All Stories

  1. Differential vulnerability of cochlear nuclei to Lmx1 deficiency: abnormal patterning and implications for auditory circuitry
  2. Palaeospondylus may be a new lineage of jawed vertebrates.
  3. Evolution of Bony Fish: Without a Cryptic Sarcopterygian, It May Have Evolved Actinopterygians into Terrestrial Animals
  4. A dual respiratory and auditory function for the coelacanth lung
  5. Dicer Deletion in the Ear Can Cut Most Neurons and Their Innervation of Hair Cells to Project to the Ear and the Brainstem
  6. Regulatory Networks Driving the Specification, Differentiation, and Diversification of Neurons in the Mouse Inner Ear
  7. Conditional Deletion of Isl1 Disrupts Cochlear Sensory and Neuronal Development, Leading to Hearing Loss
  8. The segregation of Calb1, Calb2, and Prph neurons reveals distinct and mixed neuronal populations and projections to hair cells in the inner ear and central nuclei
  9. Sponge bHLH Gene Expression in Xenopus laevis Disrupts Inner Ear and Lateral Line Neurosensory Development and Otic Afferent Pathfinding
  10. Lmx1a is essential for marginal cell differentiation and stria vascularis formation
  11. Different release modes of α-tectorin contribute to the development of the tectorial membrane
  12. Molecular Cascades That Build and Connect Auditory Neurons from Hair Cells to the Auditory Cortex
  13. Irx3/5 Null Deletion in Mice Blocks Cochlea‐Saccule Segregation and Disrupts the Auditory Tonotopic Map
  14. Irx3/5define the cochlear sensory domain and regulate vestibular and cochlear sensory patterning in the mammalian inner ear
  15. Harmony in the Molecular Orchestra of Hearing: Developmental Mechanisms from the Ear to the Brain
  16. Evolution and development of extraocular motor neurons, nerves and muscles in vertebrates
  17. Gene networks and the evolution of olfactory organs, eyes, hair cells and motoneurons: a view encompassing lancelets, tunicates and vertebrates
  18. The Piezo channel is a mechano-sensitive complex component in the mammalian inner ear hair cell
  19. Fish hearing revealed: Do we understand hearing in critical fishes and marine tetrapods
  20. The Development of Speaking and Singing in Infants May Play a Role in Genomics and Dementia in Humans
  21. Evolution and Development of Extra-Ocular Nerves and Muscles in Vertebrates
  22. The evolution of the various structures required for hearing in Latimeria and tetrapods
  23. Ptf1a expression is necessary for correct targeting of spiral ganglion neurons within the cochlear nuclei
  24. Early Steps towards Hearing: Placodes and Sensory Development
  25. In Memoriam Hans Straka
  26. Molecular mechanisms governing development of the hindbrain choroid plexus and auditory projection: A validation of the seminal observations of Wilhelm His
  27. Two master genes critical for hearing discovered
  28. Function of bidirectional sensitivity in the otolith organs established by transcription factor Emx2
  29. Editorial: Hair cells: From molecules to function, volume II
  30. Neurosensory development of the four brainstem-projecting sensory systems and their integration in the telencephalon
  31. ISL1 is necessary for auditory neuron development and contributes toward tonotopic organization
  32. Vision and retina evolution: How to develop a retina
  33. Evolution of Neurosensory Cells and Systems
  34. An Integrated Perspective of Commonalities and Differences across Sensory Receptors and Their Distinct Central Inputs
