Immuno-surveillance and protection of the human cochlea
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H. Ladak | S. Agrawal | Wei Liu | Hao Li | N. Danckwardt-Lillieström | Charlotta Kämpfe Nordström | Helge Rask-Andersen
[1] H. Ladak,et al. Microanatomy of the human tunnel of Corti structures and cochlear partition‐tonotopic variations and transcellular signaling , 2024, Journal of anatomy.
[2] Brian Mostaert,et al. Contribution of macrophages to neural survival and intracochlear tissue remodeling responses following cochlear implantation , 2023, Journal of Neuroinflammation.
[3] Celia Zhang,et al. Heterogeneity in macrophages along the cochlear spiral in mice: insights from SEM and functional analyses , 2023, Frontiers in cellular neuroscience.
[4] M. Eckert,et al. The Stria Vascularis in Mice and Humans Is an Early Site of Age-Related Cochlear Degeneration, Macrophage Dysfunction, and Inflammation , 2023, The Journal of Neuroscience.
[5] B. McColl,et al. Microglia regulate central nervous system myelin growth and integrity , 2022, Nature.
[6] A. Nuttall,et al. Best frequencies and temporal delays are similar across the low-frequency regions of the guinea pig cochlea , 2022, Science advances.
[7] Hongzhe Li,et al. Effects of Combined Gentamicin and Furosemide Treatment on Cochlear Macrophages , 2022, International journal of molecular sciences.
[8] H. Rask-Andersen,et al. Na/K-ATPase Gene Expression in the Human Cochlea: A Study Using mRNA in situ Hybridization and Super-Resolution Structured Illumination Microscopy , 2022, Frontiers in Molecular Neuroscience.
[9] H. Rask-Andersen,et al. Distribution of Immune Cells Including Macrophages in the Human Cochlea , 2021, Frontiers in Neurology.
[10] B. Zlokovic,et al. Microglia have a grip on brain microvasculature , 2021, Nature Communications.
[11] Bruce A. Corliss,et al. Capillary-associated microglia regulate vascular structure and function through PANX1-P2RY12 coupling in mice , 2021, Nature Communications.
[12] T. Kaur,et al. Innate Immunity to Spiral Ganglion Neuron Loss: A Neuroprotective Role of Fractalkine Signaling in Injured Cochlea , 2021, Frontiers in Cellular Neuroscience.
[13] H. Ladak,et al. Three-dimensional tonotopic mapping of the human cochlea based on synchrotron radiation phase-contrast imaging , 2021, Scientific Reports.
[14] H. Olze,et al. Mast Cells in the Auditory Periphery of Rodents , 2020, Brain sciences.
[15] J. Zuo,et al. The immune response after noise damage in the cochlea is characterized by a heterogeneous mix of adaptive and innate immune cells , 2020, Scientific Reports.
[16] F. Ginhoux,et al. Determinants of Resident Tissue Macrophage Identity and Function. , 2020, Immunity.
[17] W. Kong,et al. Macrophages in Noise-Exposed Cochlea: Changes, Regulation and the Potential Role , 2020, Aging and disease.
[18] N. McNamara,et al. Microglia in developing white matter and perinatal brain injury , 2020, Neuroscience Letters.
[19] D. Furness. Forgotten Fibrocytes: A Neglected, Supporting Cell Type of the Cochlea With the Potential to be an Alternative Therapeutic Target in Hearing Loss , 2019, Front. Cell. Neurosci..
[20] Jan Wouters,et al. High-resolution Imaging of the Human Cochlea through the Round Window by means of Optical Coherence Tomography , 2019, Scientific Reports.
[21] J. Nadol,et al. Density of Macrophages Immunostained With Anti-Iba1 Antibody in the Vestibular Endorgans After Cochlear Implantation in the Human. , 2019, Otology & neurotology : official publication of the American Otological Society, American Neurotology Society [and] European Academy of Otology and Neurotology.
[22] H. Lang,et al. Age-Related Changes in Immune Cells of the Human Cochlea , 2019, Front. Neurol..
[23] H. Rask-Andersen,et al. Human Inner Ear Immune Activity: A Super-Resolution Immunohistochemistry Study , 2019, Front. Neurol..
[24] K. Ohlemiller,et al. Lack of Fractalkine Receptor on Macrophages Impairs Spontaneous Recovery of Ribbon Synapses After Moderate Noise Trauma in C57BL/6 Mice , 2019, Front. Neurosci..
[25] H. Ladak,et al. Synchrotron Radiation-Based Reconstruction of the Human Spiral Ganglion: Implications for Cochlear Implantation , 2019, Ear and hearing.
[26] G. Laurell,et al. The Human Endolymphatic Sac and Inner Ear Immunity: Macrophage Interaction and Molecular Expression , 2019, Front. Immunol..
