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Your search keyword '"Hair Cells, Auditory physiology"' showing total 2,335 results

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1. Neural control and innate self-tuning of the hair cell's active process.

2. Proteins required for stereocilia elongation during mammalian hair cell development ensure precise and steady heights during adult life.

3. foxg1a is required for hair cell development and regeneration in the zebrafish lateral line.

4. The role of cilia in the development, survival, and regeneration of hair cells.

5. LOXHD1 is indispensable for maintaining TMC1 auditory mechanosensitive channels at the site of force transmission.

6. 3D Computational Modeling of Blast Wave Transmission in Human Ear From External Ear to Cochlear Hair Cells: A Preliminary Study.

7. Conditions Underlying the Appearance of Spontaneous Otoacoustic Emissions in Mammals.

8. Transdifferentiation is temporally uncoupled from progenitor pool expansion during hair cell regeneration in the zebrafish inner ear.

9. Auditory hair cells and spiral ganglion neurons regenerate synapses with refined release properties in vitro.

10. In preprints: theme and variations on hair-cell regeneration in zebrafish.

11. Comparative biology of the amniote vestibular utricle.

12. Priming central sound processing circuits through induction of spontaneous activity in the cochlea before hearing onset.

14. Inhibitory G proteins play multiple roles to polarize sensory hair cell morphogenesis.

15. Hair cell regeneration, reinnervation, and restoration of hearing thresholds in the avian hearing organ.

16. Disruption of Cdh23 exon 68 splicing leads to progressive hearing loss in mice by affecting tip-link stability.

17. The sensitivity of mechanoelectrical transduction response phase to acoustic overstimulation is calcium-dependent.

18. Spherical harmonics analysis reveals cell shape-fate relationships in zebrafish lateral line neuromasts.

19. Repeated boat noise exposure damages inner ear sensory hair cells and decreases hearing sensitivity in Atlantic croaker (Micropogonias undulatus).

20. Transmembrane Channel-Like (Tmc) Subunits Contribute to Frequency Sensitivity in the Zebrafish Utricle.

21. Genetic correction of induced pluripotent stem cells from a DFNA36 patient results in morphologic and functional recovery of derived hair cell-like cells.

22. Stem Cell-Based Hair Cell Regeneration and Therapy in the Inner Ear.

23. Anion efflux mediates transduction in the hair cells of the zebrafish lateral line.

24. Differential regulation of hair cell actin cytoskeleton mediated by SRF and MRTFB.

25. Pioneer statoacoustic neurons guide neuroblast behaviour during otic ganglion assembly.

26. Isolation and Culture of Primary Cochlear Hair Cells from Neonatal Mice.

27. Gradients of glucose metabolism regulate morphogen signalling required for specifying tonotopic organisation in the chicken cochlea.

28. Preservation of developmental spontaneous activity enables early auditory system maturation in deaf mice.

29. ZBTB20 is essential for cochlear maturation and hearing in mice.

30. [Progress of research on the role of Atoh1 gene in the regeneration of mammalian auditory hair cells].

31. RBM24 is required for mouse hair cell development through regulating pre-mRNA alternative splicing and mRNA stability.

32. Reprogramming by drug-like molecules leads to regeneration of cochlear hair cell-like cells in adult mice.

33. Coupling between the Stereocilia of Rat Sensory Inner-Hair-Cell Hair Bundles Is Weak, Shaping Their Sensitivity to Stimulation.

34. Single-cell transcriptomic profiling of the zebrafish inner ear reveals molecularly distinct hair cell and supporting cell subtypes.

35. Whole-body analysis of TRPML3 (MCOLN3) expression using a GFP-reporter mouse model reveals widespread expression in secretory cells and endocrine glands.

36. Sensing sound: Cellular specializations and molecular force sensors.

37. Function of bidirectional sensitivity in the otolith organs established by transcription factor Emx2.

38. ISL1 is necessary for auditory neuron development and contributes toward tonotopic organization.

39. Three distinct Atoh1 enhancers cooperate for sound receptor hair cell development.

40. Interplay between traveling wave propagation and amplification at the apex of the mouse cochlea.

41. Cross-species experiments reveal widespread cochlear neural damage in normal hearing.

42. Efferent Activity Controls Hair Cell Response to Mechanical Overstimulation.

43. Diverse identities and sites of action of cochlear neurotransmitters.

44. Mechanotransduction in mammalian sensory hair cells.

45. In vitro and in vivo models: What have we learnt about inner ear regeneration and treatment for hearing loss?

46. Noise-induced hearing loss correlates with inner ear hair cell decrease in larval zebrafish.

47. Atypical tuning and amplification mechanisms in gecko auditory hair cells.

48. Grxcr1 regulates hair bundle morphogenesis and is required for normal mechanoelectrical transduction in mouse cochlear hair cells.

49. Putting the Pieces Together: the Hair Cell Transduction Complex.

50. Cochlear hair cells of echolocating bats are immune to intense noise.

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