  35. Taste Buds Explained
  36. Function of bidirectional sensitivity in the otolith organs established by transcription factor Emx2
  37. Faculty Opinions recommendation of African lungfish genome sheds light on the vertebrate water-to-land transition.
  38. Molecular ontology of the parabrachial nucleus
  39. Age-Related Hearing Loss: Sensory and Neural Etiology and Their Interdependence
  40. Early Deletion of Neurod1 Alters Neuronal Lineage Potential and Diminishes Neurogenesis in the Inner Ear
  41. Sustained Loss of Bdnf Affects Peripheral but Not Central Vestibular Targets
  42. An Integrated Perspective of Evolution and Development: From Genes to Function to Ear, Lateral Line and Electroreception
  43. Developmental Changes in Peripherin-eGFP Expression in Spiral Ganglion Neurons
  44. Neurog1, Neurod1, and Atoh1 are essential for spiral ganglia, cochlear nuclei, and cochlear hair cell development
  45. Development in the Mammalian Auditory System Depends on Transcription Factors
  46. Chromatin remodelers and lineage-specific factors interact to target enhancers to establish proneurosensory fate within otic ectoderm
  47. A human induced pluripotent stem cell-based modular platform to challenge sensorineural hearing loss
  48. Smoothened overexpression causes trochlear motoneurons to reroute and innervate ipsilateral eyes
  49. Lmx1a and Lmx1b are Redundantly Required for the Development of Multiple Components of the Mammalian Auditory System
  50. Combined Atoh1 and Neurod1 Deletion Reveals Autonomous Growth of Auditory Nerve Fibers
  51. Effects of Neurod1 Expression on Mouse and Human Schwannoma Cells
  52. Using Sox2 to alleviate the hallmarks of age-related hearing loss
  53. Deficiency of the ER-stress-regulator MANF triggers progressive outer hair cell death and hearing loss
  54. A Screen for Gene Paralogies Delineating Evolutionary Branching Order of Early Metazoa
  55. Dynamic changes in cis-regulatory occupancy by Six1 and its cooperative interactions with distinct cofactors drive lineage-specific gene expression programs during progressive differentiation of the auditory sensory epithelium
  56. Interaction with ectopic cochlear crista sensory epithelium disrupts basal cochlear sensory epithelium development in Lmx1a mutant mice
  57. Evolution and Development of Lateral Line and Electroreception: An Integrated Perception of Neurons, Hair Cells and Brainstem Nuclei
  58. Early ear neuronal development, but not olfactory or lens development, can proceed without SOX2
  59. Intestinal Neurod1 expression impairs paneth cell differentiation and promotes enteroendocrine lineage specification
  60. Can google trends improve sales forecasts on a product level?
  61. Drohnen zum Materialtransport
  62. Topologically correct central projections of tetrapod inner ear afferents require Fzd3
  63. Npr2 null mutants show initial overshooting followed by reduction of spiral ganglion axon projections combined with near-normal cochleotopic projection
  64. Neuronal Migration Generates New Populations of Neurons That Develop Unique Connections, Physiological Properties and Pathologies
  65. Primary sensory map formations reflect unique needs and molecular cues specific to each sensory system
  66. Opportunities and limitations of software project management in geoscience and climate modelling
  67. Neurod1 Is Essential for the Primary Tonotopic Organization and Related Auditory Information Processing in the Midbrain
  68. Wilhelm His’ lasting insights into hindbrain and cranial ganglia development and evolution
  69. Auditory Nomenclature: Combining Name Recognition With Anatomical Description
  70. Brg1 controls neurosensory cell fate commitment and differentiation in the mammalian inner ear
  71. In Memoriam to the man behind the camera: David J LIM, MD November 27 1935–June 29, 2018
  72. Transplantation of Ears Provides Insights into Inner Ear Afferent Pathfinding Properties
  73. Ear transplantations reveal conservation of inner ear afferent pathfinding cues
  74. Evolutionary and Developmental Biology Provide Insights Into the Regeneration of Organ of Corti Hair Cells
  75. A RNAscope whole mount approach that can be combined with immunofluorescence to quantify differential distribution of mRNA
  76. Understanding Molecular Evolution and Development of the Organ of Corti Can Provide Clues for Hearing Restoration
  77. Intracellular Regulome Variability Along the Organ of Corti: Evidence, Approaches, Challenges, and Perspective
  78. The Wiley Handbook on the Aging Mind and Brain
  79. Geriatric dentistry education and context in a selection of countries in 5 continents
  80. Auditory Neural Activity in Congenitally Deaf Mice Induced by Infrared Neural Stimulation
  81. Gene, cell, and organ multiplication drives inner ear evolution
  82. NEUROG1 Regulates CDK2 to Promote Proliferation in Otic Progenitors
  83. Sonic hedgehog antagonists reduce size and alter patterning of the frog inner ear
  84. Gaskell revisited: new insights into spinal autonomics necessitate a revised motor neuron nomenclature
  85. Prickle1 regulates neurite outgrowth of apical spiral ganglion neurons but not hair cell polarity in the murine cochlea
  86. A method for detailed movement pattern analysis of tadpole startle response
  87. Evolution and Development of the Inner Ear Efferent System: Transforming a Motor Neuron Population to Connect to the Most Unusual Motor Protein via Ancient Nicotinic Receptors
  88. Spiral Ganglion Neuron Projection Development to the Hindbrain in Mice Lacking Peripheral and/or Central Target Differentiation
  89. An image processing framework for automated analysis of swimming behavior in tadpoles with vestibular alterations
  90. Absatzprognose mit Suchmaschinendaten
  91. Sensing External and Self-Motion with Hair Cells: A Comparison of the Lateral Line and Vestibular Systems from a Developmental and Evolutionary Perspective
  92. Organ of Corti and Stria Vascularis: Is there an Interdependence for Survival?
  93. Incomplete and delayed Sox2 deletion defines residual ear neurosensory development and maintenance
  94. The atypical cadherin Celsr1 functions non-cell autonomously to block rostral migration of facial branchiomotor neurons in mice
  95. NOVA2-mediated RNA regulation is required for axonal pathfinding during development
  96. Pax2-Islet1 Transgenic Mice Are Hyperactive and Have Altered Cerebellar Foliation
  97. Expression and Localization of CaBP Ca2+ Binding Proteins in the Mouse Cochlea
  98. Faculty of 1000 evaluation for Absence of Neuroplastin-65 Affects Synaptogenesis in Mouse Inner Hair Cells and Causes Profound Hearing Loss.
