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1.
Plant J ; 111(5): 1397-1410, 2022 09.
Artigo em Inglês | MEDLINE | ID: mdl-35792830

RESUMO

Transposable elements (TEs) constitute a large proportion of genomes of multicellular eukaryotes, including flowering plants. TEs are normally maintained in a silenced state and their transpositions rarely occur. Hybridization between distant species has been regarded as a 'shock' that stimulates genome reorganization, including TE mobilization. However, whether crosses between genetically close parents that result in viable and fertile offspring can induce TE transpositions has remained unclear. Here, we investigated the activation of long terminal repeat (LTR) retrotransposons in three Lotus japonicus recombinant inbred line (RIL) populations. We found that at least six LTR retrotransposon families were activated and transposed in 78% of the RILs investigated. LORE1a, one of the transposed LTR retrotransposons, showed transgenerational epigenetic activation, indicating the long-term effects of epigenetic instability induced by hybridization. Our study highlights TE activation as an unexpectedly common event in plant reproduction.


Assuntos
Lotus , Retroelementos , Evolução Molecular , Genoma de Planta/genética , Hibridização Genética , Lotus/genética , Plantas/genética , Retroelementos/genética , Sequências Repetidas Terminais/genética
2.
Proc Natl Acad Sci U S A ; 117(3): 1806-1815, 2020 01 21.
Artigo em Inglês | MEDLINE | ID: mdl-31900357

RESUMO

Leguminous plants establish endosymbiotic associations with rhizobia and form root nodules in which the rhizobia fix atmospheric nitrogen. The host plant and intracellular rhizobia strictly control this symbiotic nitrogen fixation. We recently reported a Lotus japonicus Fix- mutant, apn1 (aspartic peptidase nodule-induced 1), that impairs symbiotic nitrogen fixation. APN1 encodes a nodule-specific aspartic peptidase involved in the Fix- phenotype in a rhizobial strain-specific manner. This host-strain specificity implies that some molecular interactions between host plant APN1 and rhizobial factors are required, although the biological function of APN1 in nodules and the mechanisms governing the interactions are unknown. To clarify how rhizobial factors are involved in strain-specific nitrogen fixation, we explored transposon mutants of Mesorhizobium loti strain TONO, which normally form Fix- nodules on apn1 roots, and identified TONO mutants that formed Fix+ nodules on apn1 The identified causal gene encodes an autotransporter, part of a protein secretion system of Gram-negative bacteria. Expression of the autotransporter gene in M. loti strain MAFF3030399, which normally forms Fix+ nodules on apn1 roots, resulted in Fix- nodules. The autotransporter of TONO functions to secrete a part of its own protein (a passenger domain) into extracellular spaces, and the recombinant APN1 protein cleaved the passenger protein in vitro. The M. loti autotransporter showed the activity to induce the genes involved in nodule senescence in a dose-dependent manner. Therefore, we conclude that the nodule-specific aspartic peptidase, APN1, suppresses negative effects of the rhizobial autotransporter in order to maintain effective symbiotic nitrogen fixation in root nodules.


Assuntos
Lotus/metabolismo , Fixação de Nitrogênio/fisiologia , Rhizobium/metabolismo , Simbiose/fisiologia , Sistemas de Secreção Tipo V/metabolismo , Proteínas de Bactérias/química , Proteínas de Bactérias/genética , Proteínas de Bactérias/metabolismo , Regulação da Expressão Gênica de Plantas , Genes Bacterianos/genética , Bactérias Gram-Negativas , Mesorhizobium/genética , Mesorhizobium/metabolismo , Modelos Moleculares , Fixação de Nitrogênio/genética , Fenótipo , Raízes de Plantas/crescimento & desenvolvimento , Raízes de Plantas/metabolismo , Conformação Proteica , Domínios Proteicos , Rhizobium/genética , Nódulos Radiculares de Plantas/crescimento & desenvolvimento , Nódulos Radiculares de Plantas/metabolismo , Simbiose/genética , Transcriptoma , Sistemas de Secreção Tipo V/química , Sistemas de Secreção Tipo V/genética
3.
PLoS One ; 14(9): e0222469, 2019.
Artigo em Inglês | MEDLINE | ID: mdl-31518373

