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1.
Plant Physiol ; 2024 Jun 12.
Article in English | MEDLINE | ID: mdl-38865442

ABSTRACT

The roots of plants play multiples functions that are essential for growth and development, including anchoring to the soil and water and nutrient acquisition. These underground organs exhibit the plasticity to modify their root system architecture in response to environmental cues allowing adaptation to change in water and nutrient availability. In addition, roots enter in mutualistic interactions with soil microorganisms, e.g. the root nodule symbiosis established between a limited group of plants and nitrogen fixing soil bacteria and the arbuscular mycorrhiza symbiosis involving most land plants and fungi of the Glomeromycetes phylum. In the past 20 years, genetic approaches allowed the identification and functional characterization of genes required for the specific programs of root development, root nodule and arbuscular mycorrhiza symbioses. These genetic studies provided evidence that the program of root nodule symbiosis recruited components of the arbuscular mycorrhiza symbiosis and the root developmental programs. The execution of these programs is strongly influenced by epigenetic changes -DNA methylation and histone post-translational modifications- that alter chromatin conformation modifying the expression of key genes. In this review, we summarize recent advances that highlighted how DNA methylation and histone post-translational modifications, as well as chromatin remodeling factors and long non-coding RNAs, shape the root system architecture and allow the successful establishment of both root nodule and arbuscular mycorrhiza symbioses. We anticipate that the analysis of dynamic epigenetic changes and chromatin 3D structure in specific single-cells or tissue types of root organs will illuminate our understanding of how root developmental and symbiotic programs are orchestrated, opening exciting questions and new perspectives to modulate agronomical and ecological traits linked to nutrient acquisition.

2.
New Phytol ; 242(6): 2746-2762, 2024 Jun.
Article in English | MEDLINE | ID: mdl-38666352

ABSTRACT

Legume plants develop two types of root postembryonic organs, lateral roots and symbiotic nodules, using shared regulatory components. The module composed by the microRNA390, the Trans-Acting SIRNA3 (TAS3) RNA and the Auxin Response Factors (ARF)2, ARF3, and ARF4 (miR390/TAS3/ARFs) mediates the control of both lateral roots and symbiotic nodules in legumes. Here, a transcriptomic approach identified a member of the Lateral Organ Boundaries Domain (LBD) family of transcription factors in Medicago truncatula, designated MtLBD17/29a, which is regulated by the miR390/TAS3/ARFs module. ChIP-PCR experiments evidenced that MtARF2 binds to an Auxin Response Element present in the MtLBD17/29a promoter. MtLBD17/29a is expressed in root meristems, lateral root primordia, and noninfected cells of symbiotic nodules. Knockdown of MtLBD17/29a reduced the length of primary and lateral roots and enhanced lateral root formation, whereas overexpression of MtLBD17/29a produced the opposite phenotype. Interestingly, both knockdown and overexpression of MtLBD17/29a reduced nodule number and infection events and impaired the induction of the symbiotic genes Nodulation Signaling Pathway (NSP) 1 and 2. Our results demonstrate that MtLBD17/29a is regulated by the miR390/TAS3/ARFs module and a direct target of MtARF2, revealing a new lateral root regulatory hub recruited by legumes to act in the root nodule symbiotic program.


Subject(s)
Gene Expression Regulation, Plant , Indoleacetic Acids , Medicago truncatula , Plant Proteins , Plant Root Nodulation , Plant Roots , Transcription Factors , Medicago truncatula/genetics , Medicago truncatula/microbiology , Medicago truncatula/metabolism , Medicago truncatula/growth & development , Plant Proteins/metabolism , Plant Proteins/genetics , Transcription Factors/metabolism , Transcription Factors/genetics , Plant Root Nodulation/genetics , Plant Roots/growth & development , Plant Roots/genetics , Plant Roots/metabolism , Indoleacetic Acids/metabolism , Promoter Regions, Genetic/genetics , MicroRNAs/genetics , MicroRNAs/metabolism , Gene Knockdown Techniques , Symbiosis/genetics , Root Nodules, Plant/metabolism , Root Nodules, Plant/genetics , Root Nodules, Plant/growth & development
3.
Front Plant Sci ; 12: 659061, 2021.
Article in English | MEDLINE | ID: mdl-33897748

