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An increasing opine carbon bias in artificial exudation systems and genetically modified plant rhizospheres leads to an increasing reshaping of bacterial populations

Samuel Mondy; Aurore Lenglet; Amelie Beury‐Cirou; Celestin Libanga; Pascal Ratet; Denis Faure; Yves Dessaux
Molecular Ecology · Vol. 23, Issue 19 · pp. 4846-4861 · 2014

Abstract

To investigate how exudation shapes root‐associated bacterial populations, transgenic A rabidopsis thaliana plants that exuded the xenotopic compound octopine at low and high rates were grown in a nonsterile soil. Enumerations of both cultivable and octopine‐degrading bacteria demonstrated that the ratios of octopine degraders increased along with octopine concentration. An artificial exudation system was also set up in which octopine was brought at four ratios. The density of octopine‐degrading bacteria directly correlated with the input of octopine. Bacterial diversity was analysed by rrs amplicon pyrosequencing. Ensifer and P seudomonas were significantly more frequently detected in soil amended with artificial exudates. However, the density of P seudomonas increased as a response to carbon supplementation while that of E nsifer only correlated with octopine concentrations possibly in relation to two opposed colonization strategies of rhizosphere bacteria, that is, copiotrophy and oligotrophy.

Bibliographic Information

JournalMolecular Ecology
PublisherWiley
Publication Date2014-10-01
Publication Year2014
Volume23
Issue19
Pages4846-4861
Document TypeJournal Article
Print ISSN0962-1083
eISSN1365-294X
DOI10.1111/mec.12890
SubjectEcology & Organismal Biology

Access Information

NARA Access Coverage1997-01-01~Current
Journal Homepagehttps://onlinelibrary.wiley.com/loi/1365294X
Publisher PageOpen Publisher Page
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