OnabotulinumtoxinA effects on trigeminal nociceptors
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M. Brin | W. Liedtke | R. Broide | Amy D. Brideau-Andersen | Carlene D. Moore | Mariana I. Nelson | Shinbe Choi | Gene Moon | Ashley A Moore | Christopher Wickware | Emma Xiong | Lily Orta | Amy Brideau-andersen
[1] M. Ferrari,et al. Migraine , 2022, Nature Reviews Disease Primers.
[2] M. Togha,et al. Assessment of peripheral biomarkers potentially involved in episodic and chronic migraine: a case-control study with a focus on NGF, BDNF, VEGF, and PGE2 , 2022, The Journal of Headache and Pain.
[3] J. Dolly,et al. NGF Enhances CGRP Release Evoked by Capsaicin from Rat Trigeminal Neurons: Differential Inhibition by SNAP-25-Cleaving Proteases , 2022, International journal of molecular sciences.
[4] L. Vécsei,et al. Neurogenic Inflammation: The Participant in Migraine and Recent Advancements in Translational Research , 2021, Biomedicines.
[5] P. Geppetti,et al. The role of TRP ion channels in migraine and headache , 2021, Neuroscience Letters.
[6] A. Babes,et al. Mini-review: The nociceptive sensory functions of the polymodal receptor Transient Receptor Potential Ankyrin Type 1 (TRPA1) , 2021, Neuroscience Letters.
[7] A. Fernández-Carvajal,et al. A capsaicinoid-based soft drug, AG1529, for attenuating TRPV1-mediated histaminergic and inflammatory sensory neuron excitability , 2021, Scientific reports.
[8] M. Brin,et al. Mechanism of Action of OnabotulinumtoxinA in Chronic Migraine: A Narrative Review , 2020, Headache.
[9] B. Nilius,et al. Mammalian transient receptor potential TRPA1 channels: from structure to disease. , 2020, Physiological reviews.
[10] A. Seltzer,et al. Cutaneous inflammation differentially regulates the expression and function of Angiotensin‐II types 1 and 2 receptors in rat primary sensory neurons , 2020, Journal of neurochemistry.
[11] K. Messlinger,et al. TRP Channels in the Focus of Trigeminal Nociceptor Sensitization Contributing to Primary Headaches , 2020, International journal of molecular sciences.
[12] P. Stenmark,et al. The Structure and Classification of Botulinum Toxins. , 2019, Handbook of experimental pharmacology.
[13] W. Xu,et al. SNAP-25 Contributes to Neuropathic Pain by Regulation of VGLuT2 Expression in Rats , 2019, Neuroscience.
[14] D. Jameson,et al. Characterization of clostridium botulinum neurotoxin serotype A (BoNT/A) and fibroblast growth factor receptor interactions using a novel receptor dimerization assay , 2019, bioRxiv.
[15] L. Becerra,et al. Modulation of Brain Networks by Sumatriptan-Naproxen in the Inflammatory-Soup Migraine Model. , 2019, Pain.
[16] Kirk W. Johnson,et al. CGRP and the Trigeminal System in Migraine , 2019, Headache.
[17] F. Montorsi,et al. Botulinum Neurotoxin Light Chains Expressed by Defective Herpes Simplex Virus Type-1 Vectors Cleave SNARE Proteins and Inhibit CGRP Release in Rat Sensory Neurons , 2019, Toxins.
[18] M. Naumann,et al. Central Effects of Botulinum Neurotoxin—Evidence from Human Studies , 2019, Toxins.
[19] A. Pertovaara,et al. TRPA1 Antagonists for Pain Relief , 2018, Pharmaceuticals.
[20] A. Ferrer-Montiel,et al. TRP Channels as Potential Targets for Sex-Related Differences in Migraine Pain , 2018, Front. Mol. Biosci..
[21] J. Dolly,et al. A SNAP-25 cleaving chimera of botulinum neurotoxin /A and /E prevents TNFα−induced elevation of the activities of native TRP channels on early postnatal rat dorsal root ganglion neurons , 2018, Neuropharmacology.
[22] A. Blumenfeld,et al. Long-term study of the efficacy and safety of OnabotulinumtoxinA for the prevention of chronic migraine: COMPEL study , 2018, The Journal of Headache and Pain.