ABSTRACT

Auxin Response Factors (ARFs) constitute a large family of transcription factors that mediate auxin-regulated developmental programs in plants. ARF2, ARF3, and ARF4 are post-transcriptionally regulated by the microRNA390 (miR390)/trans-acting small interference RNA 3 (TAS3) module through the action of TAS3-derived trans - acting small interfering RNAs (ta-siRNA). We have previously reported that constitutive activation of the miR390/TAS3 pathway promotes elongation of lateral roots but impairs nodule organogenesis and infection by rhizobia during the nitrogen-fixing symbiosis established between Medicago truncatula and its partner Sinorhizobium meliloti. However, the involvement of the targets of the miR390/TAS3 pathway, i.e., MtARF2, MtARF3, MtARF4a, and MtARF4b, in root development and establishment of the nitrogen-fixing symbiosis remained unexplored. Here, promoter:reporter fusions showed that expression of both MtARF3 and MtARF4a was associated with lateral root development; however, only the MtARF4a promoter was active in developing nodules. In addition, up-regulation of MtARF2, MtARF3, and MtARF4a/b in response to rhizobia depends on Nod Factor perception. We provide evidence that simultaneous knockdown of MtARF2, MtARF3, MtARF4a, and MtARF4b or mutation in MtARF4a impaired nodule formation, and reduced initiation and progression of infection events. Silencing of MtARF2, MtARF3, MtARF4a, and MtARF4b altered mRNA levels of the early nodulation gene nodulation signaling pathway 2 (MtNSP2). In addition, roots with reduced levels of MtARF2, MtARF3, MtARF4a, and MtARF4b, as well as arf4a mutant plants exhibited altered root architecture, causing a reduction in primary and lateral root length, but increasing lateral root density. Taken together, our results suggest that these ARF members are common key players of the morphogenetic programs that control root development and the formation of nitrogen-fixing nodules.

4.
New Phytol ; 229(3): 1535-1552, 2021 02.
Article in English | MEDLINE | ID: mdl-32978812

ABSTRACT

Organogenesis of legume root nodules begins with the nodulation factor-dependent stimulation of compatible root cells to initiate divisions, signifying an early nodule primordium formation event. This is followed by cellular differentiation, including cell expansion and vascular bundle formation, and we previously showed that Lotus japonicus NF-YA1 is essential for this process, presumably by regulating three members of the SHORT INTERNODES/STYLISH (STY) transcription factor gene family. In this study, we used combined genetics, genomics and cell biology approaches to characterize the role of STY genes during root nodule formation and to test a hypothesis that they mediate nodule development by stimulating auxin signalling. We show here that L. japonicus STYs are required for nodule emergence. This is attributed to the NF-YA1-dependent regulatory cascade, comprising STY genes and their downstream targets, YUCCA1 and YUCCA11, involved in a local auxin biosynthesis at the post-initial cell division stage. An analogous NF-YA1/STY regulatory module seems to operate in Medicago truncatula in association with the indeterminate nodule patterning. Our data define L. japonicus and M. truncatula NF-YA1 genes as important nodule emergence stage-specific regulators of auxin signalling while indicating that the inductive stage and subsequent formation of early nodule primordia are mediated through an independent mechanism(s).


Subject(s)
Lotus , Medicago truncatula , Gene Expression Regulation, Plant , Indoleacetic Acids , Lotus/genetics , Lotus/metabolism , Medicago truncatula/genetics , Medicago truncatula/metabolism , Plant Proteins/genetics , Plant Proteins/metabolism , Root Nodules, Plant/genetics , Root Nodules, Plant/metabolism , Signal Transduction , Symbiosis
5.
Faraday Discuss ; 223(0): 195-206, 2020 10 23.
Article in English | MEDLINE | ID: mdl-32743618

ABSTRACT

The bright colors found on the wings of some butterflies have been widely examined during recent decades because they are frequently caused by nano-structures and not by pigments or dyes. Sometimes it is puzzling to discover the physical origin of these structural colors because the color-causing nano-structures are integrated into a complex structure of scales that densely covers the butterfly wings. While the color of the wings serves purposes ranging from mating to camouflage and thermoregulation, the overall structure of the scales is commonly believed to assist with aerodynamics, self-cleaning, and easy release from spider webs. This multi-functionality of butterfly scales causes various constraints for their evolutionary design. Here, we present a structural analysis of the height and distance of the ridges in cover scales of butterfly species from different families. The subsequent analysis reveals a linear scaling law. The height of the ridges is always less than half of the distance between them. Finally, we discuss possible reasons for this geometrical scaling law.