  99. Neuroanatomical Tracing Techniques in the Ear: History, State of the Art, and Future Developments
  100. The Primary Auditory Neurons of the Mammalian Cochlea
  101. Faculty of 1000 evaluation for NeuroD1 reprograms chromatin and transcription factor landscapes to induce the neuronal program.
  102. Faculty of 1000 evaluation for Insm1 promotes neurogenic proliferation in delaminated otic progenitors.
  103. Neurog1 can partially substitute for Atoh1 function in hair cell differentiation and maintenance during organ of Corti development
  104. The quest for restoring hearing: Understanding ear development more completely
  105. Auditory system: development, genetics, function, aging, and diseases
  106. Development of Twitching in Sleeping Infant Mice Depends on Sensory Experience
  107. Deterioration of the Medial Olivocochlear Efferent System Accelerates Age-Related Hearing Loss in Pax2-Isl1 Transgenic Mice
  108. Ear manipulations reveal a critical period for survival and dendritic development at the single-cell level in Mauthner neurons
  109. Inner ear hair cells deteriorate in mice engineered to have no or diminished innervation
  110. Development of Twitching in Sleeping Infant Mice Depends on Sensory Experience
  111. Sensory afferent segregation in three-eared frogs resemble the dominance columns observed in three-eyed frogs
  112. Opportunities and limits of the one gene approach: the ability of Atoh1 to differentiate and maintain hair cells depends on the molecular context
  113. Combining Whole-Mount In Situ Hybridization with Neuronal Tracing and Immunohistochemistry
  114. Evolving gene regulatory networks into cellular networks guiding adaptive behavior: an outline how single cells could have evolved into a centralized neurosensory system
  115. Inner ear development: building a spiral ganglion and an organ of Corti out of unspecified ectoderm
  116. Electric organs: History and potential
  117. Prickle1 is necessary for the caudal migration of murine facial branchiomotor neurons
  118. Targeted Deletion of Sox10 by Wnt1-cre Defects Neuronal Migration and Projection in the Mouse Inner Ear
  119. Human CFEOM1 Mutations Attenuate KIF21A Autoinhibition and Cause Oculomotor Axon Stalling
  120. Maintenance of stereocilia and apical junctional complexes by Cdc42 in cochlear hair cells
  121. Anatomy of the lamprey ear: morphological evidence for occurrence of horizontal semicircular ducts in the labyrinth ofPetromyzon marinus
  122. Connecting Ears to Eye Muscles: Evolution of a ‘Simple' Reflex Arc
  123. Evolution and Development of Hair Cell Polarity and Efferent Function in the Inner Ear
  124. Analysis of PRICKLE 1 in human cleft palate and mouse development demonstrates rare and common variants involved in human malformations
  125. Evolution of vertebrate mechanosensory hair cells and inner ears: toward identifying stimuli that select mutation driven altered morphologies
  126. Prickle1 stunts limb growth through alteration of cell polarity and gene expression
  127. Atoh1 directs hair cell differentiation and survival in the late embryonic mouse inner ear
  128. Continued Expression of GATA3 Is Necessary for Cochlear Neurosensory Development
  129. Scanning thin-sheet laser imaging microscopy elucidates details on mouse ear development
  130. Beyond generalized hair cells: Molecular cues for hair cell types
  131. Sequencing of the sea lamprey (Petromyzon marinus) genome provides insights into vertebrate evolution
  132. Ephrin-A5/EphA4 signalling controls specific afferent targeting to cochlear hair cells
  133. Transplantation of Xenopus laevis Tissues to Determine the Ability of Motor Neurons to Acquire a Novel Target
  134. Correct Timing of Proliferation and Differentiation is Necessary for Normal Inner Ear Development and Auditory Hair Cell Viability
  135. Lizard and Frog Prestin: Evolutionary Insight into Functional Changes
  136. Evolution and development of the tetrapod auditory system: an organ of Corti-centric perspective
  137. Mammalian Genetics (Mouse Genetics)
  138. Neurosensory Specification and Development
  139. Three-dimensional reconstructions from optical sections of thick mouse inner ears using confocal microscopy
  140. N-Myc and L-Myc are essential for hair cell formation but not maintenance