RESUMO

Cultivated soybean (Glycine max) carrying the Rj2 allele restricts nodulation with specific Bradyrhizobium strains via host immunity, mediated by rhizobial type III secretory protein NopP and the host resistance protein Rj2. Here we found that the single isoleucine residue I490 in Rj2 is required for induction of symbiotic incompatibility. Furthermore, we investigated the geographical distribution of the Rj2-genotype soybean in a large set of germplasm by single nucleotide polymorphism (SNP) genotyping using a SNP marker for I490. By allelic comparison of 79 accessions in the Japanese soybean mini-core collection, we suggest substitution of a single amino acid residue (R490 to I490) in Rj2 induces symbiotic incompatibility with Bradyrhizobium diazoefficiens USDA 122. The importance of I490 was verified by complementation of rj2-soybean by the dominant allele encoding the Rj2 protein containing I490 residue. The Rj2 allele was also found in Glycine soja, the wild progenitor of G. max, and their single amino acid polymorphisms were associated with the Rj2-nodulation phenotype. By SNP genotyping against 1583 soybean accessions, we detected the Rj2-genotype in 5.4% of G. max and 7.7% of G. soja accessions. Distribution of the Rj2-genotype soybean plants was relatively concentrated in the temperate Asian region. These results provide important information about the mechanism of host genotype-specific symbiotic incompatibility mediated by host immunity and suggest that the Rj2 gene has been maintained by environmental conditions during the process of soybean domestication.


Assuntos
Aminoácidos/genética , Bradyrhizobium/genética , Glycine max/genética , Glycine max/microbiologia , Proteínas de Soja/genética , Simbiose/genética , Sistemas de Secreção Tipo III/genética , Alelos , Genótipo , Fenótipo , Nodulação/genética , Raízes de Plantas/genética , Raízes de Plantas/microbiologia , Polimorfismo de Nucleotídeo Único/genética , Rhizobium/genética
4.
Elife ; 72018 10 04.
Artigo em Inglês | MEDLINE | ID: mdl-30284535

RESUMO

Morphogens provide positional information and their concentration is key to the organized development of multicellular organisms. Nitrogen-fixing root nodules are unique organs induced by Nod factor-producing bacteria. Localized production of Nod factors establishes a developmental field within the root where plant cells are reprogrammed to form infection threads and primordia. We found that regulation of Nod factor levels by Lotus japonicus is required for the formation of nitrogen-fixing organs, determining the fate of this induced developmental program. Our analysis of plant and bacterial mutants shows that a host chitinase modulates Nod factor levels possibly in a structure-dependent manner. In Lotus, this is required for maintaining Nod factor signalling in parallel with the elongation of infection threads within the nodule cortex, while root hair infection and primordia formation are not influenced. Our study shows that infected nodules require balanced levels of Nod factors for completing their transition to functional, nitrogen-fixing organs.


Assuntos
Quitinases/genética , Bactérias Fixadoras de Nitrogênio/genética , Nódulos Radiculares de Plantas/microbiologia , Simbiose/genética , Quitinases/metabolismo , Regulação da Expressão Gênica de Plantas , Lipopolissacarídeos/genética , Lotus/química , Lotus/genética , Nitrogênio/metabolismo , Bactérias Fixadoras de Nitrogênio/metabolismo , Raízes de Plantas/metabolismo , Raízes de Plantas/microbiologia , Nódulos Radiculares de Plantas/genética
5.
Nat Commun ; 9(1): 3139, 2018 08 07.
Artigo em Inglês | MEDLINE | ID: mdl-30087346

RESUMO

Genotype-specific incompatibility in legume-rhizobium symbiosis has been suggested to be controlled by effector-triggered immunity underlying pathogenic host-bacteria interactions. However, the rhizobial determinant interacting with the host resistance protein (e.g., Rj2) and the molecular mechanism of symbiotic incompatibility remain unclear. Using natural mutants of Bradyrhizobium diazoefficiens USDA 122, we identified a type III-secretory protein NopP as the determinant of symbiotic incompatibility with Rj2-soybean. The analysis of nopP mutations and variants in a culture collection reveal that three amino acid residues (R60, R67, and H173) in NopP are required for Rj2-mediated incompatibility. Complementation of rj2-soybean by the Rj2 allele confers the incompatibility induced by USDA 122-type NopP. In response to incompatible strains, Rj2-soybean plants activate defense marker gene PR-2 and suppress infection thread number at 2 days after inoculation. These results suggest that Rj2-soybeans monitor the specific variants of NopP and reject bradyrhizobial infection via effector-triggered immunity mediated by Rj2 protein.


Assuntos
Bradyrhizobium/fisiologia , Glycine max/microbiologia , Imunidade Vegetal , Simbiose/genética , Sistemas de Secreção Tipo III/fisiologia , Alelos , Proteínas de Bactérias/genética , Proteínas de Bactérias/fisiologia , Bradyrhizobium/genética , Perfilação da Expressão Gênica , Regulação da Expressão Gênica de Plantas , Teste de Complementação Genética , Genótipo , Mutação , Fenótipo , Fosforilação , Filogenia , Proteínas de Plantas/genética , Nodulação , Raízes de Plantas/microbiologia , Sistemas de Secreção Tipo III/genética
6.
Plant J ; 93(1): 5-16, 2018 Jan.
Artigo em Inglês | MEDLINE | ID: mdl-29086445