[27] Lei Jin,et al. B cell MHC class II signaling: A story of life and death. , 2019, Human immunology.
[28] H. Rask-Andersen,et al. Super-resolution immunohistochemistry study on CD4 and CD8 cells and the relation to macrophages in human cochlea , 2018, Journal of otology.
[29] H. Benav,et al. Macrophages in the Human Cochlea: Saviors or Predators—A Study Using Super-Resolution Immunohistochemistry , 2018, Front. Immunol..
[30] H. Ladak,et al. The secondary spiral lamina and its relevance in cochlear implant surgery , 2018, Upsala journal of medical sciences.
[31] Hanif M. Ladak,et al. Improved middle-ear soft-tissue visualization using synchrotron radiation phase-contrast imaging , 2017, Hearing Research.
[32] M. Warchol,et al. Two cell populations participate in clearance of damaged hair cells from the sensory epithelia of the inner ear , 2017, Hearing Research.
[33] H. Benav,et al. The Human “Cochlear Battery” – Claudin-11 Barrier and Ion Transport Proteins in the Lateral Wall of the Cochlea , 2017, Front. Mol. Neurosci..
[34] Alberto Recio-Spinoso,et al. Mechanical tuning and amplification within the apex of the guinea pig cochlea , 2017, The Journal of physiology.
[35] J. Zuo,et al. The Contribution of Immune Infiltrates to Ototoxicity and Cochlear Hair Cell Loss , 2017, Front. Cell. Neurosci..
[36] M. Prinz,et al. Ontogeny and homeostasis of CNS myeloid cells , 2017, Nature Immunology.
[37] Hanif M. Ladak,et al. Measuring Cochlear Duct Length – a historical analysis of methods and results , 2017, Journal of Otolaryngology - Head & Neck Surgery.
[38] Xiaorui Shi. Pathophysiology of the cochlear intrastrial fluid-blood barrier (review) , 2016, Hearing Research.
[39] P. Thorne,et al. Characterisation of cochlear inflammation in mice following acute and chronic noise exposure , 2016, Histochemistry and Cell Biology.
[40] M. McKenna,et al. Anti CD163+, Iba1+, and CD68+ Cells in the Adult Human Inner Ear: Normal Distribution of an Unappreciated Class of Macrophages/Microglia and Implications for Inflammatory Otopathology in Humans , 2016, Otology & neurotology : official publication of the American Otological Society, American Neurotology Society [and] European Academy of Otology and Neurotology.
[41] E. Rubel,et al. Fractalkine Signaling Regulates Macrophage Recruitment into the Cochlea and Promotes the Survival of Spiral Ganglion Neurons after Selective Hair Cell Lesion , 2015, The Journal of Neuroscience.
[42] R. R. Vethanayagam,et al. Activation of the antigen presentation function of mononuclear phagocyte populations associated with the basilar membrane of the cochlea after acoustic overstimulation , 2015, Neuroscience.
[43] E. Rubel,et al. Macrophage recruitment and epithelial repair following hair cell injury in the mouse utricle , 2015, Front. Cell. Neurosci..
[44] P. Cayé-Thomasen,et al. Gene expression demonstrates an immunological capacity of the human endolymphatic sac , 2015, The Laryngoscope.
[45] M. Huisman,et al. Development of the stria vascularis and potassium regulation in the human fetal cochlea: Insights into hereditary sensorineural hearing loss , 2015, Developmental neurobiology.
[46] H. Löwenheim,et al. The pre- and post-somatic segments of the human type I spiral ganglion neurons – Structural and functional considerations related to cochlear implantation , 2015, Neuroscience.
[47] J. Bard,et al. Molecular profile of cochlear immunity in the resident cells of the organ of Corti , 2014, Journal of Neuroinflammation.
[48] G. Randolph,et al. Origin and functions of tissue macrophages. , 2014, Immunity.
[49] R. Ransohoff,et al. Systemic Lipopolysaccharide Induces Cochlear Inflammation and Exacerbates the Synergistic Ototoxicity of Kanamycin and Furosemide , 2014, Journal of the Association for Research in Otolaryngology.
[50] D. Brooks,et al. Increased microglia activation in neurologically asymptomatic HIV-infected patients receiving effective ART , 2014, AIDS.
[51] R. Sobel,et al. MHC class II–dependent B cell APC function is required for induction of CNS autoimmunity independent of myelin-specific antibodies , 2013, The Journal of experimental medicine.
[52] J. Herman,et al. Differential effects of homotypic vs. heterotypic chronic stress regimens on microglial activation in the prefrontal cortex , 2013, Physiology & Behavior.
[53] L. S. Murray,et al. The neuroinflammatory response in humans after traumatic brain injury , 2013, Neuropathology and applied neurobiology.