  141. Evolution of Sound and Balance Perception: Innovations that Aggregate Single Hair Cells into the Ear and Transform a Gravistatic Sensor into the Organ of Corti
  142. A Mutation in the Srrm4 Gene Causes Alternative Splicing Defects and Deafness in the Bronx Waltzer Mouse
  143. The Myc Road to Hearing Restoration
  144. The mouse Wnt/PCP protein Vangl2 is necessary for migration of facial branchiomotor neurons, and functions independently of Dishevelled
  145. Understanding the evolution and development of neurosensory transcription factors of the ear to enhance therapeutic translation
  146. Scanning thin-sheet laser imaging microscopy elucidates details on mouse ear development
  147. Hoxb1 Controls Anteroposterior Identity of Vestibular Projection Neurons
  148. Expression of Neurog1 Instead of Atoh1 Can Partially Rescue Organ of Corti Cell Survival
  149. Scanning thin-sheet laser imaging microscopy elucidates details on mouse ear development
  150. A Novel Atoh1 “Self-Terminating” Mouse Model Reveals the Necessity of Proper Atoh1 Level and Duration for Hair Cell Differentiation and Viability
  151. Mutational ataxia resulting from abnormal vestibular acquisition and processing is partially compensated for.
  152. The amniote paratympanic organ develops from a previously undiscovered sensory placode
  153. Transforming the Vestibular System One Molecule at a Time: The Molecular and Developmental Basis of Vertebrate Auditory Evolution
  154. The molecular basis of making spiral ganglion neurons and connecting them to hair cells of the organ of Corti
  155. Regeneration of Hair Cells: Making Sense of All the Noise
  156. Dissecting the molecular basis of organ of Corti development: Where are we now?
  157. Conditional deletion of Atoh1 using Pax2-Cre results in viable mice without differentiated cochlear hair cells that have lost most of the organ of Corti
  158. Hoxb3 negatively regulates Hoxb1 expression in mouse hindbrain patterning
  159. The role of sensory organs and the forebrain for the development of the craniofacial shape as revealed by Foxg1-cre-mediated microRNA loss
  160. Conditional deletion of N-Myc disrupts neurosensory and non-sensory development of the ear
  161. Combining Lipophilic dye, in situ Hybridization, Immunohistochemistry, and Histology
  162. MicroRNA-183 family expression in hair cell development and requirement of microRNAs for hair cell maintenance and survival
  163. Mutations in Prickle Orthologs Cause Seizures in Flies, Mice, and Humans
  164. BRAIN AND NERVOUS SYSTEM | Cranial and Spinal Nerves of Fishes: Evolution of the Craniate Pattern
  165. Limited inner ear morphogenesis and neurosensory development are possible in the absence of GATA3
  166. P122. Sox2 dosage defines development and survival of sensory neurons in the inner ear
  167. Development and Evolution of the Vertebrate Ear's Neurosensory System
  168. Development of the Inner Ear Efferent System
  169. Neurod1 Suppresses Hair Cell Differentiation in Ear Ganglia and Regulates Hair Cell Subtype Development in the Cochlea
  170. Atypical Cadherins Celsr1-3 Differentially Regulate Migration of Facial Branchiomotor Neurons in Mice
  171. Neurod1 regulates survival and formation of connections in mouse ear and brain
  172. The role of bHLH genes in ear development and evolution: revisiting a 10-year-old hypothesis
  173. Development and organization of polarity-specific segregation of primary vestibular afferent fibers in mice
  174. Canal Cristae Growth and Fiber Extension to the Outer Hair Cells of the Mouse Ear Require Prox1 Activity
  175. Dog genome evolution: A strategy to segregate biogeographic effects from human selection
  176. PLCgamma-activated signaling is essential for TrkB mediated sensory neuron structural plasticity
  177. Pax2 and Pax8 cooperate in mouse inner ear morphogenesis and innervation
  178. Photo- and bio-physical characterization of novel violet and near-infrared lipophilic fluorophores for neuronal tracing
  179. Transplantation of Xenopus laevis ears reveals the ability to form afferent and efferent connections with the spinal cord
  180. Disorganized Innervation and Neuronal Loss in the Inner Ear of Slitrk6-Deficient Mice
  181. Atoh1-Lineal Neurons Are Required for Hearing and for the Survival of Neurons in the Spiral Ganglion and Brainstem Accessory Auditory Nuclei