RESUMO

The nitrogen-fixing symbiosis of legumes and Rhizobium bacteria is established by complex interactions between the two symbiotic partners. Legume Fix- mutants form apparently normal nodules with endosymbiotic rhizobia but fail to induce rhizobial nitrogen fixation. These mutants are useful for identifying the legume genes involved in the interactions essential for symbiotic nitrogen fixation. We describe here a Fix- mutant of Lotus japonicus, apn1, which showed a very specific symbiotic phenotype. It formed ineffective nodules when inoculated with the Mesorhizobium loti strain TONO. In these nodules, infected cells disintegrated and successively became necrotic, indicating premature senescence typical of Fix- mutants. However, it formed effective nodules when inoculated with the M. loti strain MAFF303099. Among nine different M. loti strains tested, four formed ineffective nodules and five formed effective nodules on apn1 roots. The identified causal gene, ASPARTIC PEPTIDASE NODULE-INDUCED 1 (LjAPN1), encodes a nepenthesin-type aspartic peptidase. The well characterized Arabidopsis aspartic peptidase CDR1 could complement the strain-specific Fix- phenotype of apn1. LjAPN1 is a typical late nodulin; its gene expression was exclusively induced during nodule development. LjAPN1 was most abundantly expressed in the infected cells in the nodules. Our findings indicate that LjAPN1 is required for the development and persistence of functional (nitrogen-fixing) symbiosis in a rhizobial strain-dependent manner, and thus determines compatibility between M. loti and L. japonicus at the level of nitrogen fixation.


Assuntos
Ácido Aspártico Proteases/metabolismo , Lotus/enzimologia , Mesorhizobium/fisiologia , Nitrogênio/metabolismo , Rhizobium/fisiologia , Simbiose , Proteínas de Arabidopsis/genética , Proteínas de Arabidopsis/metabolismo , Ácido Aspártico Endopeptidases/genética , Ácido Aspártico Endopeptidases/metabolismo , Ácido Aspártico Proteases/genética , Mutação com Perda de Função , Lotus/genética , Lotus/microbiologia , Lotus/fisiologia , Fixação de Nitrogênio , Fenótipo , Proteínas de Plantas/genética , Proteínas de Plantas/metabolismo , Nódulos Radiculares de Plantas/enzimologia , Nódulos Radiculares de Plantas/genética , Nódulos Radiculares de Plantas/microbiologia , Nódulos Radiculares de Plantas/fisiologia , Especificidade da Espécie
7.
DNA Res ; 24(2): 193-203, 2017 Apr 01.
Artigo em Inglês | MEDLINE | ID: mdl-28028038

RESUMO

Legume-rhizobium symbiosis is achieved by two major events evolutionarily acquired: root hair infection and organogenesis. Infection thread (IT) development is a distinct element for rhizobial infection. Through ITs, rhizobia are efficiently transported from infection foci on root hairs to dividing meristematic cortical cells. To unveil this process, we performed genetic screening using Lotus japonicus MG-20 and isolated symbiotic mutant lines affecting nodulation, root hair morphology, and IT development. Map-based cloning identified an AP2/ERF transcription factor gene orthologous to Medicago truncatula ERN1. LjERN1 was activated in response to rhizobial infection and depended on CYCLOPS and NSP2. Legumes conserve an ERN1 homolog, ERN2, that functions redundantly with ERN1 in M. truncatula. Phylogenetic analysis showed that the lineages of ERN1 and ERN2 genes originated from a gene duplication event in the common ancestor of legume plants. However, genomic analysis suggested the lack of ERN2 gene in the L. japonicus genome, consistent with Ljern1 mutants exhibited a root hair phenotype that is observed in ern1/ern2 double mutants in M. truncatula. Molecular evolutionary analysis suggested that the nonsynonymous/synonymous rate ratios of legume ERN1 genes was almost identical to that of non-legume plants, whereas the ERN2 genes experienced a relaxed selective constraint.


Assuntos
Evolução Molecular , Lotus/metabolismo , Proteínas de Plantas/genética , Fatores de Transcrição/genética , Regulação da Expressão Gênica de Plantas , Lotus/genética , Filogenia , Proteínas de Plantas/metabolismo , Proteínas de Plantas/fisiologia , Raízes de Plantas/metabolismo , Raízes de Plantas/fisiologia , Fatores de Transcrição/metabolismo , Fatores de Transcrição/fisiologia
8.
Plant J ; 88(2): 306-317, 2016 10.
Artigo em Inglês | MEDLINE | ID: mdl-27322352

RESUMO

Long terminal repeat (LTR) retrotransposons are closely related to retroviruses, and their activities shape eukaryotic genomes. Here, we present a complete Lotus japonicus insertion mutant collection generated by identification of 640 653 new insertion events following de novo activation of the LTR element Lotus retrotransposon 1 (LORE1) (http://lotus.au.dk). Insertion preferences are critical for effective gene targeting, and we exploit our large dataset to analyse LTR element characteristics in this context. We infer the mechanism that generates the consensus palindromes typical of retroviral and LTR retrotransposon insertion sites, identify a short relaxed insertion site motif, and demonstrate selective integration into CHG-hypomethylated genes. These characteristics result in a steep increase in deleterious mutation rate following activation, and allow LORE1 active gene targeting to approach saturation within a population of 134 682 L. japonicus lines. We suggest that saturation mutagenesis using endogenous LTR retrotransposons with germinal activity can be used as a general and cost-efficient strategy for generation of non-transgenic mutant collections for unrestricted use in plant research.


