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1.
Appl Environ Microbiol ; 85(24)2019 12 15.
Artigo em Inglês | MEDLINE | ID: mdl-31562172

RESUMO

Sulfur (S)-containing molecules play an important role in symbiotic nitrogen fixation and are critical components of nitrogenase and other iron-S proteins. S deficiency inhibits symbiotic nitrogen fixation by rhizobia. However, despite its importance, little is known about the sources of S that rhizobia utilize during symbiosis. We previously showed that Bradyrhizobium diazoefficiens USDA110T can assimilate both inorganic and organic S and that genes involved in organic S utilization are expressed during symbiosis. Here, we show that a B. diazoefficiens USDA110T mutant with a sulfonate monooxygenase (ssuD) insertion is defective in nitrogen fixation. Microscopy analyses revealed that the ΔssuD mutant was defective in root hair infection and that ΔssuD mutant bacteroids showed degradation compared to the wild-type strain. Moreover, the ΔssuD mutant was significantly more sensitive to hydrogen peroxide-mediated oxidative stress than the wild-type strain. Taken together, these results show that the ability of rhizobia to utilize organic S plays an important role in symbiotic nitrogen fixation. Since nodules have been reported to be an important source of reduced S used during symbiosis and nitrogen fixation, further research will be needed to determine the mechanisms involved in the regulation of S assimilation by rhizobia.IMPORTANCE Rhizobia form symbiotic associations with legumes that lead to the formation of nitrogen-fixing nodules. Sulfur-containing molecules play a crucial role in nitrogen fixation; thus, the rhizobia inside nodules require large amounts of sulfur. Rhizobia can assimilate both inorganic (sulfate) and organic (sulfonates) sources of sulfur. However, very little is known about rhizobial sulfur metabolism during symbiosis. In this report, we show that sulfonate utilization by Bradyrhizobium diazoefficiens is important for symbiotic nitrogen fixation in both soybean and cowpea. The symbiotic defect is probably due to increased sensitivity to oxidative stress from sulfur deficiency in the mutant strain defective for sulfonate utilization. The results of this study can be extended to other rhizobium-legume symbioses, as sulfonate utilization genes are widespread in these bacteria.


Assuntos
Alcanossulfonatos/metabolismo , Bradyrhizobium/enzimologia , Bradyrhizobium/metabolismo , Oxigenases de Função Mista/metabolismo , Fixação de Nitrogênio/fisiologia , Simbiose/fisiologia , Proteínas de Bactérias/genética , Proteínas de Bactérias/metabolismo , Bradyrhizobium/genética , Fabaceae/microbiologia , Oxigenases de Função Mista/genética , Nodulação , Rhizobium/metabolismo , Nódulos Radiculares de Plantas/citologia , Nódulos Radiculares de Plantas/microbiologia , Glycine max/microbiologia , Vigna/microbiologia
2.
Int J Mol Sci ; 20(8)2019 Apr 12.
Artigo em Inglês | MEDLINE | ID: mdl-31013805

RESUMO

Sesbania herbacea, a native North American fast-growing legume, thrives in wet and waterlogged conditions. This legume enters into symbiotic association with rhizobia, resulting in the formation of nitrogen-fixing nodules on the roots. A flooding-induced anaerobic environment imposes a challenge for the survival of rhizobia and negatively impacts nodulation. Very little information is available on how S. herbacea is able to thrive and efficiently fix N2 in flooded conditions. In this study, we found that Sesbania plants grown under flooded conditions were significantly taller, produced more biomass, and formed more nodules when compared to plants grown on dry land. Transmission electron microscopy of Sesbania nodules revealed bacteroids from flooded nodules contained prominent polyhydroxybutyrate crystals, which were absent in non-flooded nodules. Gas and ion chromatography mass spectrometry analysis of nodule metabolites revealed a marked decrease in asparagine and an increase in the levels of gamma aminobutyric acid in flooded nodules. 2-D gel electrophoresis of nodule bacteroid proteins revealed flooding-induced changes in their protein profiles. Several of the bacteroid proteins that were prominent in flooded nodules were identified by mass spectrometry to be members of the ABC transporter family. The activities of several key enzymes involved in nitrogen metabolism was altered in Sesbania flooded nodules. Aspartate aminotransferase (AspAT), an enzyme with a vital role in the assimilation of reduced nitrogen, was dramatically elevated in flooded nodules. The results of our study highlight the potential of S. herbacea as a green manure and sheds light on the morphological, structural, and biochemical adaptations that enable S. herbacea to thrive and efficiently fix N2 in flooded conditions.


