Literature DB >> 11391463

The Diversity of Archaea and Bacteria in Association with the Roots of Zea mays L.

M.K. Chelius1, E.W. Triplett.   

Abstract

The diversity of bacteria and archaea associating on the surface and interior of maize roots (Zea mays L.) was investigated. A bacterial 16S rDNA primer was designed to amplify bacterial sequences directly from maize roots by PCR to the exclusion of eukaryotic and chloroplast DNA. The mitochondrial sequence from maize was easily separated from the PCR-amplified bacterial sequences by size fractionation. The culturable component of the bacterial community was also assessed, reflecting a community composition different from that of the clone library. The phylogenetic overlap between organisms obtained by cultivation and those identified by direct PCR amplification of 16S rDNA was 48%. Only 4 bacterial divisions were found in the culture collection, which represented 27 phylotypes, whereas 6 divisions were identified in the clonal analysis, comprising 74 phylotypes, including a member of the OP10 candidate division originally described as a novel division level lineage in a Yellowstone hot spring. The predominant group in the culture collection was the actinobacteria and within the clone library, the a-proteobacteria predominated. The population of maize-associated proteobacteria resembled the proteobacterial population of a typical soil community within which resided a subset of specific plant-associated bacteria, such as Rhizobium- and Herbaspirillum-related phylotypes. The representation of phylotypes within other divisions (OP10 and Acidobacterium) suggests that maize roots support a distinct bacterial community. The diversity within the archaeal domain was low. Of the 50 clones screened, 6 unique sequence types were identified, and 5 of these were highly related to each other (sharing 98% sequence identity). The archaeal sequences clustered with good bootstrap support near Marine group I (crenarchaea) and with Marine group II (euryarchaea) uncultured archaea. The results suggest that maize supports a diverse root-associated microbial community composed of species that for the first time have been described as inhabitants of a plant-root environment.

Entities:  

Year:  2001        PMID: 11391463     DOI: 10.1007/s002480000087

Source DB:  PubMed          Journal:  Microb Ecol        ISSN: 0095-3628            Impact factor:   4.552


  213 in total

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5.  Microbial and Functional Diversity within the Phyllosphere of Espeletia Species in an Andean High-Mountain Ecosystem.

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6.  Functional overlap of the Arabidopsis leaf and root microbiota.

Authors:  Yang Bai; Daniel B Müller; Girish Srinivas; Ruben Garrido-Oter; Eva Potthoff; Matthias Rott; Nina Dombrowski; Philipp C Münch; Stijn Spaepen; Mitja Remus-Emsermann; Bruno Hüttel; Alice C McHardy; Julia A Vorholt; Paul Schulze-Lefert
Journal:  Nature       Date:  2015-12-02       Impact factor: 49.962

7.  Impact of Bt corn on rhizospheric and soil eubacterial communities and on beneficial mycorrhizal symbiosis in experimental microcosms.

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8.  Cultivation of mesophilic soil crenarchaeotes in enrichment cultures from plant roots.

Authors:  Holly M Simon; Courtney E Jahn; Luke T Bergerud; Marek K Sliwinski; Paul J Weimer; David K Willis; Robert M Goodman
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9.  Response of bacterial pdo1, nah, and C12O genes to aged soil PAH pollution in a coke factory area.

Authors:  Xue-Mei Han; Yu-Rong Liu; Yuan-Ming Zheng; Xiao-Xia Zhang; Ji-Zheng He
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Review 10.  Ammonia-oxidizing archaea in biological interactions.

Authors:  Jong-Geol Kim; Khaled S Gazi; Samuel Imisi Awala; Man-Young Jung; Sung-Keun Rhee
Journal:  J Microbiol       Date:  2021-02-23       Impact factor: 3.422

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