Subject(s)
Butterflies , Color , Wings, Animal , Animals , Butterflies/classification , Pigmentation , Species Specificity
6.
Plant Physiol ; 179(4): 1704-1722, 2019 04.
Article in English | MEDLINE | ID: mdl-30710053

ABSTRACT

The symbiotic infection of root cells by nitrogen-fixing rhizobia during nodulation requires the transcription factor Nodule Inception (NIN). Our root hair transcriptomic study extends NIN's regulon to include Rhizobium Polar Growth and genes involved in cell wall modification, gibberellin biosynthesis, and a comprehensive group of nutrient (N, P, and S) uptake and assimilation genes, suggesting that NIN's recruitment to nodulation was based on its role as a growth module, a role shared with other NIN-Like Proteins. The expression of jasmonic acid genes in nin suggests the involvement of NIN in the resolution of growth versus defense outcomes. We find that the regulation of the growth module component Nodulation Pectate Lyase by NIN, and its function in rhizobial infection, are conserved in hologalegina legumes, highlighting its recruitment as a major event in the evolution of nodulation. We find that Nodulation Pectate Lyase is secreted to the infection chamber and the lumen of the infection thread. Gene network analysis using the transcription factor mutants for ERF Required for Nodulation1 and Nuclear Factor-Y Subunit A1 confirms hierarchical control of NIN over Nuclear Factor-Y Subunit A1 and shows that ERF Required for Nodulation1 acts independently to control infection. We conclude that while NIN shares functions with other NIN-Like Proteins, the conscription of key infection genes to NIN's control has made it a central regulatory hub for rhizobial infection.


Subject(s)
Medicago truncatula/genetics , Plant Proteins/physiology , Rhizobium/physiology , Biosynthetic Pathways/genetics , Cyclopentanes/metabolism , Gene Expression Regulation, Plant , Gene Regulatory Networks , Gibberellins/biosynthesis , Medicago truncatula/microbiology , Oxylipins/metabolism , Plant Proteins/genetics , Plant Proteins/metabolism , Rhizobium/genetics
7.
Nat Plants ; 4(12): 1017-1025, 2018 12.
Article in English | MEDLINE | ID: mdl-30397259

ABSTRACT

Advances in deciphering the functional architecture of eukaryotic genomes have been facilitated by recent breakthroughs in sequencing technologies, enabling a more comprehensive representation of genes and repeat elements in genome sequence assemblies, as well as more sensitive and tissue-specific analyses of gene expression. Here we show that PacBio sequencing has led to a substantially improved genome assembly of Medicago truncatula A17, a legume model species notable for endosymbiosis studies1, and has enabled the identification of genome rearrangements between genotypes at a near-base-pair resolution. Annotation of the new M. truncatula genome sequence has allowed for a thorough analysis of transposable elements and their dynamics, as well as the identification of new players involved in symbiotic nodule development, in particular 1,037 upregulated long non-coding RNAs (lncRNAs). We have also discovered that a substantial proportion (~35% and 38%, respectively) of the genes upregulated in nodules or expressed in the nodule differentiation zone colocalize in genomic clusters (270 and 211, respectively), here termed symbiotic islands. These islands contain numerous expressed lncRNA genes and display differentially both DNA methylation and histone marks. Epigenetic regulations and lncRNAs are therefore attractive candidate elements for the orchestration of symbiotic gene expression in the M. truncatula genome.


