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Pearl Millet Genetic Traits Shape Rhizobacterial Diversity and Modulate Rhizosphere Aggregation

Root exudation contributes to soil carbon allocation and also to microbial C and energy supply, which subsequently impacts soil aggregation around roots. Biologically-driven soil structural formation is an important driver of soil fertility. Plant genetic determinants of exudation and more generally...

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Autores principales: Ndour, Papa M. S., Gueye, Mariama, Barakat, Mohamed, Ortet, Philippe, Bertrand-Huleux, Marie, Pablo, Anne-Laure, Dezette, Damien, Chapuis-Lardy, Lydie, Assigbetsé, Komi, Kane, Ndjido Ardo, Vigouroux, Yves, Achouak, Wafa, Ndoye, Ibrahima, Heulin, Thierry, Cournac, Laurent
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Frontiers Media S.A. 2017
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5529415/
https://www.ncbi.nlm.nih.gov/pubmed/28798755
http://dx.doi.org/10.3389/fpls.2017.01288
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author Ndour, Papa M. S.
Gueye, Mariama
Barakat, Mohamed
Ortet, Philippe
Bertrand-Huleux, Marie
Pablo, Anne-Laure
Dezette, Damien
Chapuis-Lardy, Lydie
Assigbetsé, Komi
Kane, Ndjido Ardo
Vigouroux, Yves
Achouak, Wafa
Ndoye, Ibrahima
Heulin, Thierry
Cournac, Laurent
author_facet Ndour, Papa M. S.
Gueye, Mariama
Barakat, Mohamed
Ortet, Philippe
Bertrand-Huleux, Marie
Pablo, Anne-Laure
Dezette, Damien
Chapuis-Lardy, Lydie
Assigbetsé, Komi
Kane, Ndjido Ardo
Vigouroux, Yves
Achouak, Wafa
Ndoye, Ibrahima
Heulin, Thierry
Cournac, Laurent
author_sort Ndour, Papa M. S.
collection PubMed
description Root exudation contributes to soil carbon allocation and also to microbial C and energy supply, which subsequently impacts soil aggregation around roots. Biologically-driven soil structural formation is an important driver of soil fertility. Plant genetic determinants of exudation and more generally of factors promoting rhizosphere soil aggregation are largely unknown. Here, we characterized rhizosphere aggregation in a panel of 86 pearl millet inbred lines using a ratio of root-adhering soil dry mass per root tissue dry mass (RAS/RT). This ratio showed significant variations between lines, with a roughly 2-fold amplitude between lowest and highest average values. For 9 lines with contrasting aggregation properties, we then compared the bacterial diversity and composition in root-adhering soil. Bacterial α-diversity metrics increased with the “RAS/RT ratio.” Regarding taxonomic composition, the Rhizobiales were stimulated in lines showing high aggregation level whereas Bacillales were more abundant in lines with low ratio. 184 strains of cultivable exopolysaccharides-producing bacteria have been isolated from the rhizosphere of some lines, including members from Rhizobiales and Bacillales. However, at this stage, we could not find a correlation between abundance of EPS-producing species in bacterial communities and the ratio RAS/RT. These results illustrated the impact of cereals genetic trait variation on soil physical properties and microbial diversity. This opens the possibility of considering plant breeding to help management of soil carbon content and physical characteristics through carbon rhizodeposition in soil.
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spelling pubmed-55294152017-08-10 Pearl Millet Genetic Traits Shape Rhizobacterial Diversity and Modulate Rhizosphere Aggregation Ndour, Papa M. S. Gueye, Mariama Barakat, Mohamed Ortet, Philippe Bertrand-Huleux, Marie Pablo, Anne-Laure Dezette, Damien Chapuis-Lardy, Lydie Assigbetsé, Komi Kane, Ndjido Ardo Vigouroux, Yves Achouak, Wafa Ndoye, Ibrahima Heulin, Thierry Cournac, Laurent Front Plant Sci Plant Science Root exudation contributes to soil carbon allocation and also to microbial C and energy supply, which subsequently impacts soil aggregation around roots. Biologically-driven soil structural formation is an important driver of soil fertility. Plant genetic determinants of exudation and more generally of factors promoting rhizosphere soil aggregation are largely unknown. Here, we characterized rhizosphere aggregation in a panel of 86 pearl millet inbred lines using a ratio of root-adhering soil dry mass per root tissue dry mass (RAS/RT). This ratio showed significant variations between lines, with a roughly 2-fold amplitude between lowest and highest average values. For 9 lines with contrasting aggregation properties, we then compared the bacterial diversity and composition in root-adhering soil. Bacterial α-diversity metrics increased with the “RAS/RT ratio.” Regarding taxonomic composition, the Rhizobiales were stimulated in lines showing high aggregation level whereas Bacillales were more abundant in lines with low ratio. 184 strains of cultivable exopolysaccharides-producing bacteria have been isolated from the rhizosphere of some lines, including members from Rhizobiales and Bacillales. However, at this stage, we could not find a correlation between abundance of EPS-producing species in bacterial communities and the ratio RAS/RT. These results illustrated the impact of cereals genetic trait variation on soil physical properties and microbial diversity. This opens the possibility of considering plant breeding to help management of soil carbon content and physical characteristics through carbon rhizodeposition in soil. Frontiers Media S.A. 2017-07-27 /pmc/articles/PMC5529415/ /pubmed/28798755 http://dx.doi.org/10.3389/fpls.2017.01288 Text en Copyright © 2017 Ndour, Gueye, Barakat, Ortet, Bertrand-Huleux, Pablo, Dezette, Chapuis-Lardy, Assigbetsé, Kane, Vigouroux, Achouak, Ndoye, Heulin and Cournac. http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License (CC BY). The use, distribution or reproduction in other forums is permitted, provided the original author(s) or licensor are credited and that the original publication in this journal is cited, in accordance with accepted academic practice. No use, distribution or reproduction is permitted which does not comply with these terms.
spellingShingle Plant Science
Ndour, Papa M. S.
Gueye, Mariama
Barakat, Mohamed
Ortet, Philippe
Bertrand-Huleux, Marie
Pablo, Anne-Laure
Dezette, Damien
Chapuis-Lardy, Lydie
Assigbetsé, Komi
Kane, Ndjido Ardo
Vigouroux, Yves
Achouak, Wafa
Ndoye, Ibrahima
Heulin, Thierry
Cournac, Laurent
Pearl Millet Genetic Traits Shape Rhizobacterial Diversity and Modulate Rhizosphere Aggregation
title Pearl Millet Genetic Traits Shape Rhizobacterial Diversity and Modulate Rhizosphere Aggregation
title_full Pearl Millet Genetic Traits Shape Rhizobacterial Diversity and Modulate Rhizosphere Aggregation
title_fullStr Pearl Millet Genetic Traits Shape Rhizobacterial Diversity and Modulate Rhizosphere Aggregation
title_full_unstemmed Pearl Millet Genetic Traits Shape Rhizobacterial Diversity and Modulate Rhizosphere Aggregation
title_short Pearl Millet Genetic Traits Shape Rhizobacterial Diversity and Modulate Rhizosphere Aggregation
title_sort pearl millet genetic traits shape rhizobacterial diversity and modulate rhizosphere aggregation
topic Plant Science
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5529415/
https://www.ncbi.nlm.nih.gov/pubmed/28798755
http://dx.doi.org/10.3389/fpls.2017.01288
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