Assuntos
Inundações , Nódulos Radiculares de Plantas/anatomia & histologia , Nódulos Radiculares de Plantas/química , Sesbania/anatomia & histologia , Sesbania/química , Estresse Fisiológico , Ativação Enzimática , Espectrometria de Massas , Raízes de Plantas/anatomia & histologia , Raízes de Plantas/química , Raízes de Plantas/citologia , Raízes de Plantas/metabolismo , Nódulos Radiculares de Plantas/citologia , Nódulos Radiculares de Plantas/metabolismo , Sesbania/citologia , Sesbania/metabolismo
4.
New Phytol ; 219(3): 1018-1030, 2018 08.
Artigo em Inglês | MEDLINE | ID: mdl-29790172

RESUMO

Nitrogen-fixing filamentous Frankia colonize the root tissues of its actinorhizal host Discaria trinervis via an exclusively intercellular pathway. Here we present studies aimed at uncovering mechanisms associated with this little-researched mode of root entry, and in particular the extent to which the host plant is an active partner during this process. Detailed characterization of the expression patterns of infection-associated actinorhizal host genes has provided valuable tools to identify intercellular infection sites, thus allowing in vivo confocal microscopic studies of the early stages of Frankia colonization. The subtilisin-like serine protease gene Dt12, as well as its Casuarina glauca homolog Cg12, are specifically expressed at sites of Frankia intercellular colonization of D. trinervis outer root tissues. This is accompanied by nucleo-cytoplasmic reorganization in the adjacent host cells and major remodeling of the intercellular apoplastic compartment. These findings lead us to propose that the actinorhizal host plays a major role in modifying both the size and composition of the intercellular apoplast in order to accommodate the filamentous microsymbiont. The implications of these findings are discussed in the light of the analogies that can be made with the orchestrating role of host legumes during intracellular root hair colonization by nitrogen-fixing rhizobia.


Assuntos
Frankia/crescimento & desenvolvimento , Regulação da Expressão Gênica de Plantas , Células Vegetais/microbiologia , Rhamnaceae/genética , Rhamnaceae/microbiologia , Subtilisinas/genética , Contagem de Colônia Microbiana , Modelos Biológicos , Regiões Promotoras Genéticas/genética , Nódulos Radiculares de Plantas/citologia , Nódulos Radiculares de Plantas/microbiologia , Subtilisinas/metabolismo
5.
New Phytol ; 218(2): 696-709, 2018 04.
Artigo em Inglês | MEDLINE | ID: mdl-29349810

RESUMO

Copper is an essential nutrient for symbiotic nitrogen fixation. This element is delivered by the host plant to the nodule, where membrane copper (Cu) transporter would introduce it into the cell to synthesize cupro-proteins. COPT family members in the model legume Medicago truncatula were identified and their expression determined. Yeast complementation assays, confocal microscopy and phenotypical characterization of a Tnt1 insertional mutant line were carried out in the nodule-specific M. truncatula COPT family member. Medicago truncatula genome encodes eight COPT transporters. MtCOPT1 (Medtr4g019870) is the only nodule-specific COPT gene. It is located in the plasma membrane of the differentiation, interzone and early fixation zones. Loss of MtCOPT1 function results in a Cu-mitigated reduction of biomass production when the plant obtains its nitrogen exclusively from symbiotic nitrogen fixation. Mutation of MtCOPT1 results in diminished nitrogenase activity in nodules, likely an indirect effect from the loss of a Cu-dependent function, such as cytochrome oxidase activity in copt1-1 bacteroids. These data are consistent with a model in which MtCOPT1 transports Cu from the apoplast into nodule cells to provide Cu for essential metabolic processes associated with symbiotic nitrogen fixation.


Assuntos
Proteínas de Transporte de Cátions/metabolismo , Cobre/metabolismo , Medicago truncatula/metabolismo , Fixação de Nitrogênio , Proteínas de Plantas/metabolismo , Simbiose , Transporte Biológico/efeitos dos fármacos , Proteínas de Transporte de Cátions/genética , Diferenciação Celular/efeitos dos fármacos , Membrana Celular/efeitos dos fármacos , Membrana Celular/metabolismo , Cobre/farmacologia , Transportador de Cobre 1 , Complexo IV da Cadeia de Transporte de Elétrons/metabolismo , Medicago truncatula/citologia , Família Multigênica , Mutação/genética , Fixação de Nitrogênio/efeitos dos fármacos , Nitrogenase/metabolismo , Fenótipo , Proteínas de Plantas/genética , Nódulos Radiculares de Plantas/citologia , Nódulos Radiculares de Plantas/efeitos dos fármacos , Nódulos Radiculares de Plantas/metabolismo , Saccharomyces cerevisiae/metabolismo , Simbiose/efeitos dos fármacos
6.
Plant Physiol ; 175(1): 361-375, 2017 Sep.
Artigo em Inglês | MEDLINE | ID: mdl-28733389

