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6. Protein kinase SnRK2.4 is a key regulator of aquaporins and root hydraulics in Arabidopsis

10. Protein kinase SnRK2.4 is a key regulator of aquaporins and root hydraulics in Arabidopsis.

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

20. Quantitative genetics dissection of root hydraulics uncovers novel pathways for plant adaptation to stresses

21. Root hydraulics: a key trait in plant adaptation to stresses

22. EZ-Root-VIS: A Software Pipeline for the Rapid Analysis and Visual Reconstruction of Root System Architecture

23. Quantitative genetics analysis of root hydraulics uncovers novel pathways of plant adaptation to the environment

24. Combined adaptation of roots to flooding and soil nutrients: Role of a MAP3K protein kinase

25. Regulation of root water transport under flooding

26. Hydraulic Conductivity of Root 1 controls potassium-dependent oxygen sensing to regulate root hydraulic

27. Evolutionary Insight on Plant Defensin type 1 (PDF1)

29. Plant Defensin type 1 (PDF1) from an evolutionary perspective'

30. Plant response to zinc excess: insight on Plant Defensin type 1 (PDF1) expression regulation

31. Phosphate and zinc transport and signalling in plants: toward a better understanding of their homeostasis interaction

33. Combating Mineral Malnutrition through Iron and Zinc Biofortification of Cereals

34. Plant Defensin type 1 (PDF1): protein promiscuity and expression variation within the Arabidopsis genus shed light on zinc tolerance acquisition in Arabidopsis halleri

35. Genetics of root hydraulics in Arabidopsis thaliana . Genomic, physiological and breeding approaches for enhancing drought resistance in crops

36. Plant response to zinc excess

37. The metal tolerance protein 1 (MTP1) gene family in the zinc tolerant and hyper-accumlulating species Arabidopsis halleri: inference on potential use as a molecular target for cereal biofortification

38. Evolution towards zinc tolerance in Arabidopsis halleri

39. Aquaporins in Plants

40. Etude moléculaire des familles de gènes Metal Tolerance Protein 1(MTP1) et Plant Defensins Type I (PDF1): contribution à la compréhension des mécanismes moléculaires évolutifs liés à l'acquisition de la tolérance au zinc chez Arabidopsis halleri

41. Plant defensins harbour 4 di-sulfide bridges, they are expressed in the endoplasmic reticulum and in Golgi vesicles, and they confer zinc tolerance. What is the mechanism by which defensins can induce zinc tolerance ?

42. Chimeric MTP1 Gene: a Good Candidate for Zinc Biofortification of Cereals ?

43. Genetic characterisation of the MTP1 zinc transporter family in Arabidopsis halleri reveals a large functional and genetic diversity

44. An intracellular plant defensin confers zinc tolerance

45. Identification des gènes candidats de la tolérance au zinc chez la pseudométallophyte Arabidopsis halleri par l'intégration des données de génomique comparative et de transcriptomique disponibles chez Arabidopsis

46. Identification des gènes candidats de la tolérance au zinc chez la pseudométallophyte Arabidopsis halleri par l'intégration des données de génomique comparative et de transcriptomique disponibles chez Arabidopsis

48. Plant Defensin type 1 (PDF 1): protein promiscuity and expression variation within the Arabidopsis genus shed light on zinc tolerance acquisition in Arabidopsis halleri

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