Assuntos
Lotus/genética , Proteínas de Plantas/metabolismo , Retroelementos/genética , Sequências Repetidas Terminais/genética , Metilação de DNA/genética , Mutagênese Insercional , Mutação/genética , Proteínas de Plantas/genética
9.
Plant Cell Physiol ; 55(11): 1864-72, 2014 Nov.
Artigo em Inglês | MEDLINE | ID: mdl-25231970

RESUMO

Plants are constantly exposed to threats from pathogenic microbes and thus developed an innate immune system to protect themselves. On the other hand, many plants also have the ability to establish endosymbiosis with beneficial microbes such as arbuscular mycorrhizal (AM) fungi or rhizobial bacteria, which improves the growth of host plants. How plants evolved these systems managing such opposite plant-microbe interactions is unclear. We show here that knockout (KO) mutants of OsCERK1, a rice receptor kinase essential for chitin signaling, were impaired not only for chitin-triggered defense responses but also for AM symbiosis, indicating the bifunctionality of OsCERK1 in defense and symbiosis. On the other hand, a KO mutant of OsCEBiP, which forms a receptor complex with OsCERK1 and is essential for chitin-triggered immunity, established mycorrhizal symbiosis normally. Therefore, OsCERK1 but not chitin-triggered immunity is required for AM symbiosis. Furthermore, experiments with chimeric receptors showed that the kinase domains of OsCERK1 and homologs from non-leguminous, mycorrhizal plants could trigger nodulation signaling in legume-rhizobium interactions as the kinase domain of Nod factor receptor1 (NFR1), which is essential for triggering the nodulation program in leguminous plants, did. Because leguminous plants are believed to have developed the rhizobial symbiosis on the basis of AM symbiosis, our results suggest that the symbiotic function of ancestral CERK1 in AM symbiosis enabled the molecular evolution to leguminous NFR1 and resulted in the establishment of legume-rhizobia symbiosis. These results also suggest that OsCERK1 and homologs serve as a molecular switch that activates defense or symbiotic responses depending on the infecting microbes.


Assuntos
Quitina/metabolismo , Micorrizas/fisiologia , Oryza/fisiologia , Proteínas de Plantas/metabolismo , Simbiose , Motivos de Aminoácidos , Sequência de Aminoácidos , Quitina/imunologia , Evolução Molecular , Regulação da Expressão Gênica de Plantas , Técnicas de Inativação de Genes , Teste de Complementação Genética , Lotus/genética , Dados de Sequência Molecular , Mutação , Oryza/imunologia , Oryza/microbiologia , Proteínas de Plantas/genética , Proteínas Serina-Treonina Quinases/genética , Proteínas Serina-Treonina Quinases/metabolismo , Rhizobium/fisiologia , Transdução de Sinais
10.
Plant Cell Physiol ; 55(9): 1679-89, 2014 Sep.
Artigo em Inglês | MEDLINE | ID: mdl-25059584

RESUMO

Soybeans exhibit a nitrogen-fixing symbiosis with soil bacteria of the genera Bradyrhizobium and Ensifer/Sinorhizobium in a unique organ, the root nodule. It is well known that nodulation of soybean is controlled by several host genes referred to as Rj (rj) genes. Among these genes, a dominant allele, Rj4, restricts nodulation with specific bacterial strains such as B. elkanii USDA61 and B. japonicum Is-34. These incompatible strains fail to invade the host epidermal cells as revealed by observations using DsRed-labeled bacteria. Here, we describe the molecular identification of the Rj4 gene by using map-based cloning with several mapping populations. The Rj4 gene encoded a thaumatin-like protein (TLP) that belongs to pathogenesis-related (PR) protein family 5. In rj4/rj4 genotype soybeans and wild soybeans, we found six missense mutations and two consecutive amino acid deletions in the rj4 gene as compared with the Rj4 allele. We also found, using hairy root transformation, that the rj4/rj4 genotype soybeans were fully complemented by the expression of the Rj4 gene. Whereas the expression of many TLPs and other PR proteins is induced by biotic/abiotic stress, Rj4 gene expression appears to be constitutive in roots including root nodules.