Subject(s)
Epigenesis, Genetic , Genome, Plant/genetics , Medicago truncatula/genetics , RNA, Untranslated/genetics , Symbiosis/genetics , DNA Methylation , Gene Expression Regulation, Plant , Genomics , Multigene Family , Plant Proteins/genetics , RNA, Plant/genetics , Root Nodules, Plant/genetics
8.
Curr Biol ; 28(22): 3562-3577.e6, 2018 11 19.
Article in English | MEDLINE | ID: mdl-30416059

ABSTRACT

The formation of nitrogen-fixing nodules in legumes involves the initiation of synchronized programs in the root epidermis and cortex to allow rhizobial infection and nodule development. In this study, we provide evidence that symplastic communication, regulated by callose turnover at plasmodesmata (PD), is important for coordinating nodule development and infection in Medicago truncatula. Here, we show that rhizobia promote a reduction in callose levels in inner tissues where nodules initiate. This downregulation coincides with the localized expression of M. truncatula ß-1,3-glucanase 2 (MtBG2), encoding a novel PD-associated callose-degrading enzyme. Spatiotemporal analyses revealed that MtBG2 expression expands from dividing nodule initials to rhizobia-colonized cortical and epidermal tissues. As shown by the transport of fluorescent molecules in vivo, symplastic-connected domains are created in rhizobia-colonized tissues and enhanced in roots constitutively expressing MtBG2. MtBG2-overexpressing roots additionally displayed reduced levels of PD-associated callose. Together, these findings suggest an active role for MtBG2 in callose degradation and in the formation of symplastic domains during sequential nodule developmental stages. Interfering with symplastic connectivity led to drastic nodulation phenotypes. Roots ectopically expressing ß-1,3-glucanases (including MtBG2) exhibited increased nodule number, and those expressing MtBG2 RNAi constructs or a hyperactive callose synthase (under symbiotic promoters) showed defective nodulation phenotypes. Obstructing symplastic connectivity appears to block a signaling pathway required for the expression of NODULE INCEPTION (NIN) and its target NUCLEAR FACTOR-YA1 (NF-YA1) in the cortex. We conclude that symplastic intercellular communication is proactively enhanced by rhizobia, and this is necessary for appropriate coordination of bacterial infection and nodule development.


Subject(s)
Glucans/metabolism , Plasmodesmata/metabolism , Root Nodules, Plant/growth & development , Gene Expression Regulation, Plant/genetics , Glucan 1,3-beta-Glucosidase/metabolism , Glucan 1,3-beta-Glucosidase/physiology , Glucans/physiology , Intercellular Junctions/metabolism , Medicago truncatula/genetics , Medicago truncatula/metabolism , Nitrogen Fixation , Organogenesis, Plant , Plant Proteins/metabolism , Plant Roots/growth & development , Rhizobium , Root Nodules, Plant/microbiology , Signal Transduction , Symbiosis/genetics
9.
Plant J ; 93(4): 747-770, 2018 02.
Article in English | MEDLINE | ID: mdl-29232012

ABSTRACT

Despite the importance of plant-plant interactions on crop yield and plant community dynamics, our understanding of the genetic and molecular bases underlying natural variation of plant-plant interactions is largely limited in comparison with other types of biotic interactions. By listing 63 quantitative trait loci (QTL) mapping and global gene expression studies based on plants directly challenged by other plants, we explored whether the genetic architecture and the function of the candidate genes underlying natural plant-plant interactions depend on the type of interactions between two plants (competition versus commensalism versus reciprocal helping versus asymmetry). The 16 transcriptomic studies are unevenly distributed between competitive interactions (n = 12) and asymmetric interactions (n = 4, all focusing on response to parasitic plants). By contrast, 17 and 30 QTL studies were identified for competitive interactions and asymmetric interactions (either weed suppressive ability or response to parasitic plants), respectively. Surprisingly, no studies have been carried out on the identification of genetic and molecular bases underlying natural variation in positive interactions. The candidate genes underlying natural plant-plant interactions can be classified into seven categories of plant function that have been identified in artificial environments simulating plant-plant interactions either frequently (photosynthesis, hormones), only recently (cell wall modification and degradation, defense pathways against pathogens) or rarely (ABC transporters, histone modification and meristem identity/life history traits). Finally, we introduce several avenues that need to be explored in the future to obtain a thorough understanding of the genetic and molecular bases underlying plant-plant interactions within the context of realistic community complexity.


