Small fibre integrity and axonal pathology in the rat model of experimental autoimmune neuritis
暂无分享,去创建一个
T. Grüter | J. Motte | K. Pitarokoili | R. Klimas | M. Sgodzai | X. Pedreiturria | D. Fischer | A. Blusch | Ralf Gold | P. Renk | Jeannette Gebel | P. Gobrecht
[1] C. Sommer,et al. Tips in navigating the diagnostic complexities of chronic inflammatory demyelinating polyradiculoneuropathy , 2022, Journal of the Neurological Sciences.
[2] T. Skripuletz,et al. Versorgungssituation von CIDP-Patienten in neun deutschen Zentren des Neuritis Netzes , 2022, Der Nervenarzt.
[3] M. Tegenthoff,et al. Prevalence and determinants of pain in chronic inflammatory demyelinating polyneuropathy: Results from the German INHIBIT registry , 2022, European journal of neurology.
[4] R. Gold,et al. Nerve Ultrasound Distinguishes Non-Inflammatory Axonal Polyneuropathy From Inflammatory Polyneuropathy With Secondary Axonal Damage , 2022, Frontiers in Neurology.
[5] R. Gold,et al. Dose-dependent immunomodulatory effects of bortezomib in experimental autoimmune neuritis , 2021, Brain communications.
[6] M. Tegenthoff,et al. Corneal inflammatory cell infiltration predicts disease activity in chronic inflammatory demyelinating polyneuropathy , 2021, Scientific Reports.
[7] Fengna Chu,et al. Nuclear factor kappa B inhibitor suppresses experimental autoimmune neuritis in mice via declining macrophages polarization to M1 type , 2021, Clinical and experimental immunology.
[8] R. Gold,et al. Evaluation of the EFNS/PNS diagnostic criteria in a cohort of CIDP patients , 2021, Annals of clinical and translational neurology.
[9] G. Fink,et al. Nerve conductions studies in experimental models of autoimmune neuritis: A meta-analysis and guideline , 2020, Journal of Neuroimmunology.
[10] R. Gold,et al. Comprehensive approaches for diagnosis, monitoring and treatment of chronic inflammatory demyelinating polyneuropathy , 2020, Neurological Research and Practice.
[11] R. Gold,et al. Pathological spontaneous activity as a prognostic marker in chronic inflammatory demyelinating polyneuropathy , 2020, European journal of neurology.
[12] Tao Li,et al. M1 Macrophage Derived Exosomes Aggravate Experimental Autoimmune Neuritis via Modulating Th1 Response , 2020, Frontiers in Immunology.
[13] G. Fink,et al. Diagnosis of peripheral neuropathy , 2020, Neurological Research and Practice.
[14] J. Berciano. Axonal degeneration in Guillain–Barré syndrome: a reappraisal , 2020, Journal of Neurology.
[15] R. Gold,et al. Immunomodulatory and anti-oxidative effect of the direct TRPV1 receptor agonist capsaicin on Schwann cells , 2020, Journal of Neuroinflammation.
[16] B. Popescu,et al. Non-Myelinating Schwann Cells in Health and Disease , 2020, Schwann Cells [Working Title].
[17] T. Pan,et al. Two waves of pro-inflammatory factors are released during the influenza A virus (IAV)-driven pulmonary immunopathogenesis , 2020, PLoS pathogens.
[18] K. Wicks,et al. Cx3CR1 Expression Identifies Distinct Macrophage Populations That Contribute Differentially to Inflammation and Repair , 2019, ImmunoHorizons.
[19] J. Ilarregui,et al. Macrophage galactose-type lectin (MGL) is induced on M2 microglia and participates in the resolution phase of autoimmune neuroinflammation , 2019, Journal of Neuroinflammation.
[20] M. Tegenthoff,et al. Neuroimaging markers of clinical progression in chronic inflammatory demyelinating polyradiculoneuropathy , 2019, Therapeutic advances in neurological disorders.
[21] Y. Togashi,et al. Time Course of Axon and Myelin Degeneration in Peripheral Nerves in Experimental Autoimmune Neuritis Rats , 2019, Toxicologic pathology.
[22] R. Gold,et al. Intrathecal triamcinolone acetonide exerts anti-inflammatory effects on Lewis rat experimental autoimmune neuritis and direct anti-oxidative effects on Schwann cells , 2019, Journal of Neuroinflammation.
[23] G. L. Masson,et al. Efficacy and safety of IVIG in CIDP: Combined data of the PRIMA and PATH studies , 2019, Journal of the peripheral nervous system : JPNS.
[24] Hester F. Lingsma,et al. Incidence and Prevalence of Chronic Inflammatory Demyelinating Polyradiculoneuropathy: A Systematic Review and Meta-Analysis , 2019, Neuroepidemiology.