  182. Differential and overlapping expression pattern of SOX2 and SOX9 in inner ear development
  183. Deletion of an enhancer near DLX5 and DLX6 in a family with hearing loss, craniofacial defects, and an inv(7)(q21.3q35)
  184. S06-04 Molecular and developmental insights into the pathogenesis of the
  185. Defects in the cerebella of conditional Neurod1 null mice correlate with effective Tg(Atoh1-cre) recombination and granule cell requirements for Neurod1 for differentiation
  186. Residual microRNA expression dictates the extent of inner ear development in conditional Dicer knockout mice
  187. Diffusion-Matched and Spectrally-Discrete Lipophilic Probes for Neuronal Tracing∗
  188. Brains of Primitive Chordates
  189. Evolution of Oculomotor System
  190. Evolution of the Hindbrain
  191. Vestibular Primary Afferent Pathways in Mammals
  192. Sox2 signaling in prosensory domain specification and subsequent hair cell differentiation in the developing cochlea
  193. Lmx1a is required for segregation of sensory epithelia and normal ear histogenesis and morphogenesis
  194. Eya1 gene dosage critically affects the development of sensory epithelia in the mammalian inner ear
  195. Regenerating cochlear hair cells: quo vadis stem cell
  196. Evolutionary insights into the unique electromotility motor of mammalian outer hair cells
  197. MicroRNA-183 family conservation and ciliated neurosensory organ expression
  198. Genetics of Mechanoreceptor Evolution and Development
  199. Cloning and developmental expression of the soxB2 genes, sox14 and sox21, during Xenopus laevis embryogenesis
  200. Orbital spaceflight during pregnancy shapes function of mammalian vestibular system.
  201. Targeted knockout and lacZ reporter expression of the mouse Tmhs deafness gene and characterization of the hscy-2J mutation
  202. The molecular basis for auditory system evolution
  203. Developmental expression of Kcnq4 in vestibular neurons and neurosensory epithelia
  204. Evolution of the Deuterostome Central Nervous System: An Intercalation of Developmental Patterning Processes with Cellular Specification Processes
  205. Disruption offibroblast growth factor receptor 3 signaling results in defects in cellular differentiation, neuronal patterning, and hearing impairment
  206. In pursuit of communication. An interview with Bob Ruben
  207. Preface. Ear Development.
  208. Long-Distance Three-Color Neuronal Tracing in Fixed Tissue Using NeuroVue Dyes
  209. Molecular evolution of the vertebrate mechanosensory cell and ear
  210. The molecular biology of ear development - "Twenty years are nothing"
  211. Neurotrophins and hearing dysfunction: Comparing models to stop nerve fiber loss
  212. Near-infrared laser illumination transforms the fluorescence absorbing X-Gal reaction product BCI into a transparent, yet brightly fluorescent substance
  213. A disorganized innervation of the inner ear persists in the absence of ErbB2
  214. Cells, molecules and morphogenesis: the making of the vertebrate ear
  215. Conditional and inducible gene recombineering in the mouse inner ear
  216. Ear and Lateral Line of Vertebrates: Organization and Development
  217. Comparative Analysis of Neurotrophin Receptors and Ligands in Vertebrate Neurons: Tools for Evolutionary Stability or Changes in Neural Circuits?
  218. Foxg1 is required for morphogenesis and histogenesis of the mammalian inner ear
  219. The molecular basis of neurosensory cell formation in ear development: a blueprint for hair cell and sensory neuron regeneration?
  220. The development of the hindbrain afferent projections in the axolotl: Evidence for timing as a specific mechanism of afferent fiber sorting
  221. Differential Expression of KCNQ4 in Inner Hair Cells and Sensory Neurons Is the Basis of Progressive High-Frequency Hearing Loss
  222. Smaller inner ear sensory epithelia in Neurog1 null mice are related to earlier hair cell cycle exit
  223. Diffusion and imaging properties of three new lipophilic tracers, NeuroVue™ Maroon, NeuroVue™ Red and NeuroVue™ Green and their use for double and triple labeling of neuronal profile
  224. Mutant mice reveal the molecular and cellular basis for specific sensory connections to inner ear epithelia and primary nuclei of the brain
