Cargando…
Mining the phytomicrobiome to understand how bacterial coinoculations enhance plant growth
In previous work, we showed that coinoculating Rhizobium leguminosarum bv. viciae 128C53 and Bacillus simplex 30N-5 onto Pisum sativum L. roots resulted in better nodulation and increased plant growth. We now expand this research to include another alpha-rhizobial species as well as a beta-rhizobium...
Autores principales: | , , , , , , , , , , , , , , , |
---|---|
Formato: | Online Artículo Texto |
Lenguaje: | English |
Publicado: |
Frontiers Media S.A.
2015
|
Materias: | |
Acceso en línea: | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4585168/ https://www.ncbi.nlm.nih.gov/pubmed/26442090 http://dx.doi.org/10.3389/fpls.2015.00784 |
_version_ | 1782392146719932416 |
---|---|
author | Maymon, Maskit Martínez-Hidalgo, Pilar Tran, Stephen S. Ice, Tyler Craemer, Karena Anbarchian, Teni Sung, Tiffany Hwang, Lin H. Chou, Minxia Fujishige, Nancy A. Villella, William Ventosa, Jérôme Sikorski, Johannes Sanders, Erin R. Faull, Kym F. Hirsch, Ann M. |
author_facet | Maymon, Maskit Martínez-Hidalgo, Pilar Tran, Stephen S. Ice, Tyler Craemer, Karena Anbarchian, Teni Sung, Tiffany Hwang, Lin H. Chou, Minxia Fujishige, Nancy A. Villella, William Ventosa, Jérôme Sikorski, Johannes Sanders, Erin R. Faull, Kym F. Hirsch, Ann M. |
author_sort | Maymon, Maskit |
collection | PubMed |
description | In previous work, we showed that coinoculating Rhizobium leguminosarum bv. viciae 128C53 and Bacillus simplex 30N-5 onto Pisum sativum L. roots resulted in better nodulation and increased plant growth. We now expand this research to include another alpha-rhizobial species as well as a beta-rhizobium, Burkholderia tuberum STM678. We first determined whether the rhizobia were compatible with B. simplex 30N-5 by cross-streaking experiments, and then Medicago truncatula and Melilotus alba were coinoculated with B. simplex 30N-5 and Sinorhizobium (Ensifer) meliloti to determine the effects on plant growth. Similarly, B. simplex 30N-5 and Bu. tuberum STM678 were coinoculated onto Macroptilium atropurpureum. The exact mechanisms whereby coinoculation results in increased plant growth are incompletely understood, but the synthesis of phytohormones and siderophores, the improved solubilization of inorganic nutrients, and the production of antimicrobial compounds are likely possibilities. Because B. simplex 30N-5 is not widely recognized as a Plant Growth Promoting Bacterial (PGPB) species, after sequencing its genome, we searched for genes proposed to promote plant growth, and then compared these sequences with those from several well studied PGPB species. In addition to genes involved in phytohormone synthesis, we detected genes important for the production of volatiles, polyamines, and antimicrobial peptides as well as genes for such plant growth-promoting traits as phosphate solubilization and siderophore production. Experimental evidence is presented to show that some of these traits, such as polyamine synthesis, are functional in B. simplex 30N-5, whereas others, e.g., auxin production, are not. |
format | Online Article Text |
id | pubmed-4585168 |
institution | National Center for Biotechnology Information |
language | English |
publishDate | 2015 |
publisher | Frontiers Media S.A. |
record_format | MEDLINE/PubMed |
spelling | pubmed-45851682015-10-05 Mining the phytomicrobiome to understand how bacterial coinoculations enhance plant growth Maymon, Maskit Martínez-Hidalgo, Pilar Tran, Stephen S. Ice, Tyler Craemer, Karena Anbarchian, Teni Sung, Tiffany Hwang, Lin H. Chou, Minxia Fujishige, Nancy A. Villella, William Ventosa, Jérôme Sikorski, Johannes Sanders, Erin R. Faull, Kym F. Hirsch, Ann M. Front Plant Sci Plant Science In previous work, we showed that coinoculating Rhizobium leguminosarum bv. viciae 128C53 and Bacillus simplex 30N-5 onto Pisum sativum L. roots resulted in better nodulation and increased plant growth. We now expand this research to include another alpha-rhizobial species as well as a beta-rhizobium, Burkholderia tuberum STM678. We first determined whether the rhizobia were compatible with B. simplex 30N-5 by cross-streaking experiments, and then Medicago truncatula and Melilotus alba were coinoculated with B. simplex 