Proteomic Analysis of the Soybean Symbiosome Identifies New Symbiotic Proteins
Legumes form a symbiosis with rhizobia in which the plant provides an energy source to the rhizobia bacteria that it uses to fix atmospheric nitrogen. This nitrogen is provided to the legume plant, allowing it to grow without the addition of nitrogen fertilizer. As part of the symbiosis, the bacteri...
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Published in | Molecular & cellular proteomics Vol. 14; no. 5; pp. 1301 - 1322 |
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Main Authors | , , , , , , |
Format | Journal Article |
Language | English |
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Elsevier Inc
01.05.2015
The American Society for Biochemistry and Molecular Biology |
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Abstract | Legumes form a symbiosis with rhizobia in which the plant provides an energy source to the rhizobia bacteria that it uses to fix atmospheric nitrogen. This nitrogen is provided to the legume plant, allowing it to grow without the addition of nitrogen fertilizer. As part of the symbiosis, the bacteria in the infected cells of a new root organ, the nodule, are surrounded by a plant-derived membrane, the symbiosome membrane, which becomes the interface between the symbionts. Fractions containing the symbiosome membrane (SM) and material from the lumen of the symbiosome (peribacteroid space or PBS) were isolated from soybean root nodules and analyzed using nongel proteomic techniques. Bicarbonate stripping and chloroform-methanol extraction of isolated SM were used to reduce complexity of the samples and enrich for hydrophobic integral membrane proteins. One hundred and ninety-seven proteins were identified as components of the SM, with an additional fifteen proteins identified from peripheral membrane and PBS protein fractions. Proteins involved in a range of cellular processes such as metabolism, protein folding and degradation, membrane trafficking, and solute transport were identified. These included a number of proteins previously localized to the SM, such as aquaglyceroporin nodulin 26, sulfate transporters, remorin, and Rab7 homologs. Among the proteome were a number of putative transporters for compounds such as sulfate, calcium, hydrogen ions, peptide/dicarboxylate, and nitrate, as well as transporters for which the substrate is not easy to predict. Analysis of the promoter activity for six genes encoding putative SM proteins showed nodule specific expression, with five showing expression only in infected cells. Localization of two proteins was confirmed using GFP-fusion experiments. The data have been deposited to the ProteomeXchange with identifier PXD001132. This proteome will provide a rich resource for the study of the legume-rhizobium symbiosis. |
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AbstractList | Legumes form a symbiosis with rhizobia in which the plant provides an energy source to the rhizobia bacteria that it uses to fix atmospheric nitrogen. This nitrogen is provided to the legume plant, allowing it to grow without the addition of nitrogen fertilizer. As part of the symbiosis, the bacteria in the infected cells of a new root organ, the nodule, are surrounded by a plant-derived membrane, the symbiosome membrane, which becomes the interface between the symbionts. Fractions containing the symbiosome membrane (SM) and material from the lumen of the symbiosome (peribacteroid space or PBS) were isolated from soybean root nodules and analyzed using nongel proteomic techniques. Bicarbonate stripping and chloroform-methanol extraction of isolated SM were used to reduce complexity of the samples and enrich for hydrophobic integral membrane proteins. One hundred and ninety-seven proteins were identified as components of the SM, with an additional fifteen proteins identified from peripheral membrane and PBS protein fractions. Proteins involved in a range of cellular processes such as metabolism, protein folding and degradation, membrane trafficking, and solute transport were identified. These included a number of proteins previously localized to the SM, such as aquaglyceroporin nodulin 26, sulfate transporters, remorin, and Rab7 homologs. Among the proteome were a number of putative transporters for compounds such as sulfate, calcium, hydrogen ions, peptide/dicarboxylate, and nitrate, as well as transporters for which the substrate is not easy to predict. Analysis of the promoter activity for six genes encoding putative SM proteins showed nodule specific expression, with five showing expression only in infected cells. Localization of two proteins was confirmed using GFP-fusion experiments. The data have been deposited to the ProteomeXchange with identifier PXD001132. This proteome will provide a rich resource for the study of the legume-rhizobium symbiosis. |
Author | Brear, Ella M. Clarke, Victoria C. Loughlin, Patrick C. Smith, Penelope M.C. Day, David A. Gavrin, Aleksandr Chen, Chi |
Author_xml | – sequence: 1 givenname: Victoria C. surname: Clarke fullname: Clarke, Victoria C. organization: University of Sydney, School of Biological Sciences, Sydney Australia – sequence: 2 givenname: Patrick C. surname: Loughlin fullname: Loughlin, Patrick C. organization: University of Sydney, School of Biological Sciences, Sydney Australia – sequence: 3 givenname: Aleksandr surname: Gavrin fullname: Gavrin, Aleksandr organization: University of Sydney, School of Biological Sciences, Sydney Australia – sequence: 4 givenname: Chi surname: Chen fullname: Chen, Chi organization: University of Sydney, School of Biological Sciences, Sydney Australia – sequence: 5 givenname: Ella M. surname: Brear fullname: Brear, Ella M. organization: University of Sydney, School of Biological Sciences, Sydney Australia – sequence: 6 givenname: David A. surname: Day fullname: Day, David A. organization: University of Sydney, School of Biological Sciences, Sydney Australia – sequence: 7 givenname: Penelope M.C. surname: Smith fullname: Smith, Penelope M.C. email: penny.smith@sydney.edu.au organization: University of Sydney, School of Biological Sciences, Sydney Australia |
BackLink | https://www.ncbi.nlm.nih.gov/pubmed/25724908$$D View this record in MEDLINE/PubMed |
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Snippet | Legumes form a symbiosis with rhizobia in which the plant provides an energy source to the rhizobia bacteria that it uses to fix atmospheric nitrogen. This... |
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SubjectTerms | Amino Acid Sequence Bacteria Biological Transport Carrier Proteins - genetics Carrier Proteins - isolation & purification Carrier Proteins - metabolism Cell Membrane - chemistry Cell Membrane - metabolism Glycine max - chemistry Glycine max - genetics Glycine max - metabolism Liquid-Liquid Extraction Membrane Proteins - genetics Membrane Proteins - isolation & purification Membrane Proteins - metabolism Membrane Transport Proteins - genetics Membrane Transport Proteins - isolation & purification Membrane Transport Proteins - metabolism Metabolic Networks and Pathways - genetics Molecular Sequence Annotation Molecular Sequence Data Phosphoproteins - genetics Phosphoproteins - isolation & purification Phosphoproteins - metabolism Plant Cells - chemistry Plant Cells - metabolism Plant Proteins - genetics Plant Proteins - isolation & purification Plant Proteins - metabolism Proteome - analysis Proteome - genetics Proteome - metabolism rab GTP-Binding Proteins - genetics rab GTP-Binding Proteins - isolation & purification rab GTP-Binding Proteins - metabolism rab7 GTP-Binding Proteins Rhizobium - chemistry Rhizobium - genetics Rhizobium - metabolism Root Nodules, Plant - chemistry Root Nodules, Plant - genetics Root Nodules, Plant - metabolism Symbiosis - physiology |
Title | Proteomic Analysis of the Soybean Symbiosome Identifies New Symbiotic Proteins |
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