RESUMO

Legume mutants have shown the requirement for receptor-mediated cytokinin signaling in symbiotic nodule organogenesis. While the receptors are central regulators, cytokinin also is accumulated during early phases of symbiotic interaction, but the pathways involved have not yet been fully resolved. To identify the source, timing, and effect of this accumulation, we followed transcript levels of the cytokinin biosynthetic pathway genes in a sliding developmental zone of Lotus japonicus roots. LjIpt2 and LjLog4 were identified as the major contributors to the first cytokinin burst. The genetic dependence and Nod factor responsiveness of these genes confirm that cytokinin biosynthesis is a key target of the common symbiosis pathway. The accumulation of LjIpt2 and LjLog4 transcripts occurs independent of the LjLhk1 receptor during nodulation. Together with the rapid repression of both genes by cytokinin, this indicates that LjIpt2 and LjLog4 contribute to, rather than respond to, the initial cytokinin buildup. Analysis of the cytokinin response using the synthetic cytokinin sensor, TCSn, showed that this response occurs in cortical cells before spreading to the epidermis in L. japonicus While mutant analysis identified redundancy in several biosynthesis families, we found that mutation of LjIpt4 limits nodule numbers. Overexpression of LjIpt3 or LjLog4 alone was insufficient to produce the robust formation of spontaneous nodules. In contrast, overexpressing a complete cytokinin biosynthesis pathway leads to large, often fused spontaneous nodules. These results show the importance of cytokinin biosynthesis in initiating and balancing the requirement for cortical cell activation without uncontrolled cell proliferation.


Assuntos
Citocininas/biossíntese , Lotus/genética , Reguladores de Crescimento de Plantas/biossíntese , Proteínas de Plantas/metabolismo , Rhizobiaceae/fisiologia , Transdução de Sinais , Regulação da Expressão Gênica no Desenvolvimento/genética , Regulação da Expressão Gênica de Plantas , Lotus/citologia , Lotus/crescimento & desenvolvimento , Lotus/fisiologia , Modelos Biológicos , Proteínas de Plantas/genética , Nodulação , Raízes de Plantas/citologia , Raízes de Plantas/genética , Raízes de Plantas/crescimento & desenvolvimento , Raízes de Plantas/fisiologia , Nódulos Radiculares de Plantas/citologia , Nódulos Radiculares de Plantas/genética , Nódulos Radiculares de Plantas/crescimento & desenvolvimento , Nódulos Radiculares de Plantas/fisiologia , Simbiose
7.
Plant Cell Environ ; 41(9): 2080-2092, 2018 09.
Artigo em Inglês | MEDLINE | ID: mdl-29469230

RESUMO

Legume-Rhizobium symbiosis results in root nodules where rhizobia fix atmospheric nitrogen into plant usable forms in exchange for plant-derived carbohydrates. The development of these specialized root organs involves a set of carefully orchestrated plant hormone signalling. In particular, a spatio-temporal balance between auxin and cytokinin appears to be crucial for proper nodule development. We put together a construct that carried nuclear localized fluorescence sensors for auxin and cytokinin and used two photon induced fluorescence microscopy for concurrent quantitative 3-dimensional imaging to determine cellular level auxin and cytokinin outputs and ratios in root and nodule tissues of soybean. The use of nuclear localization signals on the markers and nuclei segmentation during image processing enabled accurate monitoring of outputs in 3D image volumes. The ratiometric method used here largely compensates for variations in individual outputs due to sample turbidity and scattering, an inherent issue when imaging thick root and nodule samples typical of many legumes. Overlays of determined auxin/cytokinin ratios on specific root zones and cell types accurately reflected those predicted based on previously reported outputs for each hormone individually. Importantly, distinct auxin/cytokinin ratios corresponded to distinct nodule cell types indicating a key role for these hormones in nodule cell type identity.


Assuntos
Citocininas/metabolismo , Glycine max/citologia , Ácidos Indolacéticos/metabolismo , Raízes de Plantas/metabolismo , Citocininas/análise , Proteínas de Fluorescência Verde/genética , Proteínas de Fluorescência Verde/metabolismo , Imageamento Tridimensional , Ácidos Indolacéticos/análise , Microscopia de Fluorescência por Excitação Multifotônica/métodos , Células Vegetais/metabolismo , Raízes de Plantas/citologia , Plantas Geneticamente Modificadas , Nódulos Radiculares de Plantas/citologia , Nódulos Radiculares de Plantas/metabolismo , Glycine max/genética , Glycine max/metabolismo
8.
Plant Cell ; 27(12): 3410-24, 2015 Dec.
Artigo em Inglês | MEDLINE | ID: mdl-26672071

RESUMO

Biological nitrogen fixation in legumes occurs in nodules that are initiated in the root cortex following Nod factor recognition at the root surface, and this requires coordination of diverse developmental programs in these different tissues. We show that while early Nod factor signaling associated with calcium oscillations is limited to the root surface, the resultant activation of Nodule Inception (NIN) in the root epidermis is sufficient to promote cytokinin signaling and nodule organogenesis in the inner root cortex. NIN or a product of its action must be associated with the transmission of a signal between the root surface and the cortical cells where nodule organogenesis is initiated. NIN appears to have distinct functions in the root epidermis and the root cortex. In the epidermis, NIN restricts the extent of Early Nodulin 11 (ENOD11) expression and does so through competitive inhibition of ERF Required for Nodulation (ERN1). In contrast, NIN is sufficient to promote the expression of the cytokinin receptor Cytokinin Response 1 (CRE1), which is restricted to the root cortex. Our work in Medicago truncatula highlights the complexity of NIN action and places NIN as a central player in the coordination of the symbiotic developmental programs occurring in differing tissues of the root that combined are necessary for a nitrogen-fixing symbiosis.


