Перейти к основному содержанию
AkademIndex

Продукты

Для разработчиков

AkademBaseОткрытый API экосистемы
Статья

Functional Characteristics of an Endophyte Community Colonizing Rice Roots as Revealed by Metagenomic Analysis

Angela SessitschAIT Austrian Institute of Technology, Tulin, AustriaPablo R. HardoimVan Elsas labJessica DöringUniv Bremen, University of Bremen, Dept Microbe Plant InteractAlexandra WeilharterAIT Austrian Inst Technol GmbH, Bioresources UnitAndréa KrauseUniv Bremen, University of Bremen, Dept Microbe Plant InteractTanja WoykeJoint Genome Inst, Dept Energy DOEBirgit MitterAIT Austrian Inst Technol GmbH, Bioresources UnitLena Hauberg‐LotteUniv Bremen, University of Bremen, Dept Microbe Plant InteractFrauke FriedrichUniv Bremen, University of Bremen, Dept Microbe Plant InteractMonali C. RahalkarUniv Bremen, University of Bremen, Dept Microbe Plant InteractThomas HurekUniv Bremen, University of Bremen, Dept Microbe Plant InteractAbhijit SarkarUniv Bremen, University of Bremen, Dept Microbe Plant InteractLevente BodrossyAIT Austrian Inst Technol GmbH, Bioresources UnitL.S. van OverbeekPlant Res IntD. S. BrarInt Rice Res Ctr IRRIJan Dirk van ElsasVan Elsas labBarbara Reinhold‐HurekUniv Bremen, University of Bremen, Dept Microbe Plant Interact
2011en
ABI

Аннотация

Roots are the primary site of interaction between plants and microorganisms. To meet food demands in changing climates, improved yields and stress resistance are increasingly important, stimulating efforts to identify factors that affect plant productivity. The role of bacterial endophytes that reside inside plants remains largely unexplored, because analysis of their specific functions is impeded by difficulties in cultivating most prokaryotes. Here, we present the first metagenomic approach to analyze an endophytic bacterial community resident inside roots of rice, one of the most important staple foods. Metagenome sequences were obtained from endophyte cells extracted from roots of field-grown plants. Putative functions were deduced from protein domains or similarity analyses of protein-encoding gene fragments, and allowed insights into the capacities of endophyte cells. This allowed us to predict traits and metabolic processes important for the endophytic lifestyle, suggesting that the endorhizosphere is an exclusive microhabitat requiring numerous adaptations. Prominent features included flagella, plant-polymer-degrading enzymes, protein secretion systems, iron acquisition and storage, quorum sensing, and detoxification of reactive oxygen species. Surprisingly, endophytes might be involved in the entire nitrogen cycle, as protein domains involved in N(2)-fixation, denitrification, and nitrification were detected and selected genes expressed. Our data suggest a high potential of the endophyte community for plant-growth promotion, improvement of plant stress resistance, biocontrol against pathogens, and bioremediation, regardless of their culturability.

Перевод пока недоступен

Идентификаторы

Цитирования и источники

Цитирований: 2Использованных источников: 0