Central pattern generators in the brainstem and spinal cord: an overview of basic principles, similarities and differences

Abstract Central pattern generators (CPGs) are generally defined as networks of neurons capable of enabling the production of central commands, specifically controlling stereotyped, rhythmic motor behaviors. Several CPGs localized in brainstem and spinal cord areas have been shown to underlie the expression of complex behaviors such as deglutition, mastication, respiration, defecation, micturition, ejaculation, and locomotion. Their pivotal roles have clearly been demonstrated although their organization and cellular properties remain incompletely characterized. In recent years, insightful findings about CPGs have been made mainly because (1) several complementary animal models were developed; (2) these models enabled a wide variety of techniques to be used and, hence, a plethora of characteristics to be discovered; and (3) organizations, functions, and cell properties across all models and species studied thus far were generally found to be well-preserved phylogenetically. This article aims at providing an overview for non-experts of the most important findings made on CPGs in in vivo animal models, in vitro preparations from invertebrate and vertebrate species as well as in primates. Data about CPG functions, adaptation, organization, and cellular properties will be summarized with a special attention paid to the network for locomotion given its advanced level of characterization compared with some of the other CPGs. Similarities and differences between these networks will also be highlighted.

[1]  T. Hökfelt,et al.  An immunohistochemical investigation of the opioid cell column in lamina X of the male rat lumbosacral spinal cord , 1999, Neuroscience Letters.

[2]  D. McCrea,et al.  Group I extensor afferents evoke disynaptic EPSPs in cat hindlimb extensor motorneurones during fictive locomotion. , 1996, The Journal of physiology.

[3]  D. Jonas,et al.  The use of Midodrin in the treatment of ejaculation disorders following retroperitoneal lymphadenectomy. , 1979, European urology.

[4]  C. Hubscher,et al.  Responses of medullary reticular formation neurons to input from the male genitalia. , 1996, Journal of neurophysiology.

[5]  Michael Camilleri,et al.  Comparison of efficacy of pharmacological treatments for chronic idiopathic constipation: a systematic review and network meta-analysis , 2016, Gut.

[6]  G. Sanger,et al.  Evidence that stimulation of ghrelin receptors in the spinal cord initiates propulsive activity in the colon of the rat , 2006, The Journal of physiology.

[7]  P. Guertin Semiquantitative assessment of hindlimb movement recovery without intervention in adult paraplegic mice , 2005, Spinal Cord.

[8]  F. Peña,et al.  Effects of riluzole and flufenamic acid on eupnea and gasping of neonatal mice in vivo , 2007, Neuroscience Letters.

[9]  J. Nielsen,et al.  Pharmacologically evoked fictive motor patterns in the acutely spinalized marmoset monkey (Callithrix jacchus) , 1998, Experimental Brain Research.

[10]  P. Whelan,et al.  Modulation of locomotor activity by multiple 5-HT and dopaminergic receptor subtypes in the neonatal mouse spinal cord. , 2004, Journal of neurophysiology.

[11]  C. Sherrington Flexion‐reflex of the limb, crossed extension‐reflex, and reflex stepping and standing , 1910, The Journal of physiology.

[12]  A. Lundberg,et al.  Integrative pattern of Ia synaptic actions on motoneurones of hip and knee muscles , 1958, The Journal of physiology.

[13]  H. Furue,et al.  Stimulation of dopamine D2‐like receptors in the lumbosacral defaecation centre causes propulsive colorectal contractions in rats , 2016, The Journal of physiology.

[14]  Daniel C. Lu,et al.  Initiation of Bladder Voiding with Epidural Stimulation in Paralyzed, Step Trained Rats , 2014, PloS one.

[15]  J. Bosma Deglutition: Pharyngeal Stage , 1957 .

[16]  P. Guertin,et al.  Contribution of spinal 5‐HT1A and 5‐HT7 receptors to locomotor‐like movement induced by 8‐OH‐DPAT in spinal cord‐transected mice , 2006, The European journal of neuroscience.