Assuntos
Regulação da Expressão Gênica de Plantas , Glycine max/genética , Proteínas de Plantas/metabolismo , Simbiose , Sequência de Bases , Bradyrhizobium/genética , Bradyrhizobium/fisiologia , Mapeamento Cromossômico , Loci Gênicos/genética , Genótipo , Dados de Sequência Molecular , Fixação de Nitrogênio , Fenótipo , Filogenia , Proteínas de Plantas/genética , Nodulação , Raízes de Plantas/genética , Raízes de Plantas/fisiologia , Nódulos Radiculares de Plantas/genética , Nódulos Radiculares de Plantas/fisiologia , Alinhamento de Sequência , Análise de Sequência de DNA , Glycine max/fisiologia , Especificidade da Espécie
11.
Plant Cell Physiol ; 55(5): 928-41, 2014 May.
Artigo em Inglês | MEDLINE | ID: mdl-24492255

RESUMO

Several symbiotic mutants of legume plants defective in nodulation have also been shown to be mutants related to arbuscular mycorrhizal (AM) symbiosis. The origin of the AM symbiosis can be traced back to the early land plants. It has therefore been postulated that the older system of AM symbiosis was partially incorporated into the newer system of legume-rhizobium symbiosis. To unravel the genetic basis of the establishment of AM symbiosis, we screened about 34,000 plants derived from ethyl methanesulfonate (EMS)-mutagenized Lotus japonicus seeds by microscopic observation. As a result, three lines (ME778, ME966 and ME2329) were isolated as AM-specific mutants that exhibit clear AM-defective phenotypes but form normal effective root nodules with rhizobial infection. In the ME2329 mutant, AM fungi spread their hyphae into the intercellular space of the cortex and formed trunk hyphae in the cortical cells, but the development of fine branches in the arbuscules was arrested. The ME2329 mutant carried a nonsense mutation in the STR-homolog gene, implying that the line may be an str mutant in L. japonicus. On the ME778 and ME966 mutant roots, the entry of AM fungal hyphae was blocked between two adjacent epidermal cells. Occasionally, hyphal colonization accompanied by arbuscules was observed in the two mutants. The genes responsible for the ME778 and ME966 mutants were independently located on chromosome 2. These results suggest that the ME778 and ME966 lines are symbiotic mutants involved in the early stage of AM formation in L. japonicus.


Assuntos
Lotus/genética , Mutação , Micorrizas/genética , Nódulos Radiculares de Plantas/genética , Mapeamento Cromossômico , Cromossomos de Plantas/genética , Metanossulfonato de Etila/toxicidade , Regulação Fúngica da Expressão Gênica , Regulação da Expressão Gênica de Plantas , Interações Hospedeiro-Patógeno/genética , Hifas/genética , Hifas/fisiologia , Lotus/microbiologia , Mesorhizobium/fisiologia , Mesorhizobium/ultraestrutura , Microscopia Confocal , Microscopia Eletrônica de Transmissão , Dados de Sequência Molecular , Mutagênese/efeitos dos fármacos , Mutagênicos/toxicidade , Micorrizas/fisiologia , Fenótipo , Nodulação/genética , Raízes de Plantas/genética , Raízes de Plantas/microbiologia , Reação em Cadeia da Polimerase Via Transcriptase Reversa , Nódulos Radiculares de Plantas/microbiologia , Simbiose
12.
Appl Environ Microbiol ; 79(12): 3610-8, 2013 Jun.
Artigo em Inglês | MEDLINE | ID: mdl-23563944

RESUMO

We investigated the relationship between the genetic diversity of indigenous soybean-nodulating bradyrhizobia and their geographical distribution in the United States using nine soil isolates from eight states. The bradyrhizobia were inoculated on three soybean Rj genotypes (non-Rj, Rj(2)Rj(3), and Rj(4)). We analyzed their genetic diversity and community structure by means of restriction fragment length polymorphisms of PCR amplicons to target the 16S-23S rRNA gene internal transcribed spacer region, using 11 USDA Bradyrhizobium strains as reference strains. We also performed diversity analysis, multidimensional scaling analysis based on the Bray-Curtis index, and polar ordination analysis to describe the structure and geographical distribution of the soybean-nodulating bradyrhizobial community. The major clusters were Bradyrhizobium japonicum Bj123, in the northern United States, and Bradyrhizobium elkanii, in the middle to southern regions. Dominance of bradyrhizobia in a community was generally larger for the cluster belonging to B. elkanii than for the cluster belonging to B. japonicum. The indigenous American soybean-nodulating bradyrhizobial community structure was strongly correlated with latitude. Our results suggest that this community varies geographically.


