzoxazinoid-mediated protection acts via changes in soil biota. Substantial variation of the protective effect between experiments and soil types illustrates context dependency. In conclusion, exuded plant secondary metabolites allow plants to cope with plant-soil feedbacks. These findings expand the functional repertoire of plant secondary metabolites and reveal a mechanism by which plants can resist negative effects of soil feedbacks. The uncovered phenomenon may represent a promising avenue to stabilize plant performance in crop rotations.


Asunto(s)
Benzoxazinas , Suelo , Benzoxazinas/farmacología , Benzoxazinas/metabolismo , Retroalimentación , Plantas/metabolismo , Zea mays/metabolismo
3.
Proc Natl Acad Sci U S A ; 120(44): e2310134120, 2023 Oct 31.
Artículo en Inglés | MEDLINE | ID: mdl-37878725

RESUMEN

Plants exude specialized metabolites from their roots, and these compounds are known to structure the root microbiome. However, the underlying mechanisms are poorly understood. We established a representative collection of maize root bacteria and tested their tolerance against benzoxazinoids (BXs), the dominant specialized and bioactive metabolites in the root exudates of maize plants. In vitro experiments revealed that BXs inhibited bacterial growth in a strain- and compound-dependent manner. Tolerance against these selective antimicrobial compounds depended on bacterial cell wall structure. Further, we found that native root bacteria isolated from maize tolerated the BXs better compared to nonhost Arabidopsis bacteria. This finding suggests the adaptation of the root bacteria to the specialized metabolites of their host plant. Bacterial tolerance to 6-methoxy-benzoxazolin-2-one (MBOA), the most abundant and selective antimicrobial metabolite in the maize rhizosphere, correlated significantly with the abundance of these bacteria on BX-exuding maize roots. Thus, strain-dependent tolerance to BXs largely explained the abundance pattern of bacteria on maize roots. Abundant bacteria generally tolerated MBOA, while low abundant root microbiome members were sensitive to this compound. Our findings reveal that tolerance to plant specialized metabolites is an important competence determinant for root colonization. We propose that bacterial tolerance to root-derived antimicrobial compounds is an underlying mechanism determining the structure of host-specific microbial communities.


Asunto(s)
Antiinfecciosos , Arabidopsis , Microbiota , Zea mays/metabolismo , Raíces de Plantas/metabolismo , Bacterias/metabolismo , Plantas/metabolismo , Rizosfera , Benzoxazinas/farmacología , Benzoxazinas/metabolismo , Arabidopsis/metabolismo , Antiinfecciosos/metabolismo , Microbiología del Suelo
4.
Elife ; 122023 08 01.
Artículo en Inglés | MEDLINE | ID: mdl-37526647

RESUMEN

Plant secondary metabolites that are released into the rhizosphere alter biotic and abiotic soil properties, which in turn affect the performance of other plants. How this type of plant-soil feedback affects agricultural productivity and food quality in the field in the context of crop rotations is unknown. Here, we assessed the performance, yield and food quality of three winter wheat varieties growing in field plots whose soils had been conditioned by either wild type or benzoxazinoid-deficient bx1 maize mutant plants. Following maize cultivation, we detected benzoxazinoid-dependent chemical and microbial fingerprints in the soil. The benzoxazinoid fingerprint was still visible during wheat growth, but the microbial fingerprint was no longer detected. Wheat emergence, tillering, growth, and biomass increased in wild type conditioned soils compared to bx1 mutant conditioned soils. Weed cover was similar between soil conditioning treatments, but insect herbivore abundance decreased in benzoxazinoid-conditioned soils. Wheat yield was increased by over 4% without a reduction in grain quality in benzoxazinoid-conditioned soils. This improvement was directly associated with increased germination and tillering. Taken together, our experiments provide evidence that soil conditioning by plant secondary metabolite producing plants can increase yield via plant-soil feedbacks under agronomically realistic conditions. If this phenomenon holds true across different soils and environments, optimizing root exudation chemistry could be a powerful, genetically tractable strategy to enhance crop yields without additional inputs.


Asunto(s)
Benzoxazinas , Suelo , Suelo/química , Retroalimentación , Benzoxazinas/metabolismo , Agricultura , Zea mays/metabolismo , Grano Comestible/metabolismo , Triticum
5.
Plant Cell Environ ; 44(12): 3502-3514, 2021 12.
Artículo en Inglés | MEDLINE | ID: mdl-34505297