[17]  B J Schmidt,et al.  NMDA Receptor Activation Triggers Voltage Oscillations, Plateau Potentials and Burstinq in Neonatal Rat Lumbar Motoneurons ln Vitro , 1997, The European journal of neuroscience.

[18]  J. Acevedo,et al.  Caffeine stimulates locomotor activity in the mammalian spinal cord via adenosine A1 receptor-dopamine D1 receptor interaction and PKA-dependent mechanisms , 2016, Neuropharmacology.

[19]  D A McCrea,et al.  Effects of stimulation of hindlimb flexor group II afferents during fictive locomotion in the cat. , 1995, The Journal of physiology.

[20]  K. Andersson,et al.  The effect of the 5-HT2A/2C receptor agonist DOI on micturition in rats with chronic spinal cord injury. , 2013, The Journal of urology.

[21]  V. Edgerton,et al.  Afferent input modulates neurotrophins and synaptic plasticity in the spinal cord. , 2004, Journal of neurophysiology.

[22]  S. Rossignol,et al.  Phase dependent reflex reversal during walking in chronic spinal cats , 1975, Brain Research.

[23]  P. Matthews The human stretch reflex and the motor cortex , 1991, Trends in Neurosciences.

[24]  A. Miller,et al.  Characteristics of the swallowing reflex induced by peripheral nerve and brain stem stimulation. , 1972, Experimental neurology.

[25]  L. Vinay,et al.  The Persistent Sodium Current Generates Pacemaker Activities in the Central Pattern Generator for Locomotion and Regulates the Locomotor Rhythm , 2008, The Journal of Neuroscience.

[26]  J. Hounsgaard,et al.  Intrinsic membrane properties causing a bistable behaviour of α-motoneurones , 2004, Experimental Brain Research.

[27]  P. Guertin Preclinical evidence supporting the clinical development of central pattern generator-modulating therapies for chronic spinal cord-injured patients , 2014, Front. Hum. Neurosci..

[28]  S. Grillner,et al.  N-methyl-D-aspartate receptor-induced, inherent oscillatory activity in neurons active during fictive locomotion in the lamprey , 1987, The Journal of neuroscience : the official journal of the Society for Neuroscience.

[29]  S. Hochman THE SPINAL CORD , 2007 .

[30]  E. Bizzi,et al.  Article history: , 2005 .

[31]  P. Guertin,et al.  Oral administration of a tri‐therapy for central pattern generator activation in paraplegic mice: Proof‐of‐concept of efficacy , 2010, Biotechnology journal.

[32]  C. Elias,et al.  Alternative pathways for catecholamine action in oral motor control , 2005, Neuroscience Letters.

[33]  Mats Trulsson,et al.  Force encoding by human periodontal mechanoreceptors during mastication. , 2007, Archives of oral biology.

[34]  W. B. Lindquist,et al.  Continuous shifts in the active set of spinal interneurons during changes in locomotor speed , 2008, Nature Neuroscience.

[35]  M. Perreault,et al.  Segmental Organization of Vestibulospinal Inputs to Spinal Interneurons Mediating Crossed Activation of Thoracolumbar Motoneurons in the Neonatal Mouse , 2015, The Journal of Neuroscience.

[36]  Donald M. Wilson The Central Nervous Control of Flight in a Locust , 1961 .

[37]  Gheylen Daghfous,et al.  Sensory Activation of Command Cells for Locomotion and Modulatory Mechanisms: Lessons from Lampreys , 2016, Front. Neural Circuits.

[38]  H. Furue,et al.  Medullary raphe nuclei activate the lumbosacral defecation center through the descending serotonergic pathway to regulate colorectal motility in rats. , 2018, American journal of physiology. Gastrointestinal and liver physiology.

[39]  K. Kawahara,et al.  Coupling between respiratory and stepping rhythms during locomotion in decerebrate cats. , 1989, Journal of applied physiology.

[40]  B S Nashold,et al.  Electrical stimulation of the conus medullaris to control the bladder in the paraplegic patient. A 10-year review. , 1981, Applied neurophysiology.