[54] M. Schwartz,et al. Microglia and monocyte-derived macrophages: functionally distinct populations that act in concert in CNS plasticity and repair , 2013, Front. Cell. Neurosci..
[55] R. Kikinis,et al. 3D Slicer as an image computing platform for the Quantitative Imaging Network. , 2012, Magnetic resonance imaging.
[56] Xiaoping Du,et al. Reduced Formation of Oxidative Stress Biomarkers and Migration of Mononuclear Phagocytes in the Cochleae of Chinchilla after Antioxidant Treatment in Acute Acoustic Trauma , 2011, International journal of otolaryngology.
[57] A. Barragan,et al. Migratory Activation of Primary Cortical Microglia upon Infection with Toxoplasma gondii , 2011, Infection and Immunity.
[58] S. Akira,et al. Activation of Lipopolysaccharide–TLR4 Signaling Accelerates the Ototoxic Potential of Cisplatin in Mice , 2011, The Journal of Immunology.
[59] T. Harada,et al. Round Window Membrane in Ménière's Disease: A Human Temporal Bone Study , 2011, Otology & neurotology : official publication of the American Otological Society, American Neurotology Society [and] European Academy of Otology and Neurotology.
[60] R. Burry. Controls for Immunocytochemistry , 2011, The journal of histochemistry and cytochemistry : official journal of the Histochemistry Society.
[61] Ania K. Majewska,et al. Microglial Interactions with Synapses Are Modulated by Visual Experience , 2010, PLoS biology.
[62] Huiqi Pan,et al. Spiral ligament fibrocyte-derived MCP-1/CCL2 contributes to inner ear inflammation secondary to nontypeable H. influenzae-induced otitis media , 2010, BMC infectious diseases.
[63] G. Enikolopov,et al. Microglia shape adult hippocampal neurogenesis through apoptosis-coupled phagocytosis. , 2010, Cell stem cell.
[64] Xiaorui Shi. Resident macrophages in the cochlear blood-labyrinth barrier and their renewal via migration of bone-marrow-derived cells , 2010, Cell and Tissue Research.
[65] H. Okano,et al. Blockade of interleukin-6 signaling suppressed cochlear inflammatory response and improved hearing impairment in noise-damaged mice cochlea , 2010, Neuroscience Research.
[66] S. Naganawa,et al. Individual Differences in the Permeability of the Round Window: Evaluating the Movement of Intratympanic Gadolinium Into the Inner Ear , 2009, Otology & neurotology : official publication of the American Otological Society, American Neurotology Society [and] European Academy of Otology and Neurotology.
[67] Brian Tiong Gee Tan,et al. Bone marrow‐derived cells that home to acoustic deafened cochlea preserved their hematopoietic identity , 2008, The Journal of comparative neurology.
[68] J. Ito,et al. Bone marrow‐derived cells expressing Iba1 are constitutively present as resident tissue macrophages in the mouse cochlea , 2008, Journal of neuroscience research.
[69] D. Bagger-sjöbäck,et al. Immunodefense of the Round Window , 2008, The Laryngoscope.
[70] Peter Billings,et al. Immune cell recruitment following acoustic trauma , 2006, Hearing Research.
[71] R. Ransohoff,et al. CC Chemokine Receptor 2 is Protective Against Noise-Induced Hair Cell Death: Studies in CX3CR1+/GFP Mice , 2006, Journal of the Association for Research in Otolaryngology.
[72] M. Shimoda,et al. Role of MHC Class II on Memory B Cells in Post-Germinal Center B Cell Homeostasis and Memory Response1 , 2006, The Journal of Immunology.
[73] H. Rask-Andersen,et al. Innervation of the Apical Turn of the Human Cochlea: A Light Microscopic and Transmission Electron Microscopic Investigation , 2006, Otology & neurotology : official publication of the American Otological Society, American Neurotology Society [and] European Academy of Otology and Neurotology.
[74] R. Ransohoff,et al. Mononuclear phagocytes migrate into the murine cochlea after acoustic trauma , 2005, The Journal of comparative neurology.
[75] Philine Wangemann,et al. K+ cycling and the endocochlear potential , 2002, Hearing Research.
[76] Helge Rask-Andersen,et al. A 3-D model of membrane specializations between human auditory spiral ganglion cells , 2001, Journal of neurocytology.
[77] K. Yoshida,et al. Significance of spiral ligament fibrocytes with cochlear inflammation. , 2000, International journal of pediatric otorhinolaryngology.
[78] F. Linthicum,et al. Extraneous round Window Membranes and Plugs: Possible Effect on Intratympanic Therapy , 2000, The Annals of otology, rhinology, and laryngology.
[79] G. Mogi,et al. Effect of proinflammatory cytokines on cultured spiral ligament fibrocytes , 1999, Hearing Research.
