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444 results on '"EPENDYMAL CELLS"'

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1. RGS22 maintains the physiological function of ependymal cells to prevent hydrocephalus.

2. Ependymal cell lineage reprogramming as a potential therapeutic intervention for hydrocephalus

3. TMEM106B amyloid filaments in the Biondi bodies of ependymal cells.

4. Ependymal cell lineage reprogramming as a potential therapeutic intervention for hydrocephalus.

5. Addressing the Effect of Exercise on Glial Cells: Focus on Ependymal Cells

6. Reversal of Postnatal Brain Astrocytes and Ependymal Cells towards a Progenitor Phenotype in Culture.

7. P2X7 receptor activation awakes a dormant stem cell niche in the adult spinal cord.

9. The activation of dormant ependymal cells following spinal cord injury

10. P2X7 receptor activation awakes a dormant stem cell niche in the adult spinal cord

11. The putative protein kinase Stk36 is essential for ciliogenesis and CSF flow by associating with Ulk4.

12. Suppression of TGFβR-Smad3 pathway alleviates the syrinx induced by syringomyelia

13. The activation of dormant ependymal cells following spinal cord injury.

14. The pathological potential of ependymal cells in mild traumatic brain injury.

15. The pathological potential of ependymal cells in mild traumatic brain injury

16. Suppression of TGFβR-Smad3 pathway alleviates the syrinx induced by syringomyelia.

17. Roles of Ependymal Cells in the Physiology and Pathology of the Central Nervous System.

19. Ontogeny of ependymoglial cells lining the third ventricle in mice.

20. Ontogeny of ependymoglial cells lining the third ventricle in mice

21. Rethinking the cilia hypothesis of hydrocephalus

22. Is IIIG9 a New Protein with Exclusive Ciliary Function? Analysis of Its Potential Role in Cancer and Other Pathologies.

23. Ependymal and Neural Stem Cells of Adult Molly Fish (Poecilia sphenops , Valenciennes, 1846) Brain: Histomorphometry, Immunohistochemical, and Ultrastructural Studies.

24. The regulatory roles of motile cilia in CSF circulation and hydrocephalus

25. Hypersensitivity to type I interferon as a cause of hydrocephalus development.

26. A single-cell atlas deconstructs heterogeneity across multiple models in murine traumatic brain injury and identifies novel cell-specific targets.

27. Single-nucleus RNA sequencing identified cells with ependymal cell-like features enriched in neonatal mice after spinal cord injury.

28. Hydrocephalus in Nfix −/− Mice Is Underpinned by Changes in Ependymal Cell Physiology.

29. Phosphorylation-dependent proteome of Marcks in ependyma during aging and behavioral homeostasis in the mouse forebrain.

31. Lineage tracing reveals the origin of Nestin-positive cells are heterogeneous and rarely from ependymal cells after spinal cord injury.

32. Microscopic focus on ependymal cells of the spinal cord of the one‐humped camel (Camelus dromedarius): Histological, immunohistochemical, and transmission microscopic study.

33. 脊髓损伤后室管膜区内源性神经干细胞反应的系列问题.

34. Molecular abnormalities in autopsied brain tissue from the inferior horn of the lateral ventricles of nonagenarians and Alzheimer disease patients

35. Navigating the ventricles: Novel insights into the pathogenesis of hydrocephalus

36. Assessing the Role of Ependymal and Vascular Cells as Sources of Extracellular Cues Regulating the Mouse Ventricular-Subventricular Zone Neurogenic Niche

37. The periaxonal space as a conduit for cerebrospinal fluid flow to peripheral organs.

38. Cotton rats (Sigmodon hispidus) with a high prevalence of hydrocephalus without clinical symptoms.

39. β-Catenin Deletion in Regional Neural Progenitors Leads to Congenital Hydrocephalus in Mice.

40. From Nervous System Changes to Systemic Change in Science: Investigating Sex Differences in the Impact of Maternal Immune Activation on Offspring Brain Development and Behavior, and Building Social Justice in Science Through Pedagogy and Community Initiatives to Increase Belonging

41. Morphological Analysis of the Hindbrain Glucose Sensor-Hypothalamic Neural Pathway Activated by Hindbrain Glucoprivation.

43. The regulatory roles of motile cilia in CSF circulation and hydrocephalus.

44. Axons take a dive

45. The adult neural stem cell niche in ischaemic stroke

46. Histopathological and epigenetic alterations in the spinal cord due to prenatal electromagnetic field exposure: An H3K27me3-related mechanism.

47. Nerve Tissue

48. CAMSAP3 is required for mTORC1-dependent ependymal cell growth and lateral ventricle shaping in mouse brains.

49. Bone Morphogenetic Proteins Inhibit Ciliogenesis of Ependymal Cells in Vitro.

50. Ependymal Vps35 Promotes Ependymal Cell Differentiation and Survival, Suppresses Microglial Activation, and Prevents Neonatal Hydrocephalus.

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