Presynaptic Interactions between Trigeminal and Cervical Nociceptive Afferents Supplying Upper Cervical Lamina I Neurons
暂无分享,去创建一个
[1] Z. Mészár,et al. Processing of trigeminocervical nociceptive afferent input by neuronal circuity in the upper cervical lamina I. , 2021, Pain.
[2] C. D. Luca,et al. The fifth cranial nerve in headaches , 2020, The Journal of Headache and Pain.
[3] A. Nuñez,et al. Modulation of mechanosensory vibrissal responses in the trigeminocervical complex by stimulation of the greater occipital nerve in a rat model of trigeminal neuropathic pain , 2020, The Journal of Headache and Pain.
[4] P. Szucs,et al. Primary afferent-driven presynaptic inhibition of C-fiber inputs to spinal lamina I neurons , 2020, Progress in Neurobiology.
[5] N. Voitenko,et al. Distinct mechanisms of signal processing by lamina I spino-parabrachial neurons , 2019, Scientific Reports.
[6] R. Callister,et al. Reviewing the case for compromised spinal inhibition in neuropathic pain , 2019, Journal of Neural Transmission.
[7] Emily D. Kuehn,et al. Defining a Spinal Microcircuit that Gates Myelinated Afferent Input: Implications for Tactile Allodynia , 2019, Cell reports.
[8] D. Ginty,et al. Distinct Modes of Presynaptic Inhibition of Cutaneous Afferents and Their Functions in Behavior , 2019, Neuron.
[9] C. Avendaño,et al. The greater occipital nerve and its spinal and brainstem afferent projections: A stereological and tract‐tracing study in the rat , 2018, The Journal of comparative neurology.
[10] Philip R Holland,et al. Pathophysiology of Migraine: A Disorder of Sensory Processing. , 2017, Physiological reviews.
[11] R. Giniatullin,et al. Serotonergic mechanisms of trigeminal meningeal nociception: Implications for migraine pain , 2017, Neuropharmacology.
[12] P. Szucs,et al. Diverse firing properties and A&bgr;-, A&dgr;-, and C-afferent inputs of small local circuit neurons in spinal lamina I , 2016, Pain.
[13] P. Szucs,et al. Monosynaptic convergence of somatic and visceral C-fiber afferents on projection and local circuit neurons in lamina I: a substrate for referred pain , 2015, Pain.
[14] L. Abbott,et al. Presynaptic inhibition of spinal sensory feedback ensures smooth movement , 2014, Nature.
[15] W. Regehr,et al. Presynaptic Calcium Influx Controls Neurotransmitter Release in Part by Regulating the Effective Size of the Readily Releasable Pool , 2013, The Journal of Neuroscience.
[16] A. Todd,et al. Axon Diversity of Lamina I Local-Circuit Neurons in the Lumbar Spinal Cord , 2013, The Journal of comparative neurology.
[17] R. Tubbs,et al. The innervation of the cranial dura mater: neurosurgical case correlates and a review of the literature. , 2012, World neurosurgery.
[18] Masahiko Watanabe,et al. Morphological, neurochemical and electrophysiological features of parvalbumin‐expressing cells: a likely source of axo‐axonic inputs in the mouse spinal dorsal horn , 2012, The Journal of physiology.
[19] R. Tubbs,et al. The innervation of the scalp: A comprehensive review including anatomy, pathology, and neurosurgical correlates , 2011, Surgical neurology international.
[20] A. Todd,et al. Neuronal circuitry for pain processing in the dorsal horn , 2010, Nature Reviews Neuroscience.
[21] P. Szucs,et al. Monosynaptic excitatory inputs to spinal lamina I anterolateral‐tract‐projecting neurons from neighbouring lamina I neurons , 2010, The Journal of physiology.
[22] D. Lima,et al. Local axon collaterals of lamina I projection neurons in the spinal cord of young rats , 2010, The Journal of comparative neurology.
[23] D. Lima,et al. Multisegmental Aδ- and C-Fiber Input to Neurons in Lamina I and the Lateral Spinal Nucleus , 2010, The Journal of Neuroscience.
[24] H. Diener,et al. Prevalence of Facial Pain in Migraine: A Population-Based Study , 2010, Cephalalgia : an international journal of headache.
[25] N. Bogduk,et al. Cervicogenic headache: an assessment of the evidence on clinical diagnosis, invasive tests, and treatment , 2009, The Lancet Neurology.
[26] P. Szucs,et al. Advanced technique of infrared LED imaging of unstained cells and intracellular structures in isolated spinal cord, brainstem, ganglia and cerebellum , 2009, Journal of Neuroscience Methods.
[27] V. Derkach,et al. Monosynaptic convergence of C‐ and Aδ‐afferent fibres from different segmental dorsal roots on to single substantia gelatinosa neurones in the rat spinal cord , 2008, The Journal of physiology.