[41]  P. Matthews,et al.  Mammalian muscle receptors and their central actions , 1974 .

[42]  O Kiehn,et al.  Distribution of Networks Generating and Coordinating Locomotor Activity in the Neonatal Rat Spinal Cord In Vitro: A Lesion Study , 1996, The Journal of Neuroscience.

[43]  K Matsuyama,et al.  Stimulation of a restricted region in the midline cerebellar white matter evokes coordinated quadrupedal locomotion in the decerebrate cat. , 1999, Journal of neurophysiology.

[44]  L. Jordan,et al.  Spinal cholinergic neurons activated during locomotion: localization and electrophysiological characterization. , 2000, Journal of neurophysiology.

[45]  M. Beato,et al.  Contribution of NMDA and non–NMDA glutamate receptors to locomotor pattern generation in the neonatal rat spinal cord , 1997, Proceedings of the Royal Society of London. Series B: Biological Sciences.

[46]  G. D. Thomas,et al.  Neural control of the circulation. , 2011, Advances in physiology education.

[47]  N. Bowery,et al.  Activation by p-chloroamphetamine of the spinal ejaculatory pattern generator in anaesthetized male rats , 2006, Neuroscience.

[48]  O. Kiehn,et al.  Spatiotemporal characteristics of 5-HT and dopamine-induced rhythmic hindlimb activity in the in vitro neonatal rat. , 1996, Journal of neurophysiology.

[49]  R. Pehrson,et al.  CNS involvement in overactive bladder: pathophysiology and opportunities for pharmacological intervention. , 2003, Drugs.

[50]  A. Lundberg,et al.  The effect of DOPA on the spinal cord. 5. Reciprocal organization of pathways transmitting excitatory action to alpha motoneurones of flexors and extensors. , 1967, Acta physiologica Scandinavica.

[51]  John Simmers,et al.  Propriospinal Circuitry Underlying Interlimb Coordination in Mammalian Quadrupedal Locomotion , 2005, The Journal of Neuroscience.

[52]  Francesco Lacquaniti,et al.  Control of Leg Movements Driven by EMG Activity of Shoulder Muscles , 2014, Front. Hum. Neurosci..

[53]  V. Braitenberg,et al.  Shapes and sizes of different mammalian cerebella. A study in quantitative comparative neuroanatomy. , 1993, Journal fur Hirnforschung.

[54]  R. Chervin,et al.  Alternating leg muscle activation during sleep and arousals: A new sleep‐related motor phenomenon? , 2003, Movement disorders : official journal of the Movement Disorder Society.

[55]  K. Pearson,et al.  Reversal of the influence of group Ib afferents from plantaris on activity in medial gastrocnemius muscle during locomotor activity. , 1993, Journal of neurophysiology.

[56]  J. P. Lund,et al.  Effect of the stimulation of sensory inputs on the firing of neurons of the trigeminal main sensory nucleus in the rat. , 2010, Journal of neurophysiology.

[57]  P. Guertin The mammalian central pattern generator for locomotion , 2009, Brain Research Reviews.

[58]  H Hultborn,et al.  Input‐output relations in the pathway of recurrent inhibition to motoneurones in the cat. , 1979, The Journal of physiology.

[59]  Fictive oesophageal peristalsis evoked by activation of muscarinic acetylcholine receptors in rat nucleus tractus solitarii , 1997, Neurogastroenterology and motility : the official journal of the European Gastrointestinal Motility Society.

[60]  M. Greenberg,et al.  Trans-synaptic regulation of gene expression , 1992, Current Opinion in Neurobiology.

[61]  R. Pozos,et al.  Shivering and pathological and physiological clonic oscillations of the human ankle. , 1991, Journal of applied physiology.

[62]  O. Kiehn,et al.  Activation of groups of excitatory neurons in the mammalian spinal cord or hindbrain evokes locomotion , 2010, Nature Neuroscience.

[63]  R. Dubuc,et al.  The interactions between locomotion and respiration. , 2010, Progress in brain research.