Assuntos
Medicago truncatula/genética , Proteínas de Plantas/metabolismo , Transdução de Sinais , Sinorhizobium meliloti/fisiologia , Simbiose , Fatores de Transcrição/metabolismo , Cálcio/metabolismo , Citocininas/metabolismo , Regulação da Expressão Gênica de Plantas , Genes Reporter , Medicago truncatula/citologia , Medicago truncatula/fisiologia , Fixação de Nitrogênio , Reguladores de Crescimento de Plantas/metabolismo , Proteínas de Plantas/genética , Nodulação , Raízes de Plantas/citologia , Raízes de Plantas/genética , Raízes de Plantas/metabolismo , Raízes de Plantas/fisiologia , Plantas Geneticamente Modificadas , Nódulos Radiculares de Plantas/citologia , Nódulos Radiculares de Plantas/genética , Nódulos Radiculares de Plantas/fisiologia , Nicotiana/citologia , Nicotiana/genética , Nicotiana/fisiologia , Fatores de Transcrição/genética
9.
J Integr Plant Biol ; 60(9): 878-896, 2018 Sep.
Artigo em Inglês | MEDLINE | ID: mdl-30047576

RESUMO

During the establishment of rhizobia-legume symbiosis, the cytokinin receptor LHK1 (Lotus Histidine Kinase 1) is essential for nodule formation. However, the mechanism by which cytokinin signaling regulates symbiosis remains largely unknown. In this study, an LHK1-interacting protein, LjCZF1, was identified and further characterized. LjCZF1 is a C3HC4-type RING finger protein that is highly conserved in plants. LjCZF1 specifically interacted with LHK1 in yeast two-hybrid, in vitro pull-down and co-immunoprecipitation assays conducted in tobacco. Phosphomimetic mutation of the potential threonine (T167D) phosphorylation site enhanced the interaction between LjCZF1 and LHK1, whereas phosphorylation mutation (T167A) eliminated this interaction. Transcript abundance of LjCZF1 was up-regulated significantly after inoculation with rhizobia. The LORE1 insertion mutant and clustered regularly interspaced short palindromic repeats (CRISPR)/CRISPR-associated protein 9-mediated knockout mutant Lotus japonicus plants demonstrated significantly reduced number of infection threads and nodules. In contrast, plants over-expressing LjCZF1 exhibited increased numbers of infection threads and nodules. Collectively, these data support the notion that LjCZF1 is a positive regulator of symbiotic nodulation, possibly through interaction with LHK1.


Assuntos
Lotus/metabolismo , Proteínas de Plantas/metabolismo , Rhizobium/fisiologia , Nódulos Radiculares de Plantas/metabolismo , Regulação da Expressão Gênica de Plantas , Lotus/citologia , Lotus/microbiologia , Proteínas de Plantas/genética , Nódulos Radiculares de Plantas/citologia , Nódulos Radiculares de Plantas/microbiologia , Transdução de Sinais/genética , Transdução de Sinais/fisiologia , Simbiose/genética , Simbiose/fisiologia
10.
Development ; 141(18): 3517-28, 2014 Sep.
Artigo em Inglês | MEDLINE | ID: mdl-25183870

RESUMO

Legume root nodules are induced by N-fixing rhizobium bacteria that are hosted in an intracellular manner. These nodules are formed by reprogramming differentiated root cells. The model legume Medicago truncatula forms indeterminate nodules with a meristem at their apex. This organ grows by the activity of the meristem that adds cells to the different nodule tissues. In Medicago sativa it has been shown that the nodule meristem is derived from the root middle cortex. During nodule initiation, inner cortical cells and pericycle cells are also mitotically activated. However, whether and how these cells contribute to the mature nodule has not been studied. Here, we produce a nodule fate map that precisely describes the origin of the different nodule tissues based on sequential longitudinal sections and on the use of marker genes that allow the distinction of cells originating from different root tissues. We show that nodule meristem originates from the third cortical layer, while several cell layers of the base of the nodule are directly formed from cells of the inner cortical layers, root endodermis and pericycle. The latter two differentiate into the uninfected tissues that are located at the base of the mature nodule, whereas the cells derived from the inner cortical cell layers form about eight cell layers of infected cells. This nodule fate map has then been used to re-analyse several mutant nodule phenotypes. This showed, among other things, that intracellular release of rhizobia in primordium cells and meristem daughter cells are regulated in a different manner.