RESUMEN

Plant-soil feedbacks refer to effects on plants that are mediated by soil modifications caused by the previous plant generation. Maize conditions the surrounding soil by secretion of root exudates including benzoxazinoids (BXs), a class of bioactive secondary metabolites. Previous work found that a BX-conditioned soil microbiota enhances insect resistance while reducing biomass in the next generation of maize plants. Whether these BX-mediated and microbially driven feedbacks are conserved across different soils and response species is unknown. We found the BX-feedbacks on maize growth and insect resistance conserved between two arable soils, but absent in a more fertile grassland soil, suggesting a soil-type dependence of BX feedbacks. We demonstrated that wheat also responded to BX-feedbacks. While the negative growth response to BX-conditioning was conserved in both cereals, insect resistance showed opposite patterns, with an increase in maize and a decrease in wheat. Wheat pathogen resistance was not affected. Finally and consistent with maize, we found the BX-feedbacks to be cultivar-specific. Taken together, BX-feedbacks affected cereal growth and resistance in a soil and genotype-dependent manner. Cultivar-specificity of BX-feedbacks is a key finding, as it hides the potential to optimize crops that avoid negative plant-soil feedbacks in rotations.


Asunto(s)
Alelopatía , Benzoxazinas/metabolismo , Genotipo , Suelo/química , Triticum/fisiología , Zea mays/fisiología , Animales , Cadena Alimentaria , Insectos/fisiología , Triticum/genética , Zea mays/genética
6.
Plant Cell Environ ; 42(6): 1964-1973, 2019 06.
Artículo en Inglés | MEDLINE | ID: mdl-30754075

RESUMEN

Volatile organic compounds (VOCs) emitted by plant roots can influence the germination and growth of neighbouring plants. However, little is known about the effects of root VOCs on plant-herbivore interactions of neighbouring plants. The spotted knapweed (Centaurea stoebe) constitutively releases high amounts of sesquiterpenes into the rhizosphere. Here, we examine the impact of C. stoebe root VOCs on the primary and secondary metabolites of sympatric Taraxacum officinale plants and the resulting plant-mediated effects on a generalist root herbivore, the white grub Melolontha melolontha. We show that exposure of T. officinale to C.stoebe root VOCs does not affect the accumulation of defensive secondary metabolites but modulates carbohydrate and total protein levels in T. officinale roots. Furthermore, VOC exposure increases M. melolontha growth on T. officinale plants. Exposure of T. officinale to a major C. stoebe root VOC, the sesquiterpene (E)-ß-caryophyllene, partially mimics the effect of the full root VOC blend on M. melolontha growth. Thus, releasing root VOCs can modify plant-herbivore interactions of neighbouring plants. The release of VOCs to increase the susceptibility of other plants may be a form of plant offense.


Asunto(s)
Centaurea/metabolismo , Herbivoria/fisiología , Raíces de Plantas/metabolismo , Taraxacum/metabolismo , Compuestos Orgánicos Volátiles/metabolismo , Animales , Fenómenos Biológicos , Escarabajos/fisiología , Plantas/efectos de los fármacos , Plantas/metabolismo , Sesquiterpenos Policíclicos , Metabolismo Secundario , Sesquiterpenos , Suiza , Compuestos Orgánicos Volátiles/farmacología
7.
Plant Cell Environ ; 42(6): 1950-1963, 2019 06.
Artículo en Inglés | MEDLINE | ID: mdl-30737807

RESUMEN

Volatile organic compounds (VOCs) emitted by plant leaves can influence the physiology of neighbouring plants. In contrast to leaf VOCs, little is known about the role of root VOCs in plant-plant interactions. Here, we characterize constitutive root VOC emissions of the spotted knapweed (Centaurea stoebe) and explore the impact of these VOCs on the germination and growth of different sympatric plant species. We show that C. stoebe roots emit high amounts of sesquiterpenes, with estimated release rates of (E)-ß-caryophyllene above 3 µg g-1  dw hr-1 . Sesquiterpene emissions show little variation between different C. stoebe populations but vary substantially between different Centaurea species. Through root transcriptome sequencing, we identify six root-expressed sesquiterpene synthases (TPSs). Two root-specific TPSs, CsTPS4 and CsTPS5, are sufficient to produce the full blend of emitted root sesquiterpenes. VOC-exposure experiments demonstrate that C. stoebe root VOCs have neutral to positive effects on the germination and growth of different sympatric neighbours. Thus, constitutive root sesquiterpenes produced by two C. stoebe TPSs are associated with facilitation of sympatric neighbouring plants. The release of root VOCs may thus influence plant community structure in nature.


Asunto(s)
Centaurea/metabolismo , Germinación/fisiología , Raíces de Plantas/metabolismo , Sesquiterpenos/metabolismo , Compuestos Orgánicos Volátiles/metabolismo , Desarrollo de la Planta , Hojas de la Planta/metabolismo , Proteínas de Plantas/genética , Proteínas de Plantas/metabolismo , Plantas/efectos de los fármacos , Sesquiterpenos Policíclicos/metabolismo , Análisis de Secuencia , Terpenos/metabolismo , Transcriptoma , Compuestos Orgánicos Volátiles/farmacología
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