Literature DB >> 17151343

Genome characteristics of facultatively symbiotic Frankia sp. strains reflect host range and host plant biogeography.

Philippe Normand1, Pascal Lapierre, Louis S Tisa, Johann Peter Gogarten, Nicole Alloisio, Emilie Bagnarol, Carla A Bassi, Alison M Berry, Derek M Bickhart, Nathalie Choisne, Arnaud Couloux, Benoit Cournoyer, Stephane Cruveiller, Vincent Daubin, Nadia Demange, Maria Pilar Francino, Eugene Goltsman, Ying Huang, Olga R Kopp, Laurent Labarre, Alla Lapidus, Celine Lavire, Joelle Marechal, Michele Martinez, Juliana E Mastronunzio, Beth C Mullin, James Niemann, Pierre Pujic, Tania Rawnsley, Zoe Rouy, Chantal Schenowitz, Anita Sellstedt, Fernando Tavares, Jeffrey P Tomkins, David Vallenet, Claudio Valverde, Luis G Wall, Ying Wang, Claudine Medigue, David R Benson.   

Abstract

Soil bacteria that also form mutualistic symbioses in plants encounter two major levels of selection. One occurs during adaptation to and survival in soil, and the other occurs in concert with host plant speciation and adaptation. Actinobacteria from the genus Frankia are facultative symbionts that form N(2)-fixing root nodules on diverse and globally distributed angiosperms in the "actinorhizal" symbioses. Three closely related clades of Frankia sp. strains are recognized; members of each clade infect a subset of plants from among eight angiosperm families. We sequenced the genomes from three strains; their sizes varied from 5.43 Mbp for a narrow host range strain (Frankia sp. strain HFPCcI3) to 7.50 Mbp for a medium host range strain (Frankia alni strain ACN14a) to 9.04 Mbp for a broad host range strain (Frankia sp. strain EAN1pec.) This size divergence is the largest yet reported for such closely related soil bacteria (97.8%-98.9% identity of 16S rRNA genes). The extent of gene deletion, duplication, and acquisition is in concert with the biogeographic history of the symbioses and host plant speciation. Host plant isolation favored genome contraction, whereas host plant diversification favored genome expansion. The results support the idea that major genome expansions as well as reductions can occur in facultative symbiotic soil bacteria as they respond to new environments in the context of their symbioses.

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Year:  2006        PMID: 17151343      PMCID: PMC1716269          DOI: 10.1101/gr.5798407

Source DB:  PubMed          Journal:  Genome Res        ISSN: 1088-9051            Impact factor:   9.043


  34 in total

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Authors:  P Simonet; E Navarro; C Rouvier; P Reddell; J Zimpfer; Y Dommergues; R Bardin; P Combarro; J Hamelin; A M Domenach; F Gourbière; Y Prin; J O Dawson; P Normand
Journal:  Environ Microbiol       Date:  1999-12       Impact factor: 5.491

Review 3.  Genes lost and genes found: evolution of bacterial pathogenesis and symbiosis.

Authors:  H Ochman; N A Moran
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Authors:  Meizhong Luo; Rod A Wing
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5.  Low genetic diversity among Frankia spp. strains nodulating sympatric populations of actinorhizal species of Rosaceae, Ceanothus (Rhamnaceae) and Datisca glomerata (Datiscaceae) west of the Sierra Nevada (California).

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Journal:  Can J Microbiol       Date:  2004-12       Impact factor: 2.419

Review 6.  Mobile genetic elements: the agents of open source evolution.

Authors:  Laura S Frost; Raphael Leplae; Anne O Summers; Ariane Toussaint
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  124 in total

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Journal:  J Bacteriol       Date:  2011-12       Impact factor: 3.490

Review 2.  The diversity of actinorhizal symbiosis.

Authors:  Katharina Pawlowski; Kirill N Demchenko
Journal:  Protoplasma       Date:  2012-03-08       Impact factor: 3.356

Review 3.  Phylogenetic framework and molecular signatures for the main clades of the phylum Actinobacteria.

Authors:  Beile Gao; Radhey S Gupta
Journal:  Microbiol Mol Biol Rev       Date:  2012-03       Impact factor: 11.056

4.  Auxin carriers localization drives auxin accumulation in plant cells infected by Frankia in Casuarina glauca actinorhizal nodules.

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Review 5.  Forces that influence the evolution of codon bias.

Authors:  Paul M Sharp; Laura R Emery; Kai Zeng
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6.  Pb2+ tolerance by Frankia sp. strain EAN1pec involves surface-binding.

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Review 7.  Casuarina glauca: a model tree for basic research in actinorhizal symbiosis.

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8.  Micromonospora is a normal occupant of actinorhizal nodules.

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9.  Structural and gene expression analyses of uptake hydrogenases and other proteins involved in nitrogenase protection in Frankia.

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10.  Rhizobial resource associated with epidemic legumes in Tibet.

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