Assuntos
Linhagem da Célula/fisiologia , Medicago truncatula/citologia , Meristema/citologia , Morfogênese/fisiologia , Nódulos Radiculares de Plantas/citologia , Diferenciação Celular/fisiologia , Simulação por Computador , Marcadores Genéticos/genética , Histocitoquímica , Medicago truncatula/microbiologia , Meristema/fisiologia , Nódulos Radiculares de Plantas/microbiologia
11.
Plant Cell Environ ; 40(11): 2706-2719, 2017 Nov.
Artigo em Inglês | MEDLINE | ID: mdl-28732146

RESUMO

Zinc is a micronutrient required for symbiotic nitrogen fixation. It has been proposed that in model legume Medicago truncatula, zinc is delivered by the root vasculature into the nodule and released in the infection/differentiation zone. There, transporters must introduce this element into rhizobia-infected cells to metallate the apoproteins that use zinc as a cofactor. MtZIP6 (Medtr4g083570) is an M. truncatula Zinc-Iron Permease (ZIP) that is expressed only in roots and nodules, with the highest expression levels in the infection/differentiation zone. Immunolocalization studies indicate that it is located in the plasma membrane of nodule rhizobia-infected cells. Down-regulating MtZIP6 expression levels with RNAi does not result in any strong phenotype when plants are fed mineral nitrogen. However, these plants displayed severe growth defects when they depended on nitrogen fixed by their nodules, losing of 80% of their nitrogenase activity. The reduction of this activity was likely an indirect effect of zinc being retained in the infection/differentiation zone and not reaching the cytosol of rhizobia-infected cells. These data are consistent with a model in which MtZIP6 would be responsible for zinc uptake by rhizobia-infected nodule cells in the infection/differentiation zone.


Assuntos
Medicago truncatula/enzimologia , Medicago truncatula/microbiologia , Proteínas de Plantas/metabolismo , Rhizobium/fisiologia , Nódulos Radiculares de Plantas/citologia , Nódulos Radiculares de Plantas/enzimologia , Zinco/metabolismo , Diferenciação Celular , Membrana Celular/metabolismo , Regulação da Expressão Gênica de Plantas , Homeostase , Medicago truncatula/genética , Modelos Biológicos , Fenótipo , Proteínas de Plantas/genética , Interferência de RNA , Nódulos Radiculares de Plantas/genética , Frações Subcelulares/metabolismo
12.
Physiol Plant ; 159(2): 215-227, 2017 Feb.
Artigo em Inglês | MEDLINE | ID: mdl-27762446

RESUMO

Induction of secreted and intracellular purple acid phosphatases (PAPs; EC 3.1.3.2) is widely recognized as an adaptation of plants to phosphorus (P) deficiency. The secretion of PAPs plays important roles in P acquisition. However, little is known about the functions of intracellular PAP in plants and nodules. In this study, we identified a novel PAP gene GmPAP21 in soybean. Expression of GmPAP21 was induced by P limitation in nodules, roots and old leaves, and increased in roots with increasing duration of P starvation. Furthermore, the induction of GmPAP21 in nodules and roots was more intensive than in leaves in both P-efficient genotype HN89 and P-inefficient genotype HN112 in response to P starvation, and the relative expression in the leaves and nodules of HN89 was significantly greater than that of HN112 after P deficiency treatment. Further functional analyses showed that over-expressing GmPAP21 significantly enhanced both acid phosphatase activity and growth performance of hairy roots under P starvation condition, indicating that GmPAP21 plays an important role in P utilization. Moreover, GUS expression driven by GmPAP21 promoter was shown in the nodules besides roots. Overexpression of GmPAP21 in transgenic soybean significantly inhibited nodule growth, and thereby affected plant growth after inoculation with rhizobia. This suggests that GmPAP21 is also possibly involved in regulating P metabolism in nodules. Taken together, our results suggest that GmPAP21 is a novel plant PAP that functions in the adaptation of soybean to P starvation, possibly through its involvement in P recycling in plants and P metabolism in nodules.


Assuntos
Fosfatase Ácida/metabolismo , Bradyrhizobium/fisiologia , Regulação da Expressão Gênica de Plantas , Glycine max/enzimologia , Glicoproteínas/metabolismo , Fósforo/metabolismo , Simbiose , Fosfatase Ácida/genética , Genes Reporter , Glicoproteínas/genética , Fósforo/deficiência , Folhas de Planta/citologia , Folhas de Planta/enzimologia , Folhas de Planta/genética , Folhas de Planta/microbiologia , Proteínas de Plantas/genética , Proteínas de Plantas/metabolismo , Raízes de Plantas/citologia , Raízes de Plantas/enzimologia , Raízes de Plantas/genética , Raízes de Plantas/microbiologia , Plantas Geneticamente Modificadas , Nódulos Radiculares de Plantas/citologia , Nódulos Radiculares de Plantas/enzimologia , Nódulos Radiculares de Plantas/genética , Nódulos Radiculares de Plantas/microbiologia , Glycine max/citologia , Glycine max/genética , Glycine max/microbiologia
13.
Proc Natl Acad Sci U S A ; 111(13): 4814-9, 2014 Apr 01.
Artigo em Inglês | MEDLINE | ID: mdl-24707045