[64]  J. Hounsgaard,et al.  NMDA-Induced intrinsic voltage oscillations depend on L-type calcium channels in spinal motoneurons of adult turtles. , 1998, Journal of neurophysiology.

[65]  L. Rui,et al.  Recent advances in understanding leptin signaling and leptin resistance. , 2009, American journal of physiology. Endocrinology and metabolism.

[66]  J R Wolpaw,et al.  Operant conditioning of H-reflex changes synaptic terminals on primate motoneurons. , 1996, Proceedings of the National Academy of Sciences of the United States of America.

[67]  I. Nadelhaft,et al.  Central nervous system neurons infected by pseudorabies virus injected into the rat urinary bladder following unilateral transection of the pelvic nerve , 1995, The Journal of comparative neurology.

[68]  W. Lange,et al.  Cell number and cell density in the cerebellar cortex of man and some other mammals , 2004, Cell and Tissue Research.

[69]  L. Coolen,et al.  Identification of a Potential Ejaculation Generator in the Spinal Cord , 2002, Science.

[70]  N. Petersen,et al.  Flexor reflex afferents reset the step cycle during fictive locomotion in the cat , 1998, Experimental Brain Research.

[71]  S. Shefchyk,et al.  Plateau potentials and membrane oscillations in parasympathetic preganglionic neurones and intermediolateral neurones in the rat lumbosacral spinal cord , 2005, The Journal of physiology.

[72]  The action of acetylcholine on the locomotor central pattern generator for swimming in Xenopus embryos. , 1991, The Journal of experimental biology.

[73]  A. Cardona,et al.  A circuit mechanism for the propagation of waves of muscle contraction in Drosophila , 2016, eLife.

[74]  J. Feldman,et al.  Sodium and Calcium Current-Mediated Pacemaker Neurons and Respiratory Rhythm Generation , 2005, The Journal of Neuroscience.

[75]  T. Drew,et al.  Contributions of the reticulospinal system to the postural adjustments occurring during voluntary gait modifications. , 2001, Journal of neurophysiology.

[76]  P. Guertin New pharmacological approaches against chronic bowel and bladder problems in paralytics. , 2016, World journal of critical care medicine.

[77]  Chih-Wei Chang,et al.  A Fully Integrated Wireless SoC for Motor Function Recovery After Spinal Cord Injury , 2017, IEEE Transactions on Biomedical Circuits and Systems.

[78]  Shik Ml,et al.  Control of walking and running by means of electric stimulation of the midbrain , 1966 .

[79]  D. McCrea,et al.  Ankle extensor group I afferents excite extensors throughout the hindlimb during fictive locomotion in the cat. , 1995, The Journal of physiology.

[80]  S. Grillner,et al.  The neural network underlying locomotion in lamprey-synaptic and cellular mechanisms , 1991, Neuron.

[81]  S. Rossignol,et al.  A comparison of treadmill locomotion in adult cats before and after spinal transection. , 1996, Journal of neurophysiology.

[82]  H. Hultborn,et al.  Transmission in a locomotor-related group Ib pathway from hindlimb extensor muscles in the cat , 2004, Experimental Brain Research.

[83]  S. Alford,et al.  A synaptic mechanism for network synchrony , 2014, Front. Cell. Neurosci..

[84]  Barry J. Sessle,et al.  The role of the cerebral cortex in swallowing , 2005, Dysphagia.

[85]  J F R Paton,et al.  Neural control of the lower urinary and gastrointestinal tracts: Supraspinal CNS mechanisms , 2010, Neurourology and urodynamics.

[86]  Takayoshi Yoshida,et al.  [Control of breathing during exercise]. , 1992, The Annals of physiological anthropology = Seiri Jinruigaku Kenkyukai kaishi.

[87]  L. Jordan,et al.  Excitatory and inhibitory postsynaptic potentials in alpha-motoneurons produced during fictive locomotion by stimulation of the mesencephalic locomotor region. , 1985, Journal of neurophysiology.

