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1. Diversification of cytokinin phosphotransfer signaling genes in Medicago truncatula and other legume genomes

2. Evidence for the Involvement in Nodulation of the Two Small Putative Regulatory Peptide-Encoding Genes MtRALFL1 and MtDVL1

3. Identification of New Potential Regulators of the Medicago truncatula—Sinorhizobium meliloti Symbiosis Using a Large-Scale Suppression Subtractive Hybridization Approach

4. Cytological, Genetic, and Molecular Analysis to Characterize Compatible and Incompatible Interactions Between Medicago truncatula and Colletotrichum trifolii

5. The Medicago truncatula MtAnn1 Gene Encoding an Annexin Is Induced by Nod Factors and During the Symbiotic Interaction with Rhizobium meliloti

6. Symbiosis-Specific Expression of Two Medicago truncatula Nodulin Genes, MtN1 and MtN13, Encoding Products Homologous to Plant Defense Proteins

7. Transcription reprogramming during root nodule development in Medicago truncatula.

8. NIN-like protein transcription factors regulate leghemoglobin genes in legume nodules

9. Symbiotic Nodule Development and Efficiency in the Medicago truncatula Mtefd-1 Mutant is Highly Dependent on Sinorhizobium Strains

10. MtEFD and MtEFD2: Two transcription factors with distinct neofunctionalization in symbiotic nodule development

11. LeGOO: Une base de connaissances centrée sur la légumineuse modèle Medicago truncatula

12. MtExpress, a Comprehensive and Curated RNAseq-based Gene Expression Atlas for the Model Legume Medicago truncatula

13. Diversification of cytokinin phosphotransfer signaling genes in Medicago truncatula and other legume genomes

14. Different cytokinin histidine kinase receptors regulate nodule initiation as well as later nodule developmental stages inMedicago truncatula

15. Laser Capture Micro-Dissection Coupled to RNA Sequencing: A Powerful Approach Applied to the Model Legume Medicago truncatula in Interaction with Sinorhizobium meliloti

16. Laser Capture Micro-Dissection Coupled to RNA Sequencing: A Powerful Approach Applied to the Model Legume Medicago truncatula in Interaction with Sinorhizobium meliloti

17. Combined genetic and transcriptomic analysis reveals three major signalling pathways activated by Myc‐ <scp>LCO</scp> s in Medicago truncatula

18. Whole-genome landscape of Medicago truncatula symbiotic genes

19. Cytokinins in Symbiotic Nodulation: When, Where, What For?

20. The symbiotic transcription factor<scp>M</scp>t<scp>EFD</scp>and cytokinins are positively acting in the<scp>M</scp>edicago truncatulaand<scp>R</scp>alstonia solanacearumpathogenic interaction

21. Regulation of Differentiation of Nitrogen-Fixing Bacteria by Microsymbiont Targeting of Plant Thioredoxin s1

22. A remorin protein interacts with symbiotic receptors and regulates bacterial infection

23. EFD Is an ERF Transcription Factor Involved in the Control of Nodule Number and Differentiation inMedicago truncatula

24. Reprogramming of DNA methylation is critical for nodule development in Medicago truncatula

25. A laser dissection-RNAseq analysis highlights the activation of cytokinin pathways by nod factors in the Medicago truncatula root epidermis

26. Different cytokinin histidine kinase receptors regulate nodule initiation as well as later nodule developmental stages in Medicago truncatula

27. Génétique et génomique du pois : what else ?

28. The MtMMPL1 Early Nodulin Is a Novel Member of the Matrix Metalloendoproteinase Family with a Role in Medicago truncatula Infection by Sinorhizobium meliloti

29. A phylogenetically conserved group of NF-Y transcription factors interact to control nodulation in legumes

30. Chapter 62

31. Full-length de novo assembly of RNA-seq data in pea (Pisum sativum L.) provides a gene expression atlas and gives insights into root nodulation in this species

32. Two CCAAT-box-binding transcription factors redundantly regulate early steps of the legume-rhizobia endosymbiosis

33. Génomique de la légumineuse modèle Medicago truncatula : état des lieux et perspectives

34. The CCAAT box-binding transcription factor NF-YA1 controls rhizobial infection

35. An integrated analysis of plant and bacterial gene expression in symbiotic root nodules using laser-capture microdissection coupled to RNA sequencing

36. A regulatory network-based approach dissects late maturation processes related to the acquisition of desiccation tolerance and longevity of Medicago truncatula seeds

37. CCAAT-box binding transcription factors in plants: Y so many?

38. Next-generation annotation of prokaryotic genomes with EuGene-P: application to Sinorhizobium meliloti 2011

39. Development of genomic resources for Medicago truncatula and related legume crops

40. MtbHLH1, a bHLH transcription factor involved in Medicago truncatula nodule vascular patterning and nodule to plant metabolic exchanges

41. Analysis and modeling of the integrative response of Medicago truncatula to nitrogen constraints

42. Tn7 transposition in vitro proceeds through an excised transposon intermediate generated by staggered breaks in DNA

43. Evidence for the involvement in nodulation of the two small putative regulatory peptide-encoding genes MtRALFL1 and MtDVL1

44. Trans-regulation of the expression of the transcription factor MtHAP2-1 by a uORF controls root nodule development

46. Functional organization of the ends of IS1: specific binding site for an IS1-encoded protein

47. Identification of new potential regulators of the [i]Medicago truncatula[/i]–[i]Sinorhizobium meliloti[/i] symbiosis using a large-scale suppression subtractive hybridization approach

48. MtHAP2-1 is a key transcriptional regulator of symbiotic nodule development regulated by microRNA169 in Medicago truncatula

49. Erratum to: ‘CCAAT-box binding transcription factors in plants: Y so many?’

50. Cytological, genetic, and molecular analysis to characterize compatible and incompatible interactions between Medicago truncatula and Colletotrichum trifolii

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