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126 results on '"target of rapamycin"'

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1. Nitrogen starvation leads to TOR kinase-mediated downregulation of fatty acid synthesis in the algae Chlorella sorokiniana and Chlamydomonas reinhardtii

2. Cucumber (Cucumis sativus L.) translationally controlled tumor protein interacts with CsRab11A and promotes activation of target of rapamycin in response to Podosphaera xanthii.

3. Continuous sensing of nutrients and growth factors by the mTORC1-TFEB axis

4. Cytochrome c levels affect the TOR pathway to regulate growth and metabolism under energy‐deficient conditions.

5. Structure-based engineering of Tor complexes reveals that two types of yeast TORC1 produce distinct phenotypes.

6. Mitigating growth-stress tradeoffs via elevated TOR signaling in rice.

8. Effect of interfering TOR signaling pathway on the biosynthesis of terpenoids in Salvia miltiorrhiza Bge

9. Sailing in complex nutrient signaling networks: Where I am, where to go, and how to go?

10. The Case for the Target of Rapamycin Pathway as a Candidate Circadian Oscillator.

11. Structural Insights into the Giardia lamblia Target of Rapamycin Homolog: A Bioinformatics Approach.

12. Suppression of the target of rapamycin kinase accelerates tomato fruit ripening through reprogramming the transcription profile and promoting ethylene biosynthesis.

13. TOR represses stress responses through global regulation of H3K27 trimethylation in plants.

14. Insulin peptides and their receptors regulate ovarian development and oviposition behavior in Diaphorina citri.

15. Salicylic acid fights against Fusarium wilt by inhibiting target of rapamycin signaling pathway in Fusarium oxysporum

16. Involvement of Target of Rapamycin (TOR) Signaling in the Regulation of Crosstalk between Ribosomal Protein Small Subunit 6 Kinase-1 (RPS6K-1) and Ribosomal Proteins.

17. Analyzing the impact of autotrophic and heterotrophic metabolism on the nutrient regulation of TOR.

18. TOR kinase, a GPS in the complex nutrient and hormonal signaling networks to guide plant growth and development.

19. Translating across kingdoms: target of rapamycin promotes protein synthesis through conserved and divergent pathways in plants.

20. The kinase and FATC domains of VvTOR affect sugar-related gene expression and sugar accumulation in grape (Vitis vinifera).

21. Target of rapamycin coordinates auxin are involved in exogenous melatonin regulated low temperature tolerance in cucumber seedlings.

22. The Case for the Target of Rapamycin Pathway as a Candidate Circadian Oscillator

23. Evaluation of cottonseed oil as a substitute for dietary fish oil of juvenile black seabream (Acanthopagrus schlegelii): Based on growth, lipid metabolism, antioxidant capacity and pi3k/akt pathway

24. Production of the yolk protein precursor vitellogenin is mediated by target of rapamycin (TOR) in the soft tick Ornithodoros moubata (Acari: Argasidae).

25. Role of insecticide-mediated transcription of the TOR and JH signaling pathway-related genes in the regulation of reproduction in Sogatella furcifera.

26. Nitrogen starvation leads to TOR kinase-mediated downregulation of fatty acid synthesis in the algae Chlorella sorokiniana and Chlamydomonas reinhardtii.

27. Structural Insights into the Giardia lamblia Target of Rapamycin Homolog: A Bioinformatics Approach

28. ABA represses TOR and root meristem activity through nuclear exit of the SnRK1 kinase.

29. Target of Rapamycin Signaling Involved in the Regulation of Photosynthesis and Cellular Metabolism in Chlorella sorokiniana.

30. Salicylic acid fights against Fusarium wilt by inhibiting target of rapamycin signaling pathway in Fusarium oxysporum.

31. Vitellogenin and its upstream gene TOR play essential roles in the reproduction of Dermanyssus gallinae.

32. Effects of dietary isoleucine on growth performance, enzymatic activities, antioxidant properties and expression of TOR related genes in rainbow trout, Oncorhynchus mykiss fingerlings.

33. VvTOR Responds to ABA Signal and Affects Sugar Related Genes Expression in Grape.

34. Amino Acid Signaling for TOR in Eukaryotes: Sensors, Transducers, and a Sustainable Agricultural fuTORe.

35. Abiotic stress-related genes governing signal transduction cascades in wild plants with emphasis to those in Hordeum spontaneum.

36. Plant target of rapamycin signaling network: Complexes, conservations, and specificities.

37. In Silico analysis of Vitis vinifera Cabernet Sauvignon TOR and its responses to sugar and abscisic acid signaling

38. Target of Rapamycin Drives Unequal Responses to Essential Amino Acid Depletion for Egg Laying in Drosophila Melanogaster

39. Effects of two dietary protein levels on growth, body composition, intestinal microflora and expression of TOR, IGF‐I, LPL and HSP70 of juvenile silver sillago, Sillago sihama.

40. Effects of dietary leucine levels on growth performance, hematobiochemical parameters, liver profile, intestinal enzyme activities and target of rapamycin signalling pathway related gene expression in rainbow trout, Oncorhynchus mykiss fingerlings.

41. Expression Analyses of Vitellogenin and Target of Rapamycin of Sogatella furcifera (Hemiptera: Delphacidae), and Their Effects on Reproduction.

42. Involvement of Target of Rapamycin (TOR) Signaling in the Regulation of Crosstalk between Ribosomal Protein Small Subunit 6 Kinase-1 (RPS6K-1) and Ribosomal Proteins

43. Knockdown of neuronal DAF-15/Raptor promotes healthy aging in C. elegans.

44. Towards a more complete TOR interactome in plants: plasmodesmatal regulation, proximity labeling, and the R2TP complex

45. Dynamic Nutrient Signaling Networks in Plants.

46. Target of rapamycin controls hyphal growth and pathogenicity through FoTIP4 in Fusarium oxysporum.

47. Impact of the TOR pathway on plant growth via cell wall remodeling.

48. TOR in plants: Multidimensional regulators of plant growth and signaling pathways.

49. High auxin disrupts expression of cell-cycle genes, arrests cell division and promotes accumulation of starch in Chlamydomonas reinhardtii.

50. Target of Rapamycin Signaling Involved in the Regulation of Photosynthesis and Cellular Metabolism in Chlorella sorokiniana

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