Subject(s)
Plant Exudates/physiology , Plant Physiological Phenomena/genetics , Quantitative Trait Loci , Genetic Variation , Light , Microbiota/genetics , Photosynthesis , Protein Processing, Post-Translational , Signal Transduction , Volatile Organic Compounds/metabolism
10.
PLoS One ; 12(11): e0188923, 2017.
Article in English | MEDLINE | ID: mdl-29186192

ABSTRACT

Promoters with tissue-specific activity are very useful to address cell-autonomous and non cell autonomous functions of candidate genes. Although this strategy is widely used in Arabidopsis thaliana, its use to study tissue-specific regulation of root symbiotic interactions in legumes has only started recently. Moreover, using tissue specific promoter activity to drive a GAL4-VP16 chimeric transcription factor that can bind short upstream activation sequences (UAS) is an efficient way to target and enhance the expression of any gene of interest. Here, we developed a collection of promoters with different root cell layers specific activities in Medicago truncatula and tested their abilities to drive the expression of a chimeric GAL4-VP16 transcription factor in a trans-activation UAS: ß-Glucuronidase (GUS) reporter gene system. By developing a binary vector devoted to modular Golden Gate cloning together with a collection of adapted tissue specific promoters and coding sequences we could test the activity of four of these promoters in trans-activation GAL4/UAS systems and compare them to "classical" promoter GUS fusions. Roots showing high levels of tissue specific expression of the GUS activity could be obtained with this trans-activation system. We therefore provide the legume community with new tools for efficient modular Golden Gate cloning, tissue specific expression and a trans-activation system. This study provides the ground work for future development of stable transgenic lines in Medicago truncatula.


Subject(s)
Medicago truncatula/genetics , Trans-Activators/genetics , Transcriptional Activation , Cloning, Molecular , Genes, Plant , Promoter Regions, Genetic
11.
Biochim Biophys Acta Gene Regul Mech ; 1860(5): 645-654, 2017 May.
Article in English | MEDLINE | ID: mdl-27939756

ABSTRACT

NF-Ys are heterotrimeric transcription factors composed by the NF-YA, NF-YB and NF-YC subunits. In plants, NF-Y subunits are encoded by multigene families whose members show structural and functional diversifications. An increasing number of NF-Y genes has been shown to play key roles during different stages of root nodule and arbuscular mycorrhizal symbiosis, as well as during the interaction of plants with pathogenic microorganisms. Individual members of the NF-YA and NF-YB families have also been implicated in the development of primary and lateral roots. In addition, different members of the NF-YA and NF-YB gene families from mono- and di-cotyledonous plants have been involved in plant responses to water and nutrient scarcity. This review presents the most relevant and striking results concerning these NF-Y subunits. A phylogenetic analysis of the functionally characterized NF-Y genes revealed that, across plant species, NF-Y proteins functioning in the same biological process tend to belong to common phylogenetic groups. Finally, we discuss the forthcoming challenges of plant NF-Y research, including the detailed dissection of expression patterns, the elucidation of functional specificities as well as the characterization of the potential NF-Y-mediated epigenetic mechanisms by which they control the expression of their target genes. This article is part of a Special Issue entitled: Nuclear Factor Y in Development and Disease, edited by Prof. Roberto Mantovani.


Subject(s)
CCAAT-Binding Factor , Epigenesis, Genetic/physiology , Gene Expression Regulation, Plant/physiology , Mycorrhizae , Plant Proteins , Plants , CCAAT-Binding Factor/genetics , CCAAT-Binding Factor/metabolism , Mycorrhizae/genetics , Mycorrhizae/metabolism , Phylogeny , Plant Proteins/genetics , Plant Proteins/metabolism , Plants/genetics , Plants/metabolism
12.
Front Plant Sci ; 7: 1837, 2016.
Article in English | MEDLINE | ID: mdl-27994614

ABSTRACT

Plant NF-Y transcription factors control a wide array of biological functions enabling appropriate reproductive and developmental processes as well as adaptation to various abiotic and biotic environments. In Medicago truncatula, MtNF-YA1 was previously identified as a key determinant for nodule development and establishment of rhizobial symbiosis. Here, we highlight a new role for this protein in compatibility to Aphanomyces euteiches, a root pathogenic oomycete. The Mtnf-ya1-1 mutant plants showed better survival rate, reduced symptoms, and increased development of their root apparatus as compared to their wild-type (WT) background A17. MtNF-YA-1 was specifically up-regulated by A. euteiches in F83005.5, a highly susceptible natural accession of M. truncatula while transcript level remained stable in A17, which is partially resistant. The role of MtNF-YA1 in F83005.5 susceptibility was further documented by reducing MtNF-YA1 expression either by overexpression of the miR169q, a microRNA targeting MtNF-YA1, or by RNAi approaches leading to a strong enhancement in the resistance of this susceptible line. Comparative analysis of the transcriptome of WT and Mtnf-ya1-1 led to the identification of 1509 differentially expressed genes. Among those, almost 36 defense-related genes were constitutively expressed in Mtnf-ya1-1, while 20 genes linked to hormonal pathways were repressed. In summary, we revealed an unexpected dual role for this symbiotic transcription factor as a key player in the compatibility mechanisms to a pathogen.

