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1. Chromatin Landscape Dynamics in the Early Development of the Plant Parasitic Nematode Meloidogyne incognita

2. The Meloidogyne incognita Nuclear Effector MiEFF1 Interacts With Arabidopsis Cytosolic Glyceraldehyde-3-Phosphate Dehydrogenases to Promote Parasitism

3. Characterization of siRNAs clusters in Arabidopsis thaliana galls induced by the root-knot nematode Meloidogyne incognita

4. Genome-wide expert annotation of the epigenetic machinery of the plant-parasitic nematodes Meloidogyne spp., with a focus on the asexually reproducing species

5. Plant Proteins and Processes Targeted by Parasitic Nematode Effectors

6. Hybridization and polyploidy enable genomic plasticity without sex in the most devastating plant-parasitic nematodes.

7. In Planta Secretion of a Calreticulin by Migratory and Sedentary Stages of Root-Knot Nematode

8. A Set of Genes Differentially Expressed Between Avirulent and Virulent Meloidogyne incognita Near-Isogenic Lines Encode Secreted Proteins

9. The Endosymbiosis-Induced Genes ENOD40 and CCS52a Are Involved in Endoparasitic-Nematode Interactions in Medicago truncatula

10. Molecular Cloning of a cDNA Encoding an Amphid-Secreted Putative Avirulence Protein from the Root-Knot Nematode Meloidogyne incognita

11. Isolation of a cDNA Encoding a β-1,4-endoglucanase in the Root-Knot Nematode Meloidogyne incognita and Expression Analysis During Plant Parasitism

12. Identification of novel target genes for safer and more specific control of root-knot nematodes from a pan-genome mining.

13. Conserved DNA Motifs, Including the CENP-B Box-like, Are Possible Promoters of Satellite DNA Array Rearrangements in Nematodes.

14. Contribution of lateral gene transfers to the genome composition and parasitic ability of root-knot nematodes.

15. (Homo)glutathione deficiency impairs root-knot nematode development in Medicago truncatula.

16. Feeding cells induced by phytoparasitic nematodes require γ-tubulin ring complex for microtubule reorganization.

17. RNAi effector diversity in nematodes.

18. Spindle assembly checkpoint protein dynamics reveal conserved and unsuspected roles in plant cell division.

19. Direct identification of the Meloidogyne incognita secretome reveals proteins with host cell reprogramming potential.

20. A Meloidogyne incognita C‐type lectin effector targets plant catalases to promote parasitism

21. miR167-ARF8, an auxin-responsive module involved in the formation of root-knot nematode-induced galls in tomato

22. Silencing the conserved small nuclear ribonucleoprotein SmD1 target gene alters susceptibility to root-knot nematodes in plants

23. Copper microRNAs modulate the formation of giant feeding cells induced by the root knot nematode Meloidogyne incognita in Arabidopsis thaliana

24. Copper microRNAs govern the formation of giant feeding cells induced by the root knot nematode Meloidogyne incognita in Arabidopsis thaliana

25. Gene copy number variations as signatures of adaptive evolution in the parthenogenetic, plant‐parasitic nematode Meloidogyne incognita

26. The root‐knot nematode effector MiEFF18 interacts with the plant core spliceosomal protein SmD1 required for giant cell formation

27. Toward genetic modification of plant-parasitic nematodes : Delivery of macromolecules to adults and expression of exogenous mRNA in second stage juveniles

28. The

29. Silencing SmD1 in Solanaceae alters susceptibility to root-knot nematodes

30. The root‐knot nematode effector MiPDI1 targets a stress‐associated protein (SAP) to establish disease in Solanaceae and Arabidopsis

31. Gall-Inducing Parasites: Convergent and Conserved Strategies of Plant Manipulation by Insects and Nematodes

32. The Arabidopsis microtubule-associated protein MAP65-3 supports infection by filamentous biotrophic pathogens by down-regulating salicylic acid-dependent defenses

33. A MIF-like effector suppresses plant immunity and facilitates nematode parasitism by interacting with plant annexins

34. A root-knot nematode small glycine and cysteine-rich secreted effector, MiSGCR1, is involved in plant parasitism

35. Characterization of siRNAs clusters in Arabidopsis thaliana galls induced by the root-knot nematode Meloidogyne incognita

36. Characterization of microRNAs from Arabidopsis galls highlights a role for miR159 in the plant response to the root-knot nematode Meloidogyne incognita

37. Hybridization and polyploidy enable genomic plasticity without sex in the most devastating plant-parasitic nematodes

38. Retracted : Three <scp>BUB</scp> 1 and <scp>BUBR</scp> 1/ <scp>MAD</scp> 3‐related spindle assembly checkpoint proteins are required for accurate mitosis in Arabidopsis

39. Gall-forming root-knot nematodes hijack key plant cellular functions to induce multinucleate and hypertrophied feeding cells

40. Evolutionarily distant pathogens require the Arabidopsis phytosulfokine signalling pathway to establish disease

41. CCS52andDEL1genes are key components of the endocycle in nematode-induced feeding sites

43. TheMaGene for Complete-Spectrum Resistance toMeloidogyneSpecies inPrunusIs a TNL with a Huge Repeated C-Terminal Post-LRR Region

44. Actin-Depolymerizing Factor2-Mediated Actin Dynamics Are Essential for Root-Knot Nematode Infection ofArabidopsis

45. MAP65-3 Microtubule-Associated Protein Is Essential for Nematode-Induced Giant Cell Ontogenesis inArabidopsis

46. Root-knot nematodes manipulate plant cell functions during a compatible interaction

47. Genome sequence of the metazoan plant-parasitic nematode Meloidogyne incognita

48. Function of root-knot nematode effectors and their targets in plant parasitism

49. Genome-wide expression profiling of the host response to root-knot nematode infection in Arabidopsisa

50. A Set of Genes Differentially Expressed Between Avirulent and Virulent Meloidogyne incognita Near-Isogenic Lines Encode Secreted Proteins

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