RESUMO

Glycine max symbiotic ammonium transporter 1 was first documented as a putative ammonium (NH4(+)) channel localized to the symbiosome membrane of soybean root nodules. We show that Glycine max symbiotic ammonium transporter 1 is actually a membrane-localized basic helix-loop-helix (bHLH) DNA-binding transcription factor now renamed Glycine max bHLH membrane 1 (GmbHLHm1). In yeast, GmbHLHm1 enters the nucleus and transcriptionally activates a unique plasma membrane NH4(+) channel Saccharomyces cerevisiae ammonium facilitator 1. Ammonium facilitator 1 homologs are present in soybean and other plant species, where they often share chromosomal microsynteny with bHLHm1 loci. GmbHLHm1 is important to the soybean rhizobium symbiosis because loss of activity results in a reduction of nodule fitness and growth. Transcriptional changes in nodules highlight downstream signaling pathways involving circadian clock regulation, nutrient transport, hormone signaling, and cell wall modification. Collectively, these results show that GmbHLHm1 influences nodule development and activity and is linked to a novel mechanism for NH4(+) transport common to both yeast and plants.


Assuntos
Compostos de Amônio/metabolismo , Fatores de Transcrição de Zíper de Leucina e Hélice-Alça-Hélix Básicos/metabolismo , Proteínas de Transporte de Cátions/metabolismo , Glycine max/crescimento & desenvolvimento , Glycine max/metabolismo , Nódulos Radiculares de Plantas/crescimento & desenvolvimento , Nódulos Radiculares de Plantas/metabolismo , Proteínas de Soja/metabolismo , Transporte Biológico , Membrana Celular/metabolismo , DNA de Plantas/metabolismo , Regulação da Expressão Gênica de Plantas , Ligação Proteica , Nódulos Radiculares de Plantas/citologia , Nódulos Radiculares de Plantas/ultraestrutura , Saccharomyces cerevisiae/metabolismo , Glycine max/genética , Glycine max/ultraestrutura
14.
Biochim Biophys Acta ; 1850(8): 1469-78, 2015 Aug.
Artigo em Inglês | MEDLINE | ID: mdl-25433163

RESUMO

BACKGROUND: Nitrogen-fixing symbiosis between Rhizobium bacteria and legumes leads to the formation of a new organ, the root nodule. The development of the nodule requires the differentiation of plant root cells to welcome the endosymbiotic bacterial partner. This development includes the formation of an efficient vascular tissue which allows metabolic exchanges between the root and the nodule, the formation of a barrier to oxygen diffusion necessary for the bacterial nitrogenase activity and the enlargement of cells in the infection zone to support the large bacterial population. Inside the plant cell, the bacteria differentiate into bacteroids which are able to reduce atmospheric nitrogen to ammonia needed for plant growth in exchange for carbon sources. Nodule functioning requires a tight regulation of the development of plant cells and bacteria. SCOPE OF THE REVIEW: Nodule functioning requires a tight regulation of the development of plant cells and bacteria. The importance of redox control in nodule development and N-fixation is discussed in this review. The involvement of reactive oxygen and nitrogen species and the importance of the antioxidant defense are analyzed. MAJOR CONCLUSIONS: Plant differentiation and bacterial differentiation are controlled by reactive oxygen and nitrogen species, enzymes involved in the antioxidant defense and antioxidant compounds. GENERAL SIGNIFICANCE: The establishment and functioning of nitrogen-fixing symbiosis involve a redox control important for both the plant-bacteria crosstalk and the consideration of environmental parameters. This article is part of a Special Issue entitled Redox regulation of differentiation and de-differentiation.


Assuntos
Diferenciação Celular/fisiologia , Fixação de Nitrogênio/fisiologia , Nódulos Radiculares de Plantas/fisiologia , Simbiose/fisiologia , Fabaceae/citologia , Fabaceae/metabolismo , Fabaceae/microbiologia , Interações Hospedeiro-Patógeno , Oxirredução , Espécies Reativas de Nitrogênio/metabolismo , Espécies Reativas de Oxigênio/metabolismo , Nódulos Radiculares de Plantas/citologia , Nódulos Radiculares de Plantas/microbiologia , Sinorhizobium meliloti/metabolismo , Sinorhizobium meliloti/fisiologia
15.
Mol Plant Microbe Interact ; 29(7): 584-92, 2016 Jul.
Artigo em Inglês | MEDLINE | ID: mdl-27183039