[23] Chenglei Fan,et al. Botulinum toxin type A reduces TRPV1 expression in the dorsal root ganglion in rats with adjuvant‐arthritis pain , 2017, Toxicon : official journal of the International Society on Toxinology.
[24] Mitchell F. Brin,et al. Botulinum neurotoxin type A-cleaved SNAP25 is confined to primary motor neurons and localized on the plasma membrane following intramuscular toxin injection , 2017, Neuroscience.
[25] C. Montecucco,et al. Botulinum Neurotoxins: Biology, Pharmacology, and Toxicology , 2017, Pharmacological Reviews.
[26] L. Becerra,et al. Brain network alterations in the inflammatory soup animal model of migraine , 2017, Brain Research.
[27] W. Ma,et al. Stimulating TRPV1 externalization and synthesis in dorsal root ganglion neurons contributes to PGE2 potentiation of TRPV1 activity and nociceptor sensitization , 2017, European journal of pain.
[28] C. Chen,et al. Central antinociceptive activity of peripherally applied botulinum toxin type A in lab rat model of trigeminal neuralgia , 2016, SpringerPlus.
[29] M. Brin,et al. Extracranial injections of botulinum neurotoxin type A inhibit intracranial meningeal nociceptors’ responses to stimulation of TRPV1 and TRPA1 channels: Are we getting closer to solving this puzzle? , 2016, Cephalalgia : an international journal of headache.
[30] M. Steinhoff,et al. TNFα induces co-trafficking of TRPV1/TRPA1 in VAMP1-containing vesicles to the plasmalemma via Munc18–1/syntaxin1/SNAP-25 mediated fusion , 2016, Scientific Reports.
[31] M. Gold,et al. Inflammatory mediator-induced modulation of GABAA currents in human sensory neurons , 2015, Neuroscience.
[32] K. Aoki,et al. A Highly Specific Monoclonal Antibody for Botulinum Neurotoxin Type A-Cleaved SNAP25 , 2015, Toxins.
[33] L. Arendt-Nielsen,et al. Botulinum neurotoxin type A modulates vesicular release of glutamate from satellite glial cells , 2015, Journal of cellular and molecular medicine.
[34] A. Ferrer-Montiel,et al. Trafficking of ThermoTRP Channels , 2014, Membranes.
[35] S. Silberstein,et al. COX inhibitors for the treatment of migraine , 2014, Expert opinion on pharmacotherapy.
[36] George Sachs,et al. Recruitment of septin cytoskeletal proteins by botulinum toxin A protease determines its remarkable stability , 2014, Journal of Cell Science.
[37] A. Chesler,et al. The functional and anatomical dissection of somatosensory subpopulations using mouse genetics , 2014, Front. Neuroanat..
[38] M. Brin,et al. Selective inhibition of meningeal nociceptors by botulinum neurotoxin type A: Therapeutic implications for migraine and other pains , 2014, Cephalalgia : an international journal of headache.
[39] R. Dubner,et al. Central Terminal Sensitization of TRPV1 by Descending Serotonergic Facilitation Modulates Chronic Pain , 2014, Neuron.
[40] J. Olesen,et al. Prostaglandins in migraine: update. , 2013, Current opinion in neurology.
[41] Hitoshi Sato,et al. Reduction of TRPV1 expression in the trigeminal system by botulinum neurotoxin type-A , 2012, Neurobiology of Disease.
[42] Kevin W Eliceiri,et al. NIH Image to ImageJ: 25 years of image analysis , 2012, Nature Methods.
[43] J. Olesen,et al. Prostaglandin E2 induces immediate migraine-like attack in migraine patients without aura , 2012, The Journal of Headache and Pain.
[44] J. Greaves,et al. Differential palmitoylation regulates intracellular patterning of SNAP25 , 2011, Journal of Cell Science.
[45] L. Arendt-Nielsen,et al. Botulinum neurotoxin type A (BoNTA) decreases the mechanical sensitivity of nociceptors and inhibits neurogenic vasodilation in a craniofacial muscle targeted for migraine prophylaxis , 2010, Pain.
[46] H. Diener,et al. OnabotulinumtoxinA for treatment of chronic migraine: Results from the double-blind, randomized, placebo-controlled phase of the PREEMPT 2 trial , 2010, Cephalalgia : an international journal of headache.