[88]  J. Massion,et al.  Stance and Motion: Facts and Concepts , 1989 .

[89]  K. Pearson,et al.  Function of Segmental Reflexes in the Control of Stepping in Cockroaches and Cats , 1976 .

[90]  Winfried Schlee,et al.  Top-Down Modulation of the Auditory Steady-State Response in a Task-Switch Paradigm , 2008, Front. Hum. Neurosci..

[91]  Matthias Landgraf,et al.  Even-Skipped+ Interneurons Are Core Components of a Sensorimotor Circuit that Maintains Left-Right Symmetric Muscle Contraction Amplitude , 2015, Neuron.

[92]  V. Reggie Edgerton,et al.  Iron ‘ElectriRx’ man: Overground stepping in an exoskeleton combined with noninvasive spinal cord stimulation after paralysis , 2015, 2015 37th Annual International Conference of the IEEE Engineering in Medicine and Biology Society (EMBC).

[93]  E. Quigley,et al.  An update on prucalopride in the treatment of chronic constipation , 2017, Therapeutic advances in gastroenterology.

[94]  O. Kiehn,et al.  Dual-mode operation of neuronal networks involved in left–right alternation , 2013, Nature.

[95]  Y. Jan,et al.  Identification of Ppk26, a DEG/ENaC Channel Functioning with Ppk1 in a Mutually Dependent Manner to Guide Locomotion Behavior in Drosophila. , 2014, Cell reports.

[96]  Toshiaki Endo,et al.  Identification of Minimal Neuronal Networks Involved in Flexor-Extensor Alternation in the Mammalian Spinal Cord , 2011, Neuron.

[97]  P. Nathan,et al.  Long descending tracts in man. I. Review of present knowledge. , 1955, Brain : a journal of neurology.

[98]  M. Goulding,et al.  Inhibition downunder: an update from the spinal cord , 2014, Current Opinion in Neurobiology.

[99]  Jan-Marino Ramirez,et al.  Respiratory rhythm generation: triple oscillator hypothesis , 2017, F1000Research.

[100]  L. Guttmann,et al.  Prostigmin assessment test of fertility in spinal man , 1971, Paraplegia.

[101]  N. Kudo,et al.  5-Hydroxytryptamine-induced locomotor rhythm in the neonatal mouse spinal cord in vitro , 2000, Neuroscience Letters.

[102]  C. Perret,et al.  Analysis of the Pattern of Activity in “Knee Flexor” Motoneurons During Locomotion in the Cat , 1988 .

[103]  P. Kahrilas,et al.  Neuronal activity in nucleus ambiguus during deglutition and vocalization in conscious monkeys , 1994, Experimental Brain Research.

[104]  Winter Da Changes in gait with aging. , 1991 .

[105]  D. McCrea,et al.  Modelling spinal circuitry involved in locomotor pattern generation: insights from deletions during fictive locomotion , 2006, The Journal of physiology.

[106]  M. Gregorič,et al.  Alterations in gait resulting from deliberate changes of arm-swing amplitude and phase. , 1997, Clinical biomechanics.

[107]  B. Prilutsky,et al.  Electrical stimulation of the sural cutaneous afferent nerve controls the amplitude and onset of the swing phase of locomotion in the spinal cat. , 2011, Journal of neurophysiology.

[108]  Valerie C. Siembab,et al.  V1 and V2b Interneurons Secure the Alternating Flexor-Extensor Motor Activity Mice Require for Limbed Locomotion , 2014, Neuron.

[109]  J. C. Smith,et al.  Pre-Bötzinger complex: a brainstem region that may generate respiratory rhythm in mammals. , 1991, Science.

[110]  T. Brown On the nature of the fundamental activity of the nervous centres; together with an analysis of the conditioning of rhythmic activity in progression, and a theory of the evolution of function in the nervous system , 1914, The Journal of physiology.

[111]  Raphaël Lavoie,et al.  Generation of the masticatory central pattern and its modulation by sensory feedback , 2012, Progress in Neurobiology.