[80] T. Schall,et al. Identification and Molecular Characterization of Fractalkine Receptor CX3CR1, which Mediates Both Leukocyte Migration and Adhesion , 1997, Cell.
[81] Wei Wang,et al. A new class of membrane-bound chemokine with a CX3C motif , 1997, Nature.
[82] P. Wangemann,et al. Ion transport mechanisms responsible for K+ secretion and the transepithelial voltage across marginal cells of stria vascularis in vitro , 1995, Hearing Research.
[83] M. Palmer,et al. Breakdown of the round window membrane permeability barrier evoked by streptolysin O: possible etiologic role in development of sensorineural hearing loss in acute otitis media , 1995, Infection and immunity.
[84] K. Steel,et al. Expression of α and β subunit isoforms of Na,K-ATPase in the mouse inner ear and changes with mutations at the Wv or Sld loci , 1994, Hearing Research.
[85] D. Schiffer,et al. Reactive cell proliferation and microglia following injury to the rat brain , 1994, Neuropathology and applied neurobiology.
[86] K. Hozawa,et al. Fine structure of the lamina basilaris of guinea pig cochlea. , 1993, Acta oto-laryngologica.
[87] J. Conlee,et al. Turn-specific differences in the endocochlear potential between albino and pigmented guinea pigs , 1993, Hearing Research.
[88] F. Linthicum,et al. Three-Dimensional Analysis of 61 Human Endolymphatic Ducts and Sacs in Ears with and without Meniere's Disease , 1991, The Annals of otology, rhinology, and laryngology.
[89] E. Ferrary,et al. Production of inner ear fluids. , 1988, Physiological reviews.
[90] T. Morizono,et al. Changes of the permeability of round window membrane in otitis media. , 1988, Archives of otolaryngology--head & neck surgery.
[91] K. Steel,et al. Strial dysfunction in mice with cochleo-saccular abnormalities , 1987, Hearing Research.
[92] Alec N. Salt,et al. Mechanism of endocochlear potential generation by stria vascularis , 1987 .
[93] J. Stahle,et al. TEMPORAL BONE CHARACTERISTICS IN MENIERE'S DISEASE * , 1981, Annals of the New York Academy of Sciences.
[94] J. Syka,et al. Longitudinal distribution of cochlear potentials and the K+ concentration in the endolymph after acoustic trauma , 1981, Hearing Research.
[95] W. House,et al. The transcochlear approach to the skull base. , 1976, Archives of otolaryngology.
[96] D. Eldredge,et al. Temporary threshold shifts in chinchilla: electrophysiological correlates. , 1972, The Journal of the Acoustical Society of America.
[97] S. Bosher,et al. A study of the electrochemistry and osmotic relationships of the cochlear fluids in the neonatal rat at the time of the development of the endocochlear potential , 1971, The Journal of physiology.
[98] D. D. Greenwood. Critical Bandwidth and the Frequency Coordinates of the Basilar Membrane , 1961 .
[99] H. Rask-Andersen,et al. Neural interaction in the human spiral ganglion: a TEM study. , 1997, Acta oto-laryngologica.
[100] H. Rask-Andersen,et al. Effects of glycerol on the endolymphatic sac. A time sequence study. , 1992, ORL; journal for oto-rhino-laryngology and its related specialties.
[101] D. Bagger-sjöbäck,et al. Pseudomonas aeruginosa exotoxin A and Haemophilus influenzae type b endotoxin. Effect on the inner ear and passage through the round window membrane of the chinchilla. , 1992, Acta oto-laryngologica. Supplementum.
[102] H. Rask-Andersen,et al. Osmotically induced macrophage activity in the endolymphatic sac. On the possible interaction between periaqueductal bone marrow cells and the endolymphatic sac. , 1992, ORL; journal for oto-rhino-laryngology and its related specialties.
[103] H. Rask-Andersen,et al. Microorganism transport in the human endolymphatic duct. , 1992, ORL; journal for oto-rhino-laryngology and its related specialties.
[104] H. Rask-Andersen,et al. The role of macrophages in the disposal of degeneration products within the organ of corti after acoustic overstimulation. , 1990, Acta oto-laryngologica.
[105] S. Juhn,et al. Round window membrane permeability to human serum albumin in antigen-induced otitis media. , 1988, American journal of otolaryngology.
[106] P. Tran Ba Huy,et al. Electrochemical heterogeneity of the cochlear endolymph: effect of acetazolamide. , 1984, The American journal of physiology.
[107] J. Stahle,et al. Immunodefence of the inner ear? Lymphocyte-macrophage interaction in the endolymphatic sac. , 1980, Acta oto-laryngologica.
[108] J. Stahle,et al. Lymphocyte-Macrophage Activity in the Endolymphatic Sac , 1979 .
[109] P. Coleman,et al. Experiments in hearing , 1961 .