[47] H. Diener,et al. OnabotulinumtoxinA for treatment of chronic migraine: Results from the double-blind, randomized, placebo-controlled phase of the PREEMPT 1 trial , 2010, Cephalalgia : an international journal of headache.
[48] Manuela Schmidt,et al. Nociceptive Signals Induce Trafficking of TRPA1 to the Plasma Membrane , 2009, Neuron.
[49] M. Brin. Basic and clinical aspects of BOTOX. , 2009, Toxicon : official journal of the International Society on Toxinology.
[50] J. Dolly,et al. Synaptobrevin I mediates exocytosis of CGRP from sensory neurons and inhibition by botulinum toxins reflects their anti-nociceptive potential , 2007, Journal of Cell Science.
[51] M. Oshinsky,et al. Episodic Dural Stimulation in Awake Rats: A Model for Recurrent Headache , 2007, Headache.
[52] P. Calabresi,et al. Proinflammatory Cytokines, Adhesion Molecules, and Lymphocyte Integrin Expression in the Internal Jugular Blood of Migraine Patients Without Aura Assessed Ictally , 2006, Headache.
[53] Xiaofeng Xia,et al. SNAP25, but not syntaxin 1A, recycles via an ARF6-regulated pathway in neuroendocrine cells. , 2005, Molecular biology of the cell.
[54] D. Cockayne,et al. Decreased sensory receptors P2X3 and TRPV1 in suburothelial nerve fibers following intradetrusor injections of botulinum toxin for human detrusor overactivity. , 2005, The Journal of urology.
[55] K. Kwong,et al. Prostaglandin E2 potentiates a TTX‐resistant sodium current in rat capsaicin‐sensitive vagal pulmonary sensory neurones , 2005, The Journal of physiology.
[56] A. Ferrer-Montiel,et al. Regulated Exocytosis Contributes to Protein Kinase C Potentiation of Vanilloid Receptor Activity* , 2004, Journal of Biological Chemistry.
[57] R. Cady,et al. Regulation of Calcitonin Gene‐Related Peptide Secretion From Trigeminal Nerve Cells by Botulinum Toxin Type A: Implications for Migraine Therapy , 2004, Headache.
[58] K. Aoki,et al. Subcutaneous administration of botulinum toxin A reduces formalin-induced pain , 2004, Pain.
[59] I. Gibbins,et al. Botulinum neurotoxin A attenuates release of norepinephrine but not NPY from vasoconstrictor neurons. , 2002, American journal of physiology. Heart and circulatory physiology.
[60] M. A. Pozo,et al. Responses of nerve fibres of the rat saphenous nerve neuroma to mechanical and chemical stimulation: an in vitro study , 2000, The Journal of physiology.
[61] K. Foster,et al. Capsaicin-stimulated release of substance P from cultured dorsal root ganglion neurons: involvement of two distinct mechanisms. , 2000, Biochemical pharmacology.
[62] K. Foster,et al. Sensitivity of embryonic rat dorsal root ganglia neurons to Clostridium botulinum neurotoxins. , 2000, Toxicon : official journal of the International Society on Toxinology.
[63] R. Burstein,et al. Chemical stimulation of the intracranial dura induces enhanced responses to facial stimulation in brain stem trigeminal neurons. , 1998, Journal of neurophysiology.
[64] R. Burstein,et al. Sensitization of meningeal sensory neurons and the origin of headaches , 1996, Nature.
[65] P. Goadsby,et al. The trigeminovascular system and migraine: Studies characterizing cerebrovascular and neuropeptide changes seen in humans and cats , 1993, Annals of neurology.
[66] D. Mohapatra,et al. Sensory TRP channels: the key transducers of nociception and pain. , 2015, Progress in molecular biology and translational science.
[67] S. Benemei,et al. The TRPA1 channel in inflammatory and neuropathic pain and migraine. , 2014, Reviews of physiology, biochemistry and pharmacology.
[68] S. Ovsepian,et al. Extravesicular intraneuronal migration of internalized botulinum neurotoxins without detectable inhibition of distal neurotransmission. , 2012, The Biochemical journal.
[69] A. Ferrer-Montiel,et al. TRP Channel Trafficking , 2007 .
[70] S. Heller,et al. The TRPV Channel in C. elegans Serotonergic Neurons -- TRP Ion Channel Function in Sensory Transduction and Cellular Signaling Cascades , 2007 .