  225. Ancestry of Photic and Mechanic Sensation?
  226. The retinoblastoma gene pathway regulates the postmitotic state of hair cells of the mouse inner ear
  227. The influence of bile salts and mixed micelles on the pharmacokinetics of quinine in rabbits
  228. Atoh1 null mice show directed afferent fiber growth to undifferentiated ear sensory epithelia followed by incomplete fiber retention
  229. Partial behavioral compensation is revealed in balance tasked mutant mice lacking otoconia
  230. Eya1 and Six1 are essential for early steps of sensory neurogenesis in mammalian cranial placodes
  231. Cranial sensory neuron development in the absence of brain-derived neurotrophic factor in BDNF/Bax double null mice
  232. Abdominal vagal mediation of the satiety effects of CCK in rats
  233. NT-3 Replacement with Brain-Derived Neurotrophic Factor Redirects Vestibular Nerve Fibers to the Cochlea
  234. Innervation of the maxillary vibrissae in mice as revealed by anterograde and retrograde tract tracing
  235. Neurotrophins in the ear: their roles in sensory neuron survival and fiber guidance
  236. Creation of a transgenic mouse for hair-cell gene targeting by using a modified bacterial artificial chromosome containingPrestin
  237. Inner hair cell Cre-expressing transgenic mouse
  238. Keeping Sensory Cells and Evolving Neurons to Connect Them to the Brain: Molecular Conservation and Novelties in Vertebrate Ear Development
  239. Time course of embryonic midbrain and thalamic auditory connection development in mice as revealed by carbocyanine dye tracing
  240. Nkx6.1 controls migration and axon pathfinding of cranial branchio-motoneurons
  241. Molecular developmental neurobiology of formation, guidance and survival of primary vestibular neurons
  242. Neuropilin-1 Conveys Semaphorin and VEGF Signaling during Neural and Cardiovascular Development
  243. Development of inner ear afferent connections: forming primary neurons and connecting them to the developing sensory epithelia
  244. Development of vestibular afferent projections into the hindbrain and their central targets
  245. Special Issue on “Functional Anatomy of Ear Connections”
  246. Expression and function of FGF10 in mammalian inner ear development
  247. Partial segregation of posterior crista and saccular fibers to the nodulus and uvula of the cerebellum in mice, and its development
  248. Brn3c null mutant mice show long-term, incomplete retention of some afferent inner ear innervation
  249. Commentary
  250. Chick hair cells do not exhibit voltage-dependent somatic motility
  251. CommentaryThe ear of Latimeria chalumnae revisited
  252. Molecular Conservation and Novelties in Vertebrate Ear Development
  253. Antimicrobial peptides and protease inhibitors in the skin secretions of the crawfish frog, Rana areolata
  254. Development and evolution of inner ear sensory epithelia and their innervation
  255. The developmental segregation of posterior crista and saccular vestibular fibers in mice: a carbocyanine tracer study using confocal microscopy
  256. Auditory System Development: Primary Auditory Neurons and Their Targets
  257. Distinct requirements for TrkB and TrkC signaling in target innervation by sensory neurons
  258. Cochlear whole mount in situ hybridization: identification of longitudinal and radial gradients
  259. Formation of brainstem (nor)adrenergic centers and first-order relay visceral sensory neurons is dependent on homeodomain protein Rnx/Tlx3
  260. Otx 1 null mutant mice show partial segregation of sensory epithelia comparable to lamprey ears
  261. Evolution and development of the vertebrate ear
  262. Mutations in Cdh23 Cause Nonsyndromic Hearing Loss in waltzer Mice
  263. Proprioceptor Pathway Development Is Dependent on MATH1
  264. Development of the ear and of connections between the ear and the brain: is there a role for gravity?
  265. Intracranial distribution of the sympathetic system in mice: DiI tracing and immunocytochemical labeling
  266. Longitudinal gradients of KCNQ4 expression in spiral ganglion and cochlear hair cells correlate with progressive hearing loss in DFNA2
  267. Neurogenin 1 Null Mutant Ears Develop Fewer, Morphologically Normal Hair Cells in Smaller Sensory Epithelia Devoid of Innervation
  268. EphB2 Guides Axons at the Midline and Is Necessary for Normal Vestibular Function
  269. Transcription factor GATA-3 alters pathway selection of olivocochlear neurons and affects morphogenesis of the ear
  270. Effects of microgravity on vestibular development and function in rats: Genetics and environment
  271. Hearing
  272. Hearing
  273. Visualization of α9 acetylcholine receptor expression in hair cells of transgenic mice containing a modified bacterial artificial chromosome
  274. Whole-mount procedures for simultaneous visualization of nerves, neurons, cartilage and bone
  275. Characterization of G-protein βγ expression in the inner ear
