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1.
Plant Cell Physiol ; 61(9): 1631-1645, 2020 Sep 01.
Article in English | MEDLINE | ID: mdl-32618998

ABSTRACT

Methionine sulfoxide reductase B (MsrB) is involved in oxidative stress or defense responses in plants. However, little is known about its role in legume-rhizobium symbiosis. In this study, an MsrB gene was identified from Astragalus sinicus and its function in symbiosis was characterized. AsMsrB was induced under phosphorus starvation and displayed different expression patterns under symbiotic and nonsymbiotic conditions. Hydrogen peroxide or methyl viologen treatment enhanced the transcript level of AsMsrB in roots and nodules. Subcellular localization showed that AsMsrB was localized in the cytoplasm of onion epidermal cells and co-localized with rhizobia in nodules. Plants with AsMsrB-RNAi hairy roots exhibited significant decreases in nodule number, nodule nitrogenase activity and fresh weight of the aerial part, as well as an abnormal nodule and symbiosome development. Statistical analysis of infection events showed that plants with AsMsrB-RNAi hairy roots had significant decreases in the number of root hair curling events, infection threads and nodule primordia compared with the control. The content of hydrogen peroxide increased in AsMsrB-RNAi roots but decreased in AsMsrB overexpression roots at the early stage of infection. The transcriptome analysis showed synergistic modulations of the expression of genes involved in reactive oxygen species generation and scavenging, defense and pathogenesis and early nodulation. In addition, a candidate protein interacting with AsMsrB was identified and confirmed by bimolecular fluorescence complementation. Taken together, our results indicate that AsMsrB plays an essential role in nodule development and symbiotic nitrogen fixation by affecting the redox homeostasis in roots and nodules.


Subject(s)
Astragalus Plant/physiology , Mesorhizobium/physiology , Methionine Sulfoxide Reductases/physiology , Plant Proteins/physiology , Symbiosis , Astragalus Plant/enzymology , Astragalus Plant/genetics , Astragalus Plant/microbiology , Conserved Sequence/genetics , Gene Expression Profiling , Methionine Sulfoxide Reductases/genetics , Methionine Sulfoxide Reductases/metabolism , Nitrogen Fixation , Oxidative Stress , Phosphorus/deficiency , Plant Proteins/genetics , Plant Proteins/metabolism , Plant Root Nodulation/physiology , Plant Roots/metabolism , Plant Roots/microbiology , Root Nodules, Plant/ultrastructure , Sequence Alignment , Symbiosis/physiology
2.
New Phytol ; 210(3): 1011-21, 2016 May.
Article in English | MEDLINE | ID: mdl-26790563

ABSTRACT

In root nodules rhizobia enter host cells via infection threads. The release of bacteria to a host cell is possible from cell wall-free regions of the infection thread. We hypothesized that the VAMP721d and VAMP721e exocytotic pathway, identified before in Medicago truncatula, has a role in the local modification of cell wall during the release of rhizobia. To clarify the role of VAMP721d and VAMP721e we used Glycine max, a plant with a determinate type of nodule. The localization of the main polysaccharide compounds of primary cell walls was analysed in control vs nodules with partially silenced GmVAMP721d. The silencing of GmVAMP721d blocked the release of rhizobia. Instead of rhizobia-containing membrane compartments - symbiosomes - the infected cells contained big clusters of bacteria embedded in a matrix of methyl-esterified and de-methyl-esterified pectin. These clusters were surrounded by a membrane. We found that GmVAMP721d-positive vesicles were not transporting methyl-esterified pectin. We hypothesized that they may deliver the enzymes involved in pectin turnover. Subsequently, we found that GmVAMP721d is partly co-localized with pectate lyase. Therefore, the biological role of VAMP721d may be explained by its action in delivering pectin-modifying enzymes to the site of release.


Subject(s)
Glycine max/metabolism , Glycine max/microbiology , Pectins/metabolism , Plant Proteins/metabolism , Rhizobium/physiology , Root Nodules, Plant/microbiology , Cellulose/metabolism , Esterification , Gene Silencing , Polysaccharide-Lyases/metabolism , Protein Transport , Root Nodules, Plant/metabolism , Root Nodules, Plant/ultrastructure , Symbiosis
3.
Protoplasma ; 252(6): 1505-17, 2015 Nov.
Article in English | MEDLINE | ID: mdl-25743038

ABSTRACT

Rhizobia are able to establish a beneficial interaction with legumes by forming a new organ, called the symbiotic root nodule, which is a unique ecological niche for rhizobial nitrogen fixation. Rhizobial infection has many similarities with pathogenic infection and induction of defence responses accompanies both interactions, but defence responses are induced to a lesser extent during rhizobial infection. However, strong defence responses may result from incompatible interactions between legumes and rhizobia due to a mutation in either macro- or microsymbiont. The aim of this research was to analyse different plant defence reactions in response to Rhizobium infection for several pea (Pisum sativum) mutants that result in ineffective symbiosis. Pea mutants were examined by histochemical and immunocytochemical analyses, light, fluorescence and transmission electron microscopy and quantitative real-time PCR gene expression analysis. It was observed that mutations in pea symbiotic genes sym33 (PsIPD3/PsCYCLOPS encoding a transcriptional factor) and sym40 (PsEFD encoding a putative negative regulator of the cytokinin response) led to suberin depositions in ineffective nodules, and in the sym42 there were callose depositions in infection thread (IT) and host cell walls. The increase in deposition of unesterified pectin in IT walls was observed for mutants in the sym33 and sym42; for mutant in the sym42, unesterified pectin was also found around degrading bacteroids. In mutants in the genes sym33 and sym40, an increase in the expression level of a gene encoding peroxidase was observed. In the genes sym40 and sym42, an increase in the expression levels of genes encoding a marker of hypersensitive reaction and PR10 protein was demonstrated. Thus, a range of plant defence responses like suberisation, callose and unesterified pectin deposition as well as activation of defence genes can be triggered by different pea single mutations that cause perception of an otherwise beneficial strain of Rhizobium as a pathogen.


Subject(s)
Gene Expression Regulation, Plant , Mutation , Pisum sativum/microbiology , Plant Proteins/genetics , Plants, Genetically Modified/microbiology , Rhizobium leguminosarum/physiology , Root Nodules, Plant/microbiology , Symbiosis/genetics , Transcription Factors/genetics , Genotype , Glucans/metabolism , Immunohistochemistry , Lipids , Microscopy, Electron, Transmission , Microscopy, Fluorescence , Nitrogen Fixation , Pisum sativum/genetics , Pisum sativum/metabolism , Pisum sativum/ultrastructure , Pectins/metabolism , Phenotype , Plant Proteins/metabolism , Plants, Genetically Modified/genetics , Plants, Genetically Modified/metabolism , Plants, Genetically Modified/ultrastructure , Real-Time Polymerase Chain Reaction , Root Nodules, Plant/genetics , Root Nodules, Plant/metabolism , Root Nodules, Plant/ultrastructure , Soil Microbiology , Time Factors
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