Assuntos
Bradyrhizobium/genética , Demografia , Variação Genética , Glycine max/microbiologia , Raízes de Plantas/microbiologia , Análise por Conglomerados , Primers do DNA/genética , Reação em Cadeia da Polimerase , Polimorfismo de Fragmento de Restrição , RNA Ribossômico/genética , Solo/análise , Estados Unidos
13.
Breed Sci ; 61(5): 544-53, 2012 Jan.
Artigo em Inglês | MEDLINE | ID: mdl-23136493

RESUMO

It has long been known that formation of symbiotic root nodules in soybean (Glycine max (L.) Merr.) is controlled by several host genes referred to as Rj (rj) genes, but molecular cloning of these genes has been hampered by soybean's complicated genome structure and large genome size. Progress in molecular identification of legume genes involved in root nodule symbiosis have been mostly achieved by using two model legumes, Lotus japonicus and Medicago truncatula, that have relatively simple and small genomes and are capable of molecular transfection. However, recent development of resources for soybean molecular genetic research, such as genome sequencing, large EST databases, and high-density linkage maps, have enabled us to isolate several Rj genes. This progress has been achieved in connection with systematic utilization of the information obtained from molecular genetics of the model legumes. In this review, we summarize the current status of knowledge of host-controlled nodulation in soybean based on information from recent studies on Rj genes, and discuss the future research prospects.

14.
Development ; 139(21): 3997-4006, 2012 Nov.
Artigo em Inglês | MEDLINE | ID: mdl-23048184

RESUMO

Nodulation is a form of de novo organogenesis that occurs mainly in legumes. During early nodule development, the host plant root is infected by rhizobia that induce dedifferentiation of some cortical cells, which then proliferate to form the symbiotic root nodule primordium. Two classic phytohormones, cytokinin and auxin, play essential roles in diverse aspects of cell proliferation and differentiation. Although recent genetic studies have established how activation of cytokinin signaling is crucial to the control of cortical cell differentiation, the physiological pathways through which auxin might act in nodule development are poorly characterized. Here, we report the detailed patterns of auxin accumulation during nodule development in Lotus japonicus. Our analyses showed that auxin predominantly accumulates in dividing cortical cells and that NODULE INCEPTION, a key transcription factor in nodule development, positively regulates this accumulation. Additionally, we found that auxin accumulation is inhibited by a systemic negative regulatory mechanism termed autoregulation of nodulation (AON). Analysis of the constitutive activation of LjCLE-RS genes, which encode putative root-derived signals that function in AON, in combination with the determination of auxin accumulation patterns in proliferating cortical cells, indicated that activation of LjCLE-RS genes blocks the progress of further cortical cell division, probably through controlling auxin accumulation. Our data provide evidence for the existence of a novel fine-tuning mechanism that controls nodule development in a cortical cell stage-dependent manner.


Assuntos
Ácidos Indolacéticos/metabolismo , Lotus/citologia , Lotus/metabolismo , Nódulos Radiculares de Plantas/citologia , Nódulos Radiculares de Plantas/metabolismo , Divisão Celular/fisiologia , Citocininas/metabolismo , Regulação da Expressão Gênica de Plantas , Nodulação/genética , Nodulação/fisiologia
15.
Plant Physiol ; 160(2): 897-905, 2012 Oct.
Artigo em Inglês | MEDLINE | ID: mdl-22858633

RESUMO

Soluble N-Ethylmaleimide Sensitive Factor Attachment Protein Receptor (SNARE) proteins are crucial for signal transduction and development in plants. Here, we investigate a Lotus japonicus symbiotic mutant defective in one of the SNARE proteins. When in symbiosis with rhizobia, the growth of the mutant was retarded compared with that of the wild-type plant. Although the mutant formed nodules, these exhibited lower nitrogen fixation activity than the wild type. The rhizobia were able to invade nodule cells, but enlarged symbiosomes were observed in the infected cells. The causal gene, designated LjSYP71 (for L. japonicus syntaxin of plants71), was identified by map-based cloning and shown to encode a Qc-SNARE protein homologous to Arabidopsis (Arabidopsis thaliana) SYP71. LjSYP71 was expressed ubiquitously in shoot, roots, and nodules, and transcripts were detected in the vascular tissues. In the mutant, no other visible defects in plant morphology were observed. Furthermore, in the presence of combined nitrogen, the mutant plant grew almost as well as the wild type. These results suggest that the vascular tissues expressing LjSYP71 play a pivotal role in symbiotic nitrogen fixation in L. japonicus nodules.


Assuntos
Lotus/metabolismo , Fixação de Nitrogênio , Feixe Vascular de Plantas/metabolismo , Proteínas Qc-SNARE/metabolismo , Simbiose , Mapeamento Cromossômico , Clonagem Molecular , Cruzamentos Genéticos , Regulação da Expressão Gênica de Plantas , Genes de Plantas , Teste de Complementação Genética , Lotus/genética , Lotus/microbiologia , Mesorhizobium/crescimento & desenvolvimento , Microscopia Eletrônica de Transmissão , Mutagênese , Filogenia , Proteínas de Plantas/genética , Proteínas de Plantas/metabolismo , Brotos de Planta/genética , Brotos de Planta/metabolismo , Feixe Vascular de Plantas/genética , Plantas Geneticamente Modificadas/genética , Plantas Geneticamente Modificadas/metabolismo , Plantas Geneticamente Modificadas/microbiologia , Proteínas Qc-SNARE/genética , Nódulos Radiculares de Plantas/genética , Nódulos Radiculares de Plantas/metabolismo , Nódulos Radiculares de Plantas/microbiologia
16.
Appl Environ Microbiol ; 78(4): 1243-50, 2012 Feb.
Artigo em Inglês | MEDLINE | ID: mdl-22156423