[112]  S. Rossignol,et al.  Autoradiographic study of alpha1- and alpha2-noradrenergic and serotonin1A receptors in the spinal cord of normal and chronically transected cats. , 1999, The Journal of comparative neurology.

[113]  L. Jordan,et al.  Activity of interneurons within the L4 spinal segment of the cat during brainstem-evoked fictive locomotion , 2004, Experimental Brain Research.

[114]  Igor A. Lavrov,et al.  Activation of spinal locomotor circuits in the decerebrated cat by spinal epidural and/or intraspinal electrical stimulation , 2015, Brain Research.

[115]  R. Ferri,et al.  The neurophysiology of the alternating leg muscle activation (ALMA) during sleep: study of one patient before and after treatment with pramipexole. , 2006, Sleep medicine.

[116]  X. Li,et al.  Serotonin facilitates a persistent calcium current in motoneurons of rats with and without chronic spinal cord injury. , 2007, Journal of neurophysiology.

[117]  A. Takakura,et al.  Neuroanatomical and physiological evidence that the retrotrapezoid nucleus/parafacial region regulates expiration in adult rats , 2016, Respiratory Physiology & Neurobiology.

[118]  J. Greer,et al.  Serotonergic and noradrenergic effects on respiratory neural discharge in the medullary slice preparation of neonatal rats , 2006, Pflügers Archiv.

[119]  J. Gossard,et al.  Bulbospinal control of spinal cord pathways generating locomotor extensor activities in the cat , 2000, The Journal of physiology.

[120]  B. Schurch,et al.  Botulinum-A toxin for treating detrusor hyperreflexia in spinal cord injured patients: a new alternative to anticholinergic drugs? Preliminary results. , 2000, The Journal of urology.

[121]  G. Sanger,et al.  Ghrelin and Motilin Control Systems in GI Physiology and Therapeutics. , 2016, Handbook of experimental pharmacology.

[122]  M. Alexander,et al.  Principles of Neural Science , 1981 .

[123]  S. Gravas,et al.  Solifenacin/tamsulosin fixed-dose combination therapy to treat lower urinary tract symptoms in patients with benign prostatic hyperplasia , 2015, Drug design, development and therapy.

[124]  J. Cazalets,et al.  Noradrenergic control of locomotor networks in the in vitro spinal cord of the neonatal rat , 2000, Brain Research.

[125]  F. Giuliano,et al.  Direct brain projections onto the spinal generator of ejaculation in the rat , 2014, Neuroscience.

[126]  A. Car,et al.  [Deglutitions and oesophageal reflex contractions induced by electrical stimulation of the medulla oblongata]. , 1970, Experimental brain research.

[127]  Ole Kiehn,et al.  Chapter 21 Possible functions of transmitter-controlled plateau potentials in α motoneurones , 1989 .

[128]  P. Guertin,et al.  Differential effects of 5-HT1 and 5-HT2 receptor agonists on hindlimb movements in paraplegic mice , 2004, Progress in Neuro-Psychopharmacology and Biological Psychiatry.

[129]  A. Shindel Ejaculation Elicited by Microstimulation of Lumbar Spinothalamic Neurons , 2009 .

[130]  A. Kamanyi,et al.  Guibourtia tessmannii-induced fictive ejaculation in spinal male rat: involvement of D1, D2-like receptors , 2017, Pharmaceutical biology.

[131]  Larry M Jordan,et al.  Multiple patterns and components of persistent inward current with serotonergic modulation in locomotor activity-related neurons in Cfos-EGFP mice. , 2010, Journal of neurophysiology.

[132]  A. Jean,et al.  Inputs to the swallowing medullary neurons from the peripheral afferent fibers and the swallowing cortical area , 1979, Brain Research.

[133]  D. Stehouwer,et al.  The NMDA antagonist, MK-801, alters L-DOPA-induced air-stepping in neonatal rats. , 1999, Brain research. Developmental brain research.

[134]  S. Rossi,et al.  The heart side of brain neuromodulation , 2016, Philosophical Transactions of the Royal Society A: Mathematical, Physical and Engineering Sciences.