13.
J Vis Exp ; (115)2016 09 09.
Article in English | MEDLINE | ID: mdl-27684439

ABSTRACT

Fast pyrolysis is being increasingly applied in commercial plants worldwide. They run exclusively on woody biomass, which has favorable properties for conversion with fast pyrolysis. In order to increase the synergies of food production and the energetic and/or material use of biomass, it is desirable to utilize residues from agricultural production, e.g., straw. The presented method is suitable for converting such a material on an industrial scale. The main features are presented and an example of mass balances from the conversion of several biomass residues is given. After conversion, fractionated condensation is applied in order to retrieve two condensates - an organic-rich and an aqueous-rich one. This design prevents the production of fast pyrolysis bio-oil that exhibits phase separation. A two phase bio-oil is to be expected because of the typically high ash content of straw biomass, which promotes the production of water of reaction during conversion. Both fractionated condensation and the use of biomass with high ash content demand a careful approach for establishing balances. Not all kind of balances are both meaningful and comparable to other results from the literature. Different balancing methods are presented, and the information that can be derived from them is discussed.


Subject(s)
Biofuels , Biomass , Bioreactors , Agriculture , Molecular Weight , Water
14.
Nat Commun ; 7: 12636, 2016 09 02.
Article in English | MEDLINE | ID: mdl-27586842

ABSTRACT

Legumes develop symbiotic interactions with rhizobial bacteria to form nitrogen-fixing nodules. Bacterial Nod factors (NFs) and plant regulatory pathways modulating NF signalling control rhizobial infections and nodulation efficiency. Here we show that gibberellin (GA) signalling mediated by DELLA proteins inhibits rhizobial infections and controls the NF induction of the infection marker ENOD11 in Medicago truncatula. Ectopic expression of a constitutively active DELLA protein in the epidermis is sufficient to promote ENOD11 expression in the absence of symbiotic signals. We show using heterologous systems that DELLA proteins can interact with the nodulation signalling pathway 2 (NSP2) and nuclear factor-YA1 (NF-YA1) transcription factors that are essential for the activation of NF responses. Furthermore, MtDELLA1 can bind the ERN1 (ERF required for nodulation 1) promoter and positively transactivate its expression. Overall, we propose that GA-dependent action of DELLA proteins may directly regulate the NSP1/NSP2 and NF-YA1 activation of ERN1 transcription to regulate rhizobial infections.


Subject(s)
Gibberellins/metabolism , Medicago truncatula/microbiology , Plant Root Nodulation/physiology , Root Nodules, Plant/microbiology , Sinorhizobium meliloti/metabolism , CCAAT-Binding Factor/metabolism , Lipopolysaccharides/metabolism , Medicago truncatula/genetics , Plant Proteins/biosynthesis , Plant Proteins/metabolism , Signal Transduction , Sinorhizobium meliloti/growth & development
15.
Plant Cell ; 27(12): 3410-24, 2015 Dec.
Article in English | MEDLINE | ID: mdl-26672071

ABSTRACT

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.