RESUMO

The nodulation tendency and community structure of indigenous bradyrhizobia on Rj genotype soybean cultivars at cultivation temperatures of 33/28°C, 28/23°C, and 23/18°C for 16/8 h (day/night degrees, hours) were investigated using 780 bradyrhizobial DNA samples from an Andosol with 13 soybean cultivars of four Rj genotypes (non-Rj, Rj(2)Rj(3), Rj(4), and Rj(2)Rj(3)Rj(4)). A dendrogram was constructed based on restriction fragment length polymorphism of the PCR products (PCR-RFLP) of the 16S-23S rRNA gene internal transcribed spacer region. Eleven Bradyrhizobium U.S. Department of Agriculture strains were used as a reference. The dendrogram indicated seven clusters based on similarities among the reference strains. The occupancy rate of the Bj123 cluster decreased with increasing cultivation temperature, whereas the occupancy rates of the Bj110 cluster, Be76 cluster, and Be94 cluster increased with increasing cultivation temperature. In particular, the Rj(2)Rj(3)Rj(4) genotype soybeans were infected with a number of Bj110 clusters, regardless of the increasing cultivation temperature, compared to other Rj genotype soybean cultivars. The ratio of beta diversity to gamma diversity (H'(ß)/H'(γ)), which represents differences in the bradyrhizobial communities by pairwise comparison among cultivation temperature sets within the same soybean cultivar, indicated that the bradyrhizobial communities tended to be different among cultivation temperatures. Multidimensional scaling analysis indicated that the infection of the Bj110 cluster and the Bj123 cluster by host soybean genotype and the cultivation temperature affected the bradyrhizobial communities. These results suggested that the Rj genotypes and cultivation temperatures affected the nodulation tendency and community structures of soybean-nodulating bradyrhizobia.


Assuntos
Biota , Bradyrhizobium/genética , Bradyrhizobium/efeitos da radiação , Glycine max/microbiologia , Nodulação , Bradyrhizobium/classificação , Bradyrhizobium/isolamento & purificação , Análise por Conglomerados , DNA Bacteriano/química , DNA Bacteriano/genética , DNA Espaçador Ribossômico/genética , Variação Genética , Genótipo , Filogenia , Raízes de Plantas/microbiologia , Reação em Cadeia da Polimerase , Polimorfismo de Fragmento de Restrição , Temperatura
17.
Plant Cell Physiol ; 53(1): 225-36, 2012 Jan.
Artigo em Inglês | MEDLINE | ID: mdl-22123791

RESUMO

Legume plants establish a symbiotic association with bacteria called rhizobia, resulting in the formation of nitrogen-fixing root nodules. A Lotus japonicus symbiotic mutant, sen1, forms nodules that are infected by rhizobia but that do not fix nitrogen. Here, we report molecular identification of the causal gene, SEN1, by map-based cloning. The SEN1 gene encodes an integral membrane protein homologous to Glycine max nodulin-21, and also to CCC1, a vacuolar iron/manganese transporter of Saccharomyces cerevisiae, and VIT1, a vacuolar iron transporter of Arabidopsis thaliana. Expression of the SEN1 gene was detected exclusively in nodule-infected cells and increased during nodule development. Nif gene expression as well as the presence of nitrogenase proteins was detected in rhizobia from sen1 nodules, although the levels of expression were low compared with those from wild-type nodules. Microscopic observations revealed that symbiosome and/or bacteroid differentiation are impaired in the sen1 nodules even at a very early stage of nodule development. Phylogenetic analysis indicated that SEN1 belongs to a protein clade specific to legumes. These results indicate that SEN1 is essential for nitrogen fixation activity and symbiosome/bacteroid differentiation in legume nodules.


Assuntos
Lotus/fisiologia , Proteínas de Membrana/metabolismo , Fixação de Nitrogênio , Proteínas de Plantas/metabolismo , Nódulos Radiculares de Plantas/fisiologia , Simbiose , Clonagem Molecular , Regulação da Expressão Gênica de Plantas , Genes de Plantas/genética , Teste de Complementação Genética , Lotus/genética , Lotus/microbiologia , Lotus/ultraestrutura , Proteínas de Membrana/genética , Mutação/genética , Fixação de Nitrogênio/genética , Fenótipo , Filogenia , Proteínas de Plantas/genética , Rhizobium/fisiologia , Nódulos Radiculares de Plantas/citologia , Nódulos Radiculares de Plantas/microbiologia , Nódulos Radiculares de Plantas/ultraestrutura , Simbiose/genética
18.
Plant J ; 69(4): 720-30, 2012 Feb.
Artigo em Inglês | MEDLINE | ID: mdl-22014259