  276. Making and breaking the innervation of the ear: neurotrophic support during ear development and its clinical implications
  277. Hearing in Two Worlds: Theoretical and Actual Adaptive Changes of the Aquatic and Terrestrial Ear for Sound Reception
  278. Development and Maintenance of Ear Innervation and Function: Lessons from Mutations in Mouse and Man
  279. Nerve Dependency of Developing and Mature Sensory Receptor Cellsa
  280. The combined effects of trkB and trkC mutations on the innervation of the inner ear
  281. Evolution of the Vestibulo-Ocular System
  282. Of Mice and Genes: Evolution of Vertebrate Brain Development
  283. Purification and Structural Characterization of Insulin and Glucagon from the BichirPolypterus senegalis(Actinopterygii: Polypteriformes)
  284. Severe Sensory Deficits but Normal CNS Development in Newborn Mice Lacking TrkB and TrkC Tyrosine Protein Kinase Receptors
  285. Mice with a targeted disruption of the neurotrophin receptor trkB lose their gustatory ganglion cells early but do develop taste buds
  286. The development of vestibulocochlear efferents and cochlear afferents in mice
  287. The role of neurotrophic factors in regulating the development of inner ear innervation
  288. Electron microscopic differentiation of directly and transneuronally transported DiI and applications for studies of synaptogenesis
  289. On the Role Played by Ontogenetic Remodeling and Functional Transformation in the Evolution of Terrestrial Hearing
  290. Organizational–Activational Concept Revisited: Sexual Differentiation in an Atherinomorph Teleost
  291. Development of the Labyrinthine Efferent System
  292. A Simple and Reliable Technique to Combine Oligonucleotide Probe in Situ Hybridization with Neuronal Tract Tracing in Vertebrate Embryos
  293. Neuroanatomical and Histochemical Evidence for the Presence of Common Lateral Line and Inner Ear Efferents and of Efferents to the Basilar Papilla in a Frog, Xenopus laevis
  294. Tangential migration of luteinizing hormone-releasing hormone (LHRH) neurons in the medial telencephalon in association with transient axons extending from the olfactory nerve
  295. Letter to the editor
  296. Development of midbrain and anterior hindbrain ocular motoneurons in normal and Wnt-1 knockout mice
  297. Evolution and desensitization of LGIC receptors
  298. Electroreceptors and Mechanosensory Lateral Line Organs Arise from Single Placodes in Axolotls
  299. Development of the Anal Fin Appendicular Support in the Western Mosquitofish, Gambusia affinis affinis (Baird and Girard, 1854): A Reinvestigation and Reinterpretation
  300. Fiber pathways and positional changes in efferent perikarya of 2.5-to 7-day chick embryos as revealed with dil and dextran amiens
  301. Fast axonal diffusion of 3000 molecular weight dextran amines
  302. Regenerating retinal fibers display error-free homing along undamaged normal fibers
  303. Origin and migration of trochlear, oculomotor and abducent motor neurons in Petromyzon marinus l.
  304. DiI reveals a prenatal arrival of efferents at the differentiating otocyst of mice
  305. Ipsilateral retinopetal projection of the nucleus olfactoretinalis (NOR) during development and regeneration: A dil study in a cichlid fish
  306. Observations on the shape of the lens in the eye of the silver lamprey, Ichthyomyzon unicuspis
  307. Ipsilateral retinal projections into the tectum during regeneration of the optic nerve in the cichlid fishHaplochromis burtoni: A dil study in fixed tissue
  308. The development of ipsilateral retinal projections into the tectum in the cichlid fishHaplochromis burtoni: A dil study in fixed tissue
  309. Retinoic acid affects the organization of reticulospinal neurons in developing Xenopus
  310. Evidence for a driving role of ingrowing axons for the shifting of older retinal terminals in the tectum of fish
  311. A Plastic Embedding Technique for Analyzing Fluorescent Dextran-Amine Labelled Neuronal Profiles
  312. The Water-to-Land Transition: Evolution of the Tetrapod Basilar Papilla, Middle Ear, and Auditory Nuclei
  313. Sequential double labelling with different fluorescent dyes coupled to dextran amines as a tool to estimate the accuracy of tracer application and of regeneration
  314. Development of the amphibian oculomotor complex: Evidences for migration of oculomotor motoneurons across the midline
  315. The eye in the brain: retinoic acid effects morphogenesis of the eye and pathway selection of axons but not the differentiation of the retina in Xenopus laevis
  316. African fishes
  317. Ontogenetic Clues to the Phylogeny of the Visual System
  318. Time course of structural changes in regenerating electroreceptors of a weakly electric fish
  319. The evolution of metamorphosis in amphibians
  320. Neurogenesis and learning
  321. Oculomotor (N III) motoneurons can innervate the superior oblique muscle of Xenopus after larval trochlear (N IV) nerve surgery