[25] T. Voets,et al. Differential effects of lipopolysaccharide on mouse sensory TRP channels. , 2018, Cell calcium.
[26] A. Di Nardo,et al. Skin neurogenic inflammation , 2018, Seminars in Immunopathology.
[27] R. Gold,et al. Capsaicin-enriched diet ameliorates autoimmune neuritis in rats , 2018, Journal of Neuroinflammation.
[28] Ryan M. Canning,et al. Mitochondrial damage and “plugging” of transport selectively in myelinated, small-diameter axons are major early events in peripheral neuroinflammation , 2018, Journal of Neuroinflammation.
[29] J. Silverberg,et al. Burden of skin pain in atopic dermatitis. , 2017, Annals of allergy, asthma & immunology : official publication of the American College of Allergy, Asthma, & Immunology.
[30] H. Beck,et al. Neuropathic pain in experimental autoimmune neuritis is associated with altered electrophysiological properties of nociceptive DRG neurons , 2017, Experimental Neurology.
[31] R. Gold,et al. Anti-inflammatory and immunomodulatory potential of human immunoglobulin applied intrathecally in Lewis rat experimental autoimmune neuritis , 2017, Journal of Neuroimmunology.
[32] Kazuto Kobayashi,et al. Neuronal cytoskeletal gene dysregulation and mechanical hypersensitivity in a rat model of Rett syndrome , 2017, Proceedings of the National Academy of Sciences.
[33] Y. Liu,et al. Sensory and autonomic function and structure in footpads of a diabetic mouse model , 2017, Scientific Reports.
[34] J. Hao,et al. Dimethyl fumarate attenuates experimental autoimmune neuritis through the nuclear factor erythroid-derived 2-related factor 2/hemoxygenase-1 pathway by altering the balance of M1/M2 macrophages , 2016, Journal of Neuroinflammation.
[35] Hong-gang Yu,et al. Bowman-Birk inhibitor concentrate suppresses experimental autoimmune neuritis via shifting macrophages from M1 to M2 subtype. , 2016, Immunology letters.
[36] R. Gold,et al. Dimethyl Fumarate Ameliorates Lewis Rat Experimental Autoimmune Neuritis and Mediates Axonal Protection , 2015, PloS one.
[37] R. Gold,et al. Laquinimod exerts strong clinical and immunomodulatory effects in Lewis rat experimental autoimmune neuritis , 2014, Journal of Neuroimmunology.
[38] Jie Zhu,et al. Th1/Th2/Th17/Treg cytokines in Guillain-Barré syndrome and experimental autoimmune neuritis. , 2013, Cytokine & growth factor reviews.
[39] A. Sica,et al. Macrophage plasticity and polarization in tissue repair and remodelling , 2013, The Journal of pathology.
[40] B. Kieseier,et al. Erythropoietin Ameliorates Rat Experimental Autoimmune Neuritis by Inducing Transforming Growth Factor-Beta in Macrophages , 2011, PloS one.
[41] D. Wright,et al. Vitamin D Deficiency Promotes Skeletal Muscle Hypersensitivity and Sensory Hyperinnervation , 2011, The Journal of Neuroscience.
[42] Matthew Wise,et al. Population Incidence of Guillain-Barré Syndrome: A Systematic Review and Meta-Analysis , 2011, Neuroepidemiology.
[43] A. Szallasi,et al. TRP channels and pain. , 2009, Current pharmaceutical design.
[44] Silvano Sozzani,et al. The chemokine system in diverse forms of macrophage activation and polarization. , 2004, Trends in immunology.
[45] M. Chiang,et al. Cutaneous innervation in Guillain-Barré syndrome: pathology and clinical correlations. , 2003, Brain : a journal of neurology.
[46] G. Sobue,et al. Parallel expression of neurotrophic factors and their receptors in chronic inflammatory demyelinating polyneuropathy , 2002, Muscle & nerve.
[47] M. Pfaffl,et al. A new mathematical model for relative quantification in real-time RT-PCR. , 2001, Nucleic acids research.
[48] H. Hartung,et al. Macrophage differentiation antigens in acute and chronic autoimmune polyneuropathies. , 1998, Brain : a journal of neurology.
[49] F. Rice,et al. Overexpression of nerve growth factor in skin causes preferential increases among innervation to specific sensory targets , 1997, The Journal of comparative neurology.
[50] D. Julius,et al. The capsaicin receptor: a heat-activated ion channel in the pain pathway , 1997, Nature.
[51] R. Mirsky,et al. GAP-43 is expressed by nonmyelin-forming Schwann cells of the peripheral nervous system , 1992, The Journal of cell biology.
[52] R. Hughes,et al. Identification of the neuritogen for experimental allergic neuritis , 1979, Nature.