30N-5 and Sinorhizobium (Ensifer) meliloti to determine the effects on plant growth. Similarly, B. simplex 30N-5 and Bu. tuberum STM678 were coinoculated onto Macroptilium atropurpureum. The exact mechanisms whereby coinoculation results in increased plant growth are incompletely understood, but the synthesis of phytohormones and siderophores, the improved solubilization of inorganic nutrients, and the production of antimicrobial compounds are likely possibilities. Because B. simplex 30N-5 is not widely recognized as a Plant Growth Promoting Bacterial (PGPB) species, after sequencing its genome, we searched for genes proposed to promote plant growth, and then compared these sequences with those from several well studied PGPB species. In addition to genes involved in phytohormone synthesis, we detected genes important for the production of volatiles, polyamines, and antimicrobial peptides as well as genes for such plant growth-promoting traits as phosphate solubilization and siderophore production. Experimental evidence is presented to show that some of these traits, such as polyamine synthesis, are functional in B. simplex 30N-5, whereas others, e.g., auxin production, are not. Frontiers Media S.A. 2015-09-24 /pmc/articles/PMC4585168/ /pubmed/26442090 http://dx.doi.org/10.3389/fpls.2015.00784 Text en Copyright © 2015 Maymon, Martínez-Hidalgo, Tran, Ice, Craemer, Anbarchian, Sung, Hwang, Chou, Fujishige, Villella, Ventosa, Sikorski, Sanders, Faull and Hirsch. 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 Maymon, Maskit Martínez-Hidalgo, Pilar Tran, Stephen S. Ice, Tyler Craemer, Karena Anbarchian, Teni Sung, Tiffany Hwang, Lin H. Chou, Minxia Fujishige, Nancy A. Villella, William Ventosa, Jérôme Sikorski, Johannes Sanders, Erin R. Faull, Kym F. Hirsch, Ann M. Mining the phytomicrobiome to understand how bacterial coinoculations enhance plant growth |
title | Mining the phytomicrobiome to understand how bacterial coinoculations enhance plant growth |
title_full | Mining the phytomicrobiome to understand how bacterial coinoculations enhance plant growth |
title_fullStr | Mining the phytomicrobiome to understand how bacterial coinoculations enhance plant growth |
title_full_unstemmed | Mining the phytomicrobiome to understand how bacterial coinoculations enhance plant growth |
title_short | Mining the phytomicrobiome to understand how bacterial coinoculations enhance plant growth |
title_sort | mining the phytomicrobiome to understand how bacterial coinoculations enhance plant growth |
topic | Plant Science |
url | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4585168/ https://www.ncbi.nlm.nih.gov/pubmed/26442090 http://dx.doi.org/10.3389/fpls.2015.00784 |
work_keys_str_mv | AT maymonmaskit miningthephytomicrobiometounderstandhowbacterialcoinoculationsenhanceplantgrowth AT martinezhidalgopilar miningthephytomicrobiometounderstandhowbacterialcoinoculationsenhanceplantgrowth AT transtephens miningthephytomicrobiometounderstandhowbacterialcoinoculationsenhanceplantgrowth AT icetyler miningthephytomicrobiometounderstandhowbacterialcoinoculationsenhanceplantgrowth AT craemerkarena miningthephytomicrobiometounderstandhowbacterialcoinoculationsenhanceplantgrowth AT anbarchianteni miningthephytomicrobiometounderstandhowbacterialcoinoculationsenhanceplantgrowth AT sungtiffany miningthephytomicrobiometounderstandhowbacterialcoinoculationsenhanceplantgrowth AT hwanglinh miningthephytomicrobiometounderstandhowbacterialcoinoculationsenhanceplantgrowth AT chouminxia miningthephytomicrobiometounderstandhowbacterialcoinoculationsenhanceplantgrowth AT fujishigenancya miningthephytomicrobiometounderstandhowbacterialcoinoculationsenhanceplantgrowth AT villellawilliam miningthephytomicrobiometounderstandhowbacterialcoinoculationsenhanceplantgrowth AT ventosajerome miningthephytomicrobiometounderstandhowbacterialcoinoculationsenhanceplantgrowth AT sikorskijohannes miningthephytomicrobiometounderstandhowbacterialcoinoculationsenhanceplantgrowth AT sanderserinr miningthephytomicrobiometounderstandhowbacterialcoinoculationsenhanceplantgrowth AT faullkymf miningthephytomicrobiometounderstandhowbacterialcoinoculationsenhanceplantgrowth AT hirschannm miningthephytomicrobiometounderstandhowbacterialcoinoculationsenhanceplantgrowth |