  322. Dendritic distribution of two populations of ganglion cells and the retinopetal fibers in the retina of the silver lamprey ( Ichthyomyzon unicuspis)
  323. Lithium can transform ear placodes ofXenopus into multiple otic vesicles connected by tubes
  324. Evolution of tetrapod hearing
  325. A discrete projection of the sacculus and lagena to a distinct brainstem nucleus in a catfish
  326. Dextran amines in neuronal tracing
  327. Ipsilateral Retinofugal Projections in a Percomorph Bony Fish: Their Experimental Induction, Specificity and Maintenance; pp. 286–292
  328. Ipsilateral Retinofugal Projections in a Percomorph Bony Fish: Their Experimental Induction, Specificity and Maintenance; pp. 279–285
  329. Ipsilateral Retinofugal Projections in a Percomorph Bony Fish: Their Experimental Induction, Specificity and Maintenance; pp. 293–299
  330. Experimental reorganization in the alar plate of the clawed toad, Xenopus laevis. I. Quantitative and qualitative effects of embryonic otocyst extirpation
  331. Ipsilateral Retinofugal Projections in a Percomorph Bony Fish: Their Experimental Induction, Specificity and Maintenance; pp. 271–278
  332. Lithium causes ear placodes to form tubes connecting multiple ears
  333. Development of tectal neurons in the perciform teleost Haplochromis burtoni. A Golgi study
  334. Diversity and Regression in the Amphibian Lateral Line and Electrosensory System
  335. Efferents to the labyrinth of the river lamprey (Lampetra fluviatilis) as revealed with retrograde tracing techniques
  336. The Forebrain of Reptiles: Current Concepts of Structure and Function
  337. The inner ear of gymnophione amphibians and its nerve supply: A comparative study of regressive events in a complex sensory system (Amphibia, Gymnophiona)
  338. A Simple, Reliable and Inexpensive Silver Stain for Nerve Fibers in Bleached Skin
  339. The trochlear motoneurons of lampreys (Lampetra fluviatilis): location, morphology and numbers as revealed with horseradish peroxidase
  340. Induction of hair cell formation in the vertebrate inner ear
  341. The Lateral-Line and Inner-Ear Afferents in Larval and Adult Urodeles
  342. The Lateral-Line and Inner-Ear Afferents in Larval and Adult Urodeles (Part 2 of 2)
  343. Electron microscopical evidence for common inner ear and lateral line efferents in urodeles
  344. Ipsilateral retinofugal and retinopetal projections in normal and monocular cichlid fish
  345. The development of the amphibian trochlear nucleus. An HRP study
  346. Inner ear of the coelacanth fish Latimeria has tetrapod affinities
  347. Metamorphic changes within the lateral-line system of Anura
  348. The Retention of the Lateral-Line Nucleus in Adult Anurans
  349. The amphibian lateral line system
  350. The trochlear nerve of amphibians and its relation to proprioceptive fibers: a qualitative and quantitative HRP study
  351. The Distribution of Ampullary Organs in Gymnophiona
  352. The Amphibian Ear
  353. On the Development of Electroreceptive Ampullary Organs of Triturus alpestris (Amphibia: Urodela)
  354. The fine structure of the lateral-line organs of larvalIchthyophis (Amphibia: Gymnophiona)
  355. Visual projections in larval Ichthyophis kohtaoensis (Amphibia: gymnophiona)
  356. Anatomical evidence for electroreception in larval Ichthyophis kohtaoensis
  357. Projection patterns of lateral-line afferents in anurans: A comparative HRP study
  358. Parcellation or invasion: A case for pluralism
  359. Notizen: Neuroanatomical Evidence for Electroreception in Lampreys
  360. The origin of centrifugal inner ear fibers of gymnophions (amphibia). A horseradish peroxidase study
  361. Electroreceptive and mechanoreceptive units in the lateral line of the axolotlAmbystoma mexicanum
  362. The development of the retinopetal nucleus olfacto-retinalis of two cichlid fish as revealed by horseradish peroxidase
  363. The electroreceptive ampullary organs of urodeles
  364. Interspecific Fertile Hybrids of Haplochromine Cichlidae (Teleostei) and Their Possible Importance for Speciation
  365. Electrophysiological evidence of electroreception in the axoloyl Siredon mexicanum
  366. Evolution of electroreception
  367. Common efferents to lateral line and labyrinthine hair cells in aquatic vertebrates
  368. Efferent neurons to the labyrinth of Salamandra salamandra as revealed by retrograde transport of horseradish peroxidase
  369. Development of retinofugal neuropil areas in the brain of the alpine newt, Triturus alpestris
  370. Transneuronal vestibular afferent influence on the nodular molecular layer synaptogenesis
  371. Pretectal neurons project to the salamander retina
  372. Retinal projections in European Salamandridae
  373. Anatomy of visual afferents in salamander brain
  374. Observations on degenerative changes of purkinje cells during early development in mice and in normal and otocyst-deprived chickens
  375. Mammalian Inner Ear Development: Of Mice and Man