RESUMO

We established a gene tagging population of the model legume Lotus japonicus using an endogenous long terminal repeat (LTR) retrotransposon Lotus Retrotransposon 1 (LORE1). The population was composed of 2450 plant lines, from which a total of 4532 flanking sequence tags of LORE1 were recovered by pyrosequencing. The two-dimensional arrangement of the plant population, together with the use of multiple identifier sequences in the primers used to amplify the flanking regions, made it possible to trace insertions back to the original plant lines. The large-scale detection of new LORE1 insertion sites revealed a preference for genic regions, especially in exons of protein-coding genes, which is an interesting feature to consider in the interaction between host genomes and chromoviruses, to which LORE1 belongs, a class of retrotransposon widely distributed among plants. Forward screening of the symbiotic mutants from the population succeeded to identify five symbiotic mutants of known genes. These data suggest that LORE1 is robust as a genetic tool.


Assuntos
Éxons/genética , Lotus/genética , Mutagênese Insercional/métodos , Retroelementos/genética , Primers do DNA/genética , Marcação de Genes , Mutação , Análise de Sequência de DNA , Simbiose , Sequências Repetidas Terminais/genética
19.
Plant Cell Physiol ; 51(9): 1381-97, 2010 Sep.
Artigo em Inglês | MEDLINE | ID: mdl-20660226

RESUMO

The nitrogen-fixing symbiosis between legume plants and Rhizobium bacteria is the most prominent plant-microbe endosymbiotic system and, together with mycorrhizal fungi, has critical importance in agriculture. The introduction of two model legume species, Lotus japonicus and Medicago truncatula, has enabled us to identify a number of host legume genes required for symbiosis. A total of 26 genes have so far been cloned from various symbiotic mutants of these model legumes, which are involved in recognition of rhizobial nodulation signals, early symbiotic signaling cascades, infection and nodulation processes, and regulation of nitrogen fixation. These accomplishments during the past decade provide important clues to understanding not only the molecular mechanisms underlying plant-microbe endosymbiotic associations but also the evolutionary aspects of nitrogen-fixing symbiosis between legume plants and Rhizobium bacteria. In this review we survey recent progress in molecular genetic studies using these model legumes.


Assuntos
Fabaceae/genética , Genes de Plantas , Nodulação/genética , Rhizobium/fisiologia , Simbiose/genética , Fabaceae/microbiologia , Regulação da Expressão Gênica de Plantas , Fixação de Nitrogênio , Transdução de Sinais
20.
PLoS Genet ; 6(3): e1000868, 2010 Mar 05.
Artigo em Inglês | MEDLINE | ID: mdl-20221264

RESUMO

Transposable elements represent a large proportion of the eukaryotic genomes. Long Terminal Repeat (LTR) retrotransposons are very abundant and constitute the predominant family of transposable elements in plants. Recent studies have identified chromoviruses to be a widely distributed lineage of Gypsy elements. These elements contain chromodomains in their integrases, which suggests a preference for insertion into heterochromatin. In turn, this preference might have contributed to the patterning of heterochromatin observed in host genomes. Despite their potential importance for our understanding of plant genome dynamics and evolution, the regulatory mechanisms governing the behavior of chromoviruses and their activities remain largely uncharacterized. Here, we report a detailed analysis of the spatio-temporal activity of a plant chromovirus in the endogenous host. We examined LORE1a, a member of the endogenous chromovirus LORE1 family from the model legume Lotus japonicus. We found that this chromovirus is stochastically de-repressed in plant populations regenerated from de-differentiated cells and that LORE1a transposes in the male germline. Bisulfite sequencing of the 5' LTR and its surrounding region suggests that tissue culture induces a loss of epigenetic silencing of LORE1a. Since LTR promoter activity is pollen specific, as shown by the analysis of transgenic plants containing an LTR::GUS fusion, we conclude that male germline-specific LORE1a transposition in pollen grains is controlled transcriptionally by its own cis-elements. New insertion sites of LORE1a copies were frequently found in genic regions and show no strong insertional preferences. These distinctive novel features of LORE1 indicate that this chromovirus has considerable potential for generating genetic and epigenetic diversity in the host plant population. Our results also define conditions for the use of LORE1a as a genetic tool.


Assuntos
Elementos de DNA Transponíveis/genética , Células Germinativas Vegetais/metabolismo , Lotus/genética , Lotus/virologia , Vírus de Plantas/genética , Regeneração/genética , Elementos Alu/genética , Mapeamento Cromossômico , Citosina/metabolismo , Metilação de DNA/genética , Variação Genética , Mutagênese Insercional , Especificidade de Órgãos/genética , Regiões Promotoras Genéticas/genética , Sequências Repetidas Terminais/genética , Transcrição Gênica
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