RESUMO

Legume plants can establish symbiosis with soil bacteria called rhizobia to obtain nitrogen as a nutrient directly from atmospheric N2 via symbiotic nitrogen fixation. Legumes and rhizobia form nodules, symbiotic organs in which fixed-nitrogen and photosynthetic products are exchanged between rhizobia and plant cells. The photosynthetic products supplied to rhizobia are thought to be dicarboxylates but little is known about the movement of dicarboxylates in the nodules. In terms of dicarboxylate transporters, an aluminum-activated malate transporter (ALMT) family is a strong candidate responsible for the membrane transport of carboxylates in nodules. Among the seven ALMT genes in the Lotus japonicus genome, only one, LjALMT4, shows a high expression in the nodules. LjALMT4 showed transport activity in a Xenopus oocyte system, with LjALMT4 mediating the efflux of dicarboxylates including malate, succinate, and fumarate, but not tricarboxylates such as citrate. LjALMT4 also mediated the influx of several inorganic anions. Organ-specific gene expression analysis showed LjALMT4 mRNA mainly in the parenchyma cells of nodule vascular bundles. These results suggest that LjALMT4 may not be involved in the direct supply of dicarboxylates to rhizobia in infected cells but is responsible for supplying malate as well as several anions necessary for symbiotic nitrogen fixation, via nodule vasculatures.


Assuntos
Transportadores de Ácidos Dicarboxílicos/genética , Lotus/genética , Rhizobium/fisiologia , Simbiose , Transportadores de Ácidos Dicarboxílicos/metabolismo , Genes Reporter , Lotus/citologia , Lotus/metabolismo , Dados de Sequência Molecular , Fixação de Nitrogênio , Filogenia , Proteínas de Plantas/genética , Proteínas de Plantas/metabolismo , Rhizobium/citologia , Nódulos Radiculares de Plantas/citologia , Nódulos Radiculares de Plantas/metabolismo , Nódulos Radiculares de Plantas/microbiologia , Análise de Sequência de DNA
16.
Mol Plant Microbe Interact ; 29(12): 950-964, 2016 12.
Artigo em Inglês | MEDLINE | ID: mdl-27929718

RESUMO

Legume plants engage in intimate relationships with rhizobial bacteria to form nitrogen-fixing nodules, root-derived organs that accommodate the microsymbiont. Members of the Nuclear Factor Y (NF-Y) gene family, which have undergone significant expansion and functional diversification during plant evolution, are essential for this symbiotic liaison. Acting in a partially redundant manner, NF-Y proteins were shown, previously, to regulate bacterial infection, including selection of a superior rhizobial strain, and to mediate nodule structure formation. However, the exact mechanism by which these transcriptional factors exert their symbiotic functions has remained elusive. By carrying out detailed functional analyses of Lotus japonicus mutants, we demonstrate that LjNF-YA1 becomes indispensable downstream from the initial cortical cell divisions but prior to nodule differentiation, including cell enlargement and vascular bundle formation. Three affiliates of the SHORT INTERNODES/STYLISH transcription factor gene family, called STY1, STY2, and STY3, are demonstrated to be among likely direct targets of LjNF-YA1, and our results point to their involvement in nodule formation.


Assuntos
Fator de Ligação a CCAAT/metabolismo , Lotus/genética , Rhizobium/fisiologia , Transcriptoma , Sequência de Aminoácidos , Fator de Ligação a CCAAT/genética , Diferenciação Celular , Mapeamento Cromossômico , Genes Reporter , Lotus/citologia , Lotus/microbiologia , Lotus/fisiologia , Mutação , Fenótipo , Proteínas de Plantas/genética , Proteínas de Plantas/metabolismo , Raízes de Plantas/citologia , Raízes de Plantas/genética , Raízes de Plantas/microbiologia , Raízes de Plantas/fisiologia , Nódulos Radiculares de Plantas/citologia , Nódulos Radiculares de Plantas/genética , Nódulos Radiculares de Plantas/microbiologia , Nódulos Radiculares de Plantas/fisiologia , Alinhamento de Sequência , Simbiose , Fatores de Transcrição/genética , Fatores de Transcrição/metabolismo
17.
Plant J ; 79(5): 757-68, 2014 Sep.
Artigo em Inglês | MEDLINE | ID: mdl-24930743

RESUMO

During endosymbiotic interactions between legume plants and nitrogen-fixing rhizobia, successful root infection by bacteria and nodule organogenesis requires the perception and transduction of bacterial lipo-chitooligosaccharidic signal called Nod factor (NF). NF perception in legume roots leads to the activation of an early signaling pathway and of a set of symbiotic genes which is controlled by specific early transcription factors (TFs) including CYCLOPS/IPD3, NSP1, NSP2, ERN1 and NIN. In this study, we bring convincing evidence that the Medicago truncatula CCAAT-box-binding NF-YA1 TF, previously associated with later stages of rhizobial infection and nodule meristem formation is, together with its closest homolog NF-YA2, also an essential positive regulator of the NF-signaling pathway. Here we show that NF-YA1 and NF-YA2 are both expressed in epidermal cells responding to NFs and their knock-down by reverse genetic approaches severely affects the NF-induced expression of symbiotic genes and rhizobial infection. Further over-expression, transactivation and ChIP-PCR approaches indicate that NF-YA1 and NF-YA2 function, at least in part, via the direct activation of ERN1. We thus propose a model in which NF-YA1 and NF-YA2 appear as early symbiotic regulators acting downstream of DMI3 and NIN and possibly within the same regulatory complexes as NSP1/2 to directly activate the expression of ERN1.


