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1. A genetic and molecular approach to identify transcription factors controlling maize root adaptive response to water deficit

2. Architecture et croissance du système racinaire du maïs

3. Current status of the multinational Arabidopsis community

8. Multiple mechanisms of nitrate sensing by Arabidopsis nitrate transceptor NRT1.1

9. Nitrogen sensing and regulatory networks: it's about time and space.

10. Next-Gen GWAS: full 2D epistatic interaction maps retrieve part of missing heritability and improve phenotypic prediction.

11. Recent advances in unraveling the mystery of combined nutrient stress in plants.

12. Distinct early transcriptional regulations by turgor and osmotic potential in the roots of Arabidopsis.

13. Reduction in PLANT DEFENSIN 1 expression in Arabidopsis thaliana results in increased resistance to pathogens and zinc toxicity.

14. Unleashing the potential of peptides in agriculture and beyond.

15. ARSK1 activates TORC1 signaling to adjust growth to phosphate availability in Arabidopsis.

16. The TARGET System: Rapid Identification of Direct Targets of Transcription Factors by Gene Regulation in Plant Cells.

18. PDX1.1-dependent biosynthesis of vitamin B 6 protects roots from ammonium-induced oxidative stress.

19. Root Membrane Ubiquitinome under Short-Term Osmotic Stress.

20. Nitrate signaling promotes plant growth by upregulating gibberellin biosynthesis and destabilization of DELLA proteins.

21. GARP transcription factors repress Arabidopsis nitrogen starvation response via ROS-dependent and -independent pathways.

22. Nitrogen and Phosphorus interactions in plants: from agronomic to physiological and molecular insights.

23. The Arabidopsis NRT1.1 transceptor coordinately controls auxin biosynthesis and transport to regulate root branching in response to nitrate.

24. Nitrate in 2020: Thirty Years from Transport to Signaling Networks.

25. Transient genome-wide interactions of the master transcription factor NLP7 initiate a rapid nitrogen-response cascade.

27. Getting to the Root of Plant Mineral Nutrition: Combinatorial Nutrient Stresses Reveal Emergent Properties.

28. The Chromatin Factor HNI9 and ELONGATED HYPOCOTYL5 Maintain ROS Homeostasis under High Nitrogen Provision.

29. Identification of Molecular Integrators Shows that Nitrogen Actively Controls the Phosphate Starvation Response in Plants.

30. Network Walking charts transcriptional dynamics of nitrogen signaling by integrating validated and predicted genome-wide interactions.

31. Responses to Systemic Nitrogen Signaling in Arabidopsis Roots Involve trans -Zeatin in Shoots.

32. LPCAT1 controls phosphate homeostasis in a zinc-dependent manner.

33. The Next Generation of Training for Arabidopsis Researchers: Bioinformatics and Quantitative Biology.

34. The world according to GARP transcription factors.

35. TransDetect Identifies a New Regulatory Module Controlling Phosphate Accumulation.

36. Reverse engineering highlights potential principles of large gene regulatory network design and learning.

38. Novel Aquaporin Regulatory Mechanisms Revealed by Interactomics.

39. Combinatorial interaction network of transcriptomic and phenotypic responses to nitrogen and hormones in the Arabidopsis thaliana root.

40. Nitrate Controls Root Development through Posttranscriptional Regulation of the NRT1.1/NPF6.3 Transporter/Sensor.

41. Hormones and nitrate: a two-way connection.

42. Nitrate Transport, Sensing, and Responses in Plants.

43. Long-distance nitrate signaling displays cytokinin dependent and independent branches.

45. AtNIGT1/HRS1 integrates nitrate and phosphate signals at the Arabidopsis root tip.

46. Finding a nitrogen niche: a systems integration of local and systemic nitrogen signalling in plants.

47. The primary nitrate response: a multifaceted signalling pathway.

48. Hit-and-run transcriptional control by bZIP1 mediates rapid nutrient signaling in Arabidopsis.

49. Integrated RNA-seq and sRNA-seq analysis identifies novel nitrate-responsive genes in Arabidopsis thaliana roots.

50. Integration of responses within and across Arabidopsis natural accessions uncovers loci controlling root systems architecture.

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