Subject(s)
Medicago truncatula/genetics , Plant Proteins/metabolism , Signal Transduction , Sinorhizobium meliloti/physiology , Symbiosis , Transcription Factors/metabolism , Calcium/metabolism , Cytokinins/metabolism , Gene Expression Regulation, Plant , Genes, Reporter , Medicago truncatula/cytology , Medicago truncatula/physiology , Nitrogen Fixation , Plant Growth Regulators/metabolism , Plant Proteins/genetics , Plant Root Nodulation , Plant Roots/cytology , Plant Roots/genetics , Plant Roots/metabolism , Plant Roots/physiology , Plants, Genetically Modified , Root Nodules, Plant/cytology , Root Nodules, Plant/genetics , Root Nodules, Plant/physiology , Nicotiana/cytology , Nicotiana/genetics , Nicotiana/physiology , Transcription Factors/genetics
16.
Plant Physiol ; 169(4): 2761-73, 2015 Dec.
Article in English | MEDLINE | ID: mdl-26432878

ABSTRACT

The endosymbiotic association between legumes and soil bacteria called rhizobia leads to the formation of a new root-derived organ called the nodule in which differentiated bacteria convert atmospheric nitrogen into a form that can be assimilated by the host plant. Successful root infection by rhizobia and nodule organogenesis require the activation of symbiotic genes that are controlled by a set of transcription factors (TFs). We recently identified Medicago truncatula nuclear factor-YA1 (MtNF-YA1) and MtNF-YA2 as two M. truncatula TFs playing a central role during key steps of the Sinorhizobium meliloti-M. truncatula symbiotic interaction. NF-YA TFs interact with NF-YB and NF-YC subunits to regulate target genes containing the CCAAT box consensus sequence. In this study, using a yeast two-hybrid screen approach, we identified the NF-YB and NF-YC subunits able to interact with MtNF-YA1 and MtNF-YA2. In yeast (Saccharomyces cerevisiae) and in planta, we further demonstrated by both coimmunoprecipitation and bimolecular fluorescence complementation that these NF-YA, -B, and -C subunits interact and form a stable NF-Y heterotrimeric complex. Reverse genetic and chromatin immunoprecipitation-PCR approaches revealed the importance of these newly identified NF-YB and NF-YC subunits for rhizobial symbiosis and binding to the promoter of MtERN1 (for Ethylene Responsive factor required for Nodulation), a direct target gene of MtNF-YA1 and MtNF-YA2. Finally, we verified that a similar trimer is formed in planta by the common bean (Phaseolus vulgaris) NF-Y subunits, revealing the existence of evolutionary conserved NF-Y protein complexes to control nodulation in leguminous plants. This sheds light on the process whereby an ancient heterotrimeric TF mainly controlling cell division in animals has acquired specialized functions in plants.


Subject(s)
CCAAT-Binding Factor/genetics , Fabaceae/genetics , Phylogeny , Plant Proteins/genetics , Plant Root Nodulation/genetics , Transcription Factors/genetics , Amino Acid Sequence , CCAAT-Binding Factor/classification , CCAAT-Binding Factor/metabolism , Cell Nucleus/genetics , Cell Nucleus/metabolism , Cytoplasm/genetics , Cytoplasm/metabolism , Fabaceae/metabolism , Fabaceae/microbiology , Gene Expression Profiling/methods , Gene Expression Regulation, Plant , Host-Pathogen Interactions , Medicago truncatula/genetics , Medicago truncatula/microbiology , Microscopy, Confocal , Molecular Sequence Data , Phaseolus/genetics , Phaseolus/microbiology , Plant Proteins/classification , Plant Proteins/metabolism , Protein Binding , RNA Interference , Reverse Transcriptase Polymerase Chain Reaction , Rhizobium/physiology , Sequence Homology, Amino Acid , Sinorhizobium meliloti/physiology , Symbiosis , Transcription Factors/classification , Transcription Factors/metabolism , Two-Hybrid System Techniques
17.
Genome Biol ; 15(9): 457, 2014 Sep 24.
Article in English | MEDLINE | ID: mdl-25248950