[28] Vitor Pinto,et al. High-resolution single-cell imaging for functional studies in the whole brain and spinal cord and thick tissue blocks using light-emitting diode illumination , 2007, Journal of Neuroscience Methods.
[29] J. Riddell,et al. P boutons in lamina IX of the rodent spinal cord express high levels of glutamic acid decarboxylase-65 and originate from cells in deep medial dorsal horn. , 2005, Proceedings of the National Academy of Sciences of the United States of America.
[30] T. Bartsch. Migraine and the neck: New insights from basic data , 2005, Current pain and headache reports.
[31] A. Todd,et al. A quantitative and morphological study of projection neurons in lamina I of the rat lumbar spinal cord , 2003, The European journal of neuroscience.
[32] T. Bartsch,et al. The trigeminocervical complex and migraine: Current concepts and synthesis , 2003, Current pain and headache reports.
[33] T. Bartsch,et al. Increased responses in trigeminocervical nociceptive neurons to cervical input after stimulation of the dura mater. , 2003, Brain : a journal of neurology.
[34] T. Bartsch,et al. Stimulation of the greater occipital nerve induces increased central excitability of dural afferent input. , 2002, Brain : a journal of neurology.
[35] N. Bogduk. Cervicogenic headache: Anatomic basis and pathophysiologic mechanisms , 2001, Current pain and headache reports.
[36] R. Russo,et al. Dorsal root potential produced by a TTX‐insensitive micro‐circuitry in the turtle spinal cord , 2000, The Journal of physiology.
[37] R. Schmidt,et al. Presynaptic inhibition in the vertebrate spinal cord revisited , 1999, Experimental Brain Research.
[38] W. Willis. Dorsal root potentials and dorsal root reflexes: a double-edged sword , 1999, Experimental Brain Research.
[39] A. Lev-Tov,et al. GABA-receptor-independent dorsal root afferents depolarization in the neonatal rat spinal cord. , 1998, Journal of neurophysiology.
[40] B. Graham,et al. A simulation of action potentials in synaptic boutons during presynaptic inhibition. , 1994, Journal of neurophysiology.
[41] C. Marfurt,et al. Trigeminal primary afferent projections to “non‐trigeminal” areas of the rat central nervous system , 1991, The Journal of comparative neurology.
[42] I Segev,et al. Computer study of presynaptic inhibition controlling the spread of action potentials into axonal terminals. , 1990, Journal of neurophysiology.
[43] J. Arvidsson,et al. Central distribution of trigeminal and upper cervical primary afferents in the rat studied by anterograde transport of horseradish peroxidase conjugated to wheat germ agglutinin , 1988, The Journal of comparative neurology.
[44] F. Cerveró,et al. Somatic and visceral inputs to the thoracic spinal cord of the cat: marginal zone (lamina I) of the dorsal horn. , 1987, The Journal of physiology.
[45] A. Iggo,et al. The substantia gelatinosa of the spinal cord: a critical review. , 1980, Brain : a journal of neurology.
[46] Y. Nakamura,et al. Primary afferent depolarization in the trigeminal spinal nucleus of cats , 1977, Experimental Brain Research.
[47] J. Avery,et al. Primary afferent depolarization: direct evidence in the trigeminal system. , 1974, Brain research.
[48] P. Wall,et al. Pain mechanisms: a new theory. , 1965, Science.
[49] F. W. Kerr. Structural relation of the trigeminal spinal tract to upper cervical roots and the solitary nucleus in the cat. , 1961, Experimental neurology.
[50] K. Koketsu,et al. Intracellular potential changes of primary afferent nerve fibers in spinal cords of cats. , 1956, Journal of neurophysiology.
[51] D. P. Lloyd,et al. ON THE ORIGINS OF DORSAL ROOT POTENTIALS , 1949, The Journal of general physiology.
[52] J. Escolar. The afferent connections of the 1ST, 2ND and 3RD cervical nerves in the cat. An analysis by Marchi and Rasdolsky methods , 1948, The Journal of comparative neurology.
[53] D. H. Barron,et al. The interpretation of potential changes in the spinal cord , 1938, The Journal of physiology.
[54] Jihan Grant,et al. Pathophysiology of Migraine Disorder , 2021, Migraine.
[55] F. Baldissera,et al. Depolarization of trigeminal afferents induced by stimulation of brain-stem and peripheral nerves , 2004, Experimental Brain Research.
[56] William D. Willis,et al. Sensory Mechanisms of the Spinal Cord , 1979, Springer US.
[57] H. Kawano,et al. 224 Innervation of PVN-projecting neurons in the VLM by neurons from the NTS: A combined retrograde and anterograde tract-tracing study in the rat , 1993 .
[58] A. G. Brown,et al. The dorsal horn of the spinal cord. , 1982, Quarterly journal of experimental physiology.
[59] J. Eccles,et al. PRESYNAPTIC INHIBITION IN THE SPINAL CORD. , 1964, Progress in brain research.