Assuntos
Fator de Ligação a CCAAT/genética , Regulação da Expressão Gênica de Plantas , Medicago truncatula/genética , Transdução de Sinais , Sinorhizobium meliloti/fisiologia , Simbiose , Fator de Ligação a CCAAT/metabolismo , Expressão Gênica , Genes Reporter , Medicago truncatula/citologia , Medicago truncatula/microbiologia , Medicago truncatula/fisiologia , Microdissecção , Proteínas de Plantas/genética , Proteínas de Plantas/metabolismo , Raízes de Plantas/citologia , Raízes de Plantas/genética , Raízes de Plantas/microbiologia , Raízes de Plantas/fisiologia , RNA de Plantas/química , RNA de Plantas/genética , Nódulos Radiculares de Plantas/citologia , Nódulos Radiculares de Plantas/genética , Nódulos Radiculares de Plantas/microbiologia , Nódulos Radiculares de Plantas/fisiologia , Análise de Sequência de RNA , Nicotiana/genética , Nicotiana/microbiologia , Nicotiana/fisiologia , Fatores de Transcrição/genética , Fatores de Transcrição/metabolismo
18.
Mol Plant Microbe Interact ; 28(5): 534-45, 2015 May.
Artigo em Inglês | MEDLINE | ID: mdl-25761207

RESUMO

The calcium/calmodulin-dependent protein kinase CCaMK forms a complex with its phosphorylation target CIP73 (CCaMK-interacting protein of 73 kDa). In this work, a homolog of the animal HSC/HSP70 interacting protein (HIP) was identified as an interacting partner of CIP73 in Lotus japonicus. L. japonicus HIP contains all functional domains characteristic of animal HIP proteins. The C-terminal STI1-like domain of L. japonicus HIP was found to be necessary and sufficient for interaction with CIP73. The interaction between CIP73 and HIP occurred in both the nuclei and cytoplasm in Nicotiana benthamiana leaf cells. The interactions between CIP73 and HIP and between CIP73 and CCaMK could take place simultaneously in the same nuclei. HIP transcripts were detected in all plant tissues tested. As nodule primordia developed into young nodules, the expression of HIP was down-regulated and the HIP transcript level became very low in mature nodules. More nodules were formed in transgenic hairy roots of L. japonicus expressing HIP RNA interference at 16 days postinoculation as compared with the control hairy roots expressing the empty vector. It appears that HIP may play a role as a negative regulator for nodulation.


Assuntos
Proteínas Quinases Dependentes de Cálcio-Calmodulina/metabolismo , Regulação da Expressão Gênica de Plantas , Lotus/metabolismo , Chaperonas Moleculares/metabolismo , Proteínas de Plantas/metabolismo , Sequência de Bases , Proteínas Quinases Dependentes de Cálcio-Calmodulina/genética , Regulação para Baixo , Genes Reporter , Lotus/citologia , Lotus/genética , Chaperonas Moleculares/genética , Dados de Sequência Molecular , Filogenia , Folhas de Planta/citologia , Folhas de Planta/genética , Folhas de Planta/metabolismo , Proteínas de Plantas/genética , Nodulação , Plantas Geneticamente Modificadas , Multimerização Proteica , Estrutura Terciária de Proteína , Nódulos Radiculares de Plantas/citologia , Nódulos Radiculares de Plantas/genética , Nódulos Radiculares de Plantas/metabolismo , Análise de Sequência de DNA , Simbiose , Nicotiana/citologia , Nicotiana/genética , Nicotiana/metabolismo , Técnicas do Sistema de Duplo-Híbrido , Ubiquitina
19.
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
20.
Plant Physiol ; 166(4): 1684-7, 2014 Dec.
Artigo em Inglês | MEDLINE | ID: mdl-25344504

RESUMO

We report on a nondestructive clearing technique that enhances transmission of light through specimens from diverse plant species, opening unique opportunities for microscope-enabled plant research. After clearing, plant organs and thick tissue sections are amenable to deep imaging. The clearing method is compatible with immunocytochemistry techniques and can be used in concert with common fluorescent probes, including widely adopted protein tags such as GFP, which has fluorescence that is preserved during the clearing process.


Assuntos
Imageamento Tridimensional/métodos , Medicago truncatula/citologia , Nicotiana/citologia , Pisum sativum/citologia , Zea mays/citologia , Corantes Fluorescentes , Microscopia de Fluorescência/métodos , Folhas de Planta/citologia , Preservação Biológica/métodos , Nódulos Radiculares de Plantas/citologia
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