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1. Plastid-Targeted Cyanobacterial Flavodiiron Proteins Maintain Carbohydrate Turnover and Enhance Drought Stress Tolerance in Barley

2. Providing an Additional Electron Sink by the Introduction of Cyanobacterial Flavodiirons Enhances Growth of A. thaliana Under Various Light Intensities

3. Nitrogen Depletion Blocks Growth Stimulation Driven by the Expression of Nitric Oxide Synthase in Tobacco

4. Expression of a Chloroplast-Targeted Cyanobacterial Flavodoxin in Tomato Plants Increases Harvest Index by Altering Plant Size and Productivity

5. Reactive Oxygen Species (ROS) and Nucleic Acid Modifications during Seed Dormancy

6. Delay of Germination-1 (DOG1): A Key to Understanding Seed Dormancy

7. Expression of a Plastid-Targeted Flavodoxin Decreases Chloroplast Reactive Oxygen Species Accumulation and Delays Senescence in Aging Tobacco Leaves

8. Chloroplast Redox Status Modulates Genome-Wide Plant Responses during the Non-host Interaction of Tobacco with the Hemibiotrophic Bacterium Xanthomonas campestris pv. vesicatoria

9. Leaf Senescence: The Chloroplast Connection Comes of Age

10. Suppression of Reactive Oxygen Species Accumulation in Chloroplasts Prevents Leaf Damage but Not Growth Arrest in Salt-Stressed Tobacco Plants.

11. A long-chain flavodoxin protects Pseudomonas aeruginosa from oxidative stress and host bacterial clearance.

14. Introduction of a terminal electron sink in chloroplasts decreases leaf cell expansion associated to higher proteasome activity and lower endoreduplication

15. The expansin EXP1 gene in the elongation zone is induced during soybean embryonic axis germination and differentially expressed in response to ABA and PEG treatments

16. The chloroplast redox-responsive transcriptome of solanaceous plants reveals significant nuclear gene regulatory motifs associated to stress acclimation

17. Manipulation of oxidative stress responses as a strategy to generate stress-tolerant crops. From damage to signaling to tolerance

18. Engineering Climate-Change-Resilient Crops: New Tools and Approaches

19. Photosynthesis and chloroplast redox signaling in the age of global warming: stress tolerance, acclimation, and developmental plasticity

20. Integrating cyanobacterial flavodiiron proteins within the chloroplast photosynthetic electron transport chain maintains carbohydrate turnover and enhances drought stress tolerance in barley

21. Transcriptional and Metabolic Profiling of Potato Plants Expressing a Plastid-Targeted Electron Shuttle Reveal Modulation of Genes Associated to Drought Tolerance by Chloroplast Redox Poise

22. Providing an additional electron sink by the introduction of cyanobacterial Ffavodiirons enhances growth of A. thaliana under various light intensities

23. Reactive Oxygen Species (ROS) and Nucleic Acid Modifications During Seed Dormancy

24. Nitrogen Depletion Blocks Growth Stimulation Driven by the Expression of Nitric Oxide Synthase in Tobacco

25. Providing an additional electron sink by the introduction of cyanobacterial flavodiirons enhances the growth of Arabidopsis thaliana in varying light

26. Evolution of the acceptor side of photosystem I: ferredoxin, flavodoxin, and ferredoxin-NADP+ oxidoreductase

27. Leaf Senescence: The Chloroplast Connection Comes of Age

28. Meta-analysis reveals key features of the improved drought tolerance of plants overexpressing NAC transcription factors

29. Expression of Flavodiiron Proteins Flv2-Flv4 in Chloroplasts of Arabidopsis and Tobacco Plants Provides Multiple Stress Tolerance

30. Expression of a plastid-targeted flavodoxin decreases chloroplast reactive oxygen species accumulation and delays senescence in aging tobacco leaves

31. The Big Plant Theory y otras metodologías dinamizadoras en grupos reducidos de dos materias de Fisiología Vegetal del grado en Biología

32. Faster photosynthetic induction in tobacco by expressing cyanobacterial flavodiiron proteins in chloroplasts

33. NERNST: a genetically-encoded ratiometric non-destructive sensing tool to estimate NADP(H) redox status in bacterial, plant and animal systems

34. Expression of the tetrahydrofolate-dependent nitric oxide synthase from the green algaOstreococcus tauriincreases tolerance to abiotic stresses and influences stomatal development in Arabidopsis

35. Reactive oxygen species generated in chloroplasts contribute to tobacco leaf infection by the necrotrophic fungus Botrytis cinerea

36. Mannans and endo-β-mannanase transcripts are located in different seed compartments during Brassicaceae germination

37. Chloroplast redox status modulates genome-wide plant responses during the non-host interaction of Tobacco with the hemibiotrophic bacterium Xanthomonas campestris pv. Vesicatoria

38. An Update on the Role of NCED and CYP707A ABA Metabolism Genes in Seed Dormancy Induction and the Response to After-Ripening and Nitrate

39. Nitrate affects sensu-stricto germination of after-ripened Sisymbrium officinale seeds by modifying expression of SoNCED5, SoCYP707A2 and SoGA3ox2 genes

40. Khellin and Visnagin, Furanochromones from Ammi visnaga (L.) Lam., as Potential Bioherbicides

41. Evolution of the acceptor side of photosystem I: ferredoxin, flavodoxin, and ferredoxin-NADP

42. Identification of new microRNA-regulated genes by conserved targeting in plant species

43. An in vivo system involving co-expression of cyanobacterial flavodoxin and ferredoxin-NADP+ reductase confers increased tolerance to oxidative stress in plants

44. Stress response of transgenic tobacco plants expressing a cyanobacterial ferredoxin in chloroplasts

45. Cyanobacterial flavodoxin complements ferredoxin deficiency in knocked-down transgenic tobacco plants

46. Engineering the future. Development of transgenic plants with enhanced tolerance to adverse environments

47. Induced Fit and Equilibrium Dynamics for High Catalytic Efficiency in Ferredoxin-NADP(H) Reductases

48. Combating stress with flavodoxin: a promising route for crop improvement

49. Detoxification of 2,4-dinitrotoluene by Transgenic Tobacco Plants Expressing a Bacterial Flavodoxin

50. Stress-inducible flavodoxin from photosynthetic microorganisms. The mystery of flavodoxin loss from the plant genome

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