ABSTRACT

BACKGROUND: Legume roots show a remarkable plasticity to adapt their architecture to biotic and abiotic constraints, including symbiotic interactions. However, global analysis of miRNA regulation in roots is limited, and a global view of the evolution of miRNA-mediated diversification in different ecotypes is lacking. RESULTS: In the model legume Medicago truncatula, we analyze the small RNA transcriptome of roots submitted to symbiotic and pathogenic interactions. Genome mapping and a computational pipeline identify 416 miRNA candidates, including known and novel variants of 78 miRNA families present in miRBase. Stringent criteria of pre-miRNA prediction yield 52 new mtr-miRNAs, including 27 miRtrons. Analyzing miRNA precursor polymorphisms in 26 M. truncatula ecotypes identifies higher sequence polymorphism in conserved rather than Medicago-specific miRNA precursors. An average of 19 targets, mainly involved in environmental responses and signalling, is predicted per novel miRNA. We identify miRNAs responsive to bacterial and fungal pathogens or symbionts as well as their related Nod and Myc-LCO symbiotic signals. Network analyses reveal modules of new and conserved co-expressed miRNAs that regulate distinct sets of targets, highlighting potential miRNA-regulated biological pathways relevant to pathogenic and symbiotic interactions. CONCLUSIONS: We identify 52 novel genuine miRNAs and large plasticity of the root miRNAome in response to the environment, and also in response to purified Myc/Nod signaling molecules. The new miRNAs identified and their sequence variation across M. truncatula ecotypes may be crucial to understand the adaptation of root growth to the soil environment, notably in the agriculturally important legume crops.


Subject(s)
Medicago truncatula/genetics , MicroRNAs/genetics , Plant Roots/genetics , RNA, Plant/genetics , Conserved Sequence , Gene Expression Regulation, Plant , Gene-Environment Interaction , Genes, Plant , Medicago truncatula/metabolism , MicroRNAs/metabolism , Molecular Sequence Annotation , Plant Roots/metabolism , Polymorphism, Single Nucleotide , RNA, Plant/metabolism , Signal Transduction , Stress, Physiological , Transcriptome
18.
Development ; 141(18): 3517-28, 2014 Sep.
Article in English | MEDLINE | ID: mdl-25183870

ABSTRACT

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.


Subject(s)
Cell Lineage/physiology , Medicago truncatula/cytology , Meristem/cytology , Morphogenesis/physiology , Root Nodules, Plant/cytology , Cell Differentiation/physiology , Computer Simulation , Genetic Markers/genetics , Histocytochemistry , Medicago truncatula/microbiology , Meristem/physiology , Root Nodules, Plant/microbiology
19.
Plant J ; 79(5): 757-68, 2014 Sep.
Article in English | MEDLINE | ID: mdl-24930743

ABSTRACT

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.


Subject(s)
CCAAT-Binding Factor/genetics , Gene Expression Regulation, Plant , Medicago truncatula/genetics , Signal Transduction , Sinorhizobium meliloti/physiology , Symbiosis , CCAAT-Binding Factor/metabolism , Gene Expression , Genes, Reporter , Medicago truncatula/cytology , Medicago truncatula/microbiology , Medicago truncatula/physiology , Microdissection , Plant Proteins/genetics , Plant Proteins/metabolism , Plant Roots/cytology , Plant Roots/genetics , Plant Roots/microbiology , Plant Roots/physiology , RNA, Plant/chemistry , RNA, Plant/genetics , Root Nodules, Plant/cytology , Root Nodules, Plant/genetics , Root Nodules, Plant/microbiology , Root Nodules, Plant/physiology , Sequence Analysis, RNA , Nicotiana/genetics , Nicotiana/microbiology , Nicotiana/physiology , Transcription Factors/genetics , Transcription Factors/metabolism
20.
Plant Signal Behav ; 9(5): e28847, 2014.
Article in English | MEDLINE | ID: mdl-24736593

ABSTRACT

Transcription factors are DNA binding proteins that regulate gene expression. The nitrogen fixing symbiosis established between legume plants and soil bacteria is a complex interaction, in which plants need to integrate signals derived from the symbiont and the surrounding environment to initiate the developmental program of nodule organogenesis and the infection process. Several transcription factors that play critical roles in these processes have been reported in the past decade, including proteins of the GRAS and NF-Y families. Recently, we reported the characterization of a new GRAS domain containing-protein that interacts with a member of the C subunit of the NF-Y family, which plays an important role in nodule development and the progression of bacterial infection during the symbiotic interaction. The connection between transcription factors of these families highlights the significance of multimeric complexes in the fabulous capacity of plants to integrate and respond to multiple environmental stimuli.


Subject(s)
Fabaceae/microbiology , Plant Proteins/physiology , Symbiosis/physiology , Transcription Factors/physiology , CCAAT-Binding Factor/physiology , Fabaceae/physiology , Nitrogen Fixation , Plant Roots/microbiology , Plant Roots/physiology , Protein Interaction Domains and Motifs
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