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117 results on '"RNP granules"'

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1. RNA-driven phase transitions in biomolecular condensates.

2. Proteomic profile of Toxoplasma gondii stress granules by high-resolution mass spectrometry.

3. Spontaneous Confinement of mRNA Molecules at Biomolecular Condensate Boundaries.

4. Stress Granules as Causes and Consequences of Translation Suppression.

5. New horizons of regulatory RNA

6. Ribonucleoprotein Granules: Between Stress and Transposable Elements.

7. mRNA granules focus the production of glycolytic enzymes to fuel glucose fermentation

8. An Introduction to Phase Separation in Cell Biology.

9. Spontaneous Confinement of mRNA Molecules at Biomolecular Condensate Boundaries

10. Phase separation and viral factories: unveiling the physical processes supporting RNA packaging in dsRNA viruses.

11. Ribonucleoprotein Granules: Between Stress and Transposable Elements

12. Regulation of Cellular Ribonucleoprotein Granules: From Assembly to Degradation via Post-translational Modification.

13. RNA is required for the integrity of multiple nuclear and cytoplasmic membrane‐less RNP granules.

14. Germline-specific RNA helicase DDX4 forms cytoplasmic granules in cancer cells and promotes tumor growth.

15. RBM20S639G mutation is a high genetic risk factor for premature death through RNA-protein condensates.

17. Discovery of SQSTM1/p62-dependent P-bodies that regulate the NLRP3 inflammasome.

18. Regulation of Cellular Ribonucleoprotein Granules: From Assembly to Degradation via Post-translational Modification

19. An Emerging Role for Post-translational Modifications in Regulating RNP Condensates in the Germ Line

20. Local Translation in Axons: When Membraneless RNP Granules Meet Membrane-Bound Organelles

22. Germ Cell Responses to Stress: The Role of RNP Granules

23. Phase separation: Bridging polymer physics and biology.

24. P-Bodies: Cytosolic Droplets for Coordinated mRNA Storage.

25. RNA self-assembly contributes to stress granule formation and defining the stress granule transcriptome.

26. Numerous interactions act redundantly to assemble a tunable size of P bodies in Saccharomyces cerevisiae.

27. Biphasic adaptation to osmotic stress in the C. elegans germ line.

28. Granule regulation by phase separation during Drosophila oogenesis

29. RNP Granules in Toxoplasma gondii: Function and Formation

30. Unraveling the Pathways to Neuronal Homeostasis and Disease: Mechanistic Insights into the Role of RNA-Binding Proteins and Associated Factors

31. Droplet organelles?

32. Degradation-Independent Inhibition of APOBEC3G by the HIV-1 Vif Protein

33. The function of RNA-binding proteins at the synapse: implications for neurodegeneration.

34. Deletion of Drosophila Nopp140 induces subcellular ribosomopathies.

35. New horizons of regulatory RNA.

36. Specialized germline P-bodies are required to specify germ cell fate in Caenorhabditis elegans embryos.

37. Liquid-liquid phase separation underpins the formation of replication factories in rotaviruses

38. PIWI homologs mediate Histone H4 mRNA localization to planarian chromatoid bodies.

39. Networking and Dynamic Switches in Biological Condensates

40. GC content shapes mRNA decay and storage in human cells

41. Liquid-to-solid phase transition of oskar ribonucleoprotein granules is essential for their function in Drosophila embryonic development.

42. P-bodies and mitochondria: Which place in RNA interference?

43. RNA-binding IMPs promote cell adhesion and invadopodia formation.

44. A Secreted RNA Binding Protein Forms RNA-Stabilizing Granules in the Honeybee Royal Jelly

45. Local Translation in Axons: When Membraneless RNP Granules Meet Membrane-Bound Organelles

46. Editorial: The Role of Protein Post-Translational Modifications in Protein-RNA Interactions and RNP Assemblies.

47. High-Resolution Live Imaging of Axonal RNP Granules in Drosophila Pupal Brain Explants.

48. Liquid-liquid phase separation underpins the formation of replication factories in rotaviruses.

49. Degradation-Independent Inhibition of APOBEC3G by the HIV-1 Vif Protein.

50. BR-Bodies Provide Selectively Permeable Condensates that Stimulate mRNA Decay and Prevent Release of Decay Intermediates.

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