[135]  L M Jordan,et al.  N-methyl-D-aspartate receptor-mediated voltage oscillations in neurons surrounding the central canal in slices of rat spinal cord. , 1994, Journal of neurophysiology.

[136]  J. Mehrholz,et al.  Is body-weight-supported treadmill training or robotic-assisted gait training superior to overground gait training and other forms of physiotherapy in people with spinal cord injury? A systematic review , 2017, Spinal Cord.

[137]  S. Grillner,et al.  Calcium-dependent potassium channels play a critical role for burst termination in the locomotor network in lamprey. , 1994, Journal of neurophysiology.

[138]  P. Holmes,et al.  Endogenous rhythm and pattern-generating circuit interactions in cockroach motor centres , 2016, Biology Open.

[139]  J. P. Lund,et al.  Influence of age on adaptability of human mastication. , 2004, Journal of Neurophysiology.

[140]  R. Harris-Warrick Voltage-sensitive ion channels in rhythmic motor systems , 2002, Current Opinion in Neurobiology.

[141]  Dingguo Zhang,et al.  Mathematical Study on ionic Mechanism of lamprey Central Pattern Generator Model , 2009, Int. J. Neural Syst..

[142]  T. Jessell,et al.  Conditional Rhythmicity of Ventral Spinal Interneurons Defined by Expression of the Hb9 Homeodomain Protein , 2005, The Journal of Neuroscience.

[143]  Serge Rossignol,et al.  Effects of Intrathecal α1- and α2-Noradrenergic Agonists and Norepinephrine on Locomotion in Chronic Spinal Cats , 1998 .

[144]  L. Jordan,et al.  Multiple effects of serotonin and acetylcholine on hyperpolarization-activated inward current in locomotor activity-related neurons in Cfos-EGFP mice. , 2010, Journal of neurophysiology.

[145]  Z. Afelt Reflex activity in chronic spinal cats. , 1970, Acta neurobiologiae experimentalis.

[146]  K. Naitou,et al.  Characterization of ghrelin‐sensitive neurons in the lumbosacral defecation center in rats , 2015, Neurogastroenterology and motility : the official journal of the European Gastrointestinal Motility Society.

[147]  F. Biering-Sørensen,et al.  Sexual function in spinal cord lesioned men , 2001, Spinal Cord.

[148]  F. Giuliano,et al.  Physiology and Pharmacology of Ejaculation. , 2016, Basic & clinical pharmacology & toxicology.

[149]  Ole Kiehn,et al.  Role of EphA4 and EphrinB3 in Local Neuronal Circuits That Control Walking , 2003, Science.

[150]  J. Roppolo,et al.  Pharmacological modulation of the pontine micturition center , 1991, Brain Research.

[151]  T. Drew,et al.  Taking the next step: cortical contributions to the control of locomotion , 2015, Current Opinion in Neurobiology.

[152]  Michael J. O'Donovan,et al.  The effects of excitatory amino acids and their antagonists on the generation of motor activity in the isolated chick spinal cord. , 1987, Brain research.

[153]  K. Andersson,et al.  The effect of the 5‐HT7 serotonin receptor agonist, LP44, on micturition in rats with chronic spinal cord injury , 2014, Neurourology and urodynamics.

[154]  P. Wallén,et al.  The neuronal correlate of locomotion in fish , 1980, Experimental Brain Research.

[155]  D. Riddle C. Elegans II , 1998 .

[156]  C. Maggi,et al.  Neural pathways and pharmacological modulation of defecation reflex in rats. , 1988, General pharmacology.

[157]  J. F. Yang,et al.  The initiation of the swing phase in human infant stepping: importance of hip position and leg loading , 2000, The Journal of physiology.

[158]  K. Pearson,et al.  Contribution of hind limb flexor muscle afferents to the timing of phase transitions in the cat step cycle. , 1996, Journal of neurophysiology.

[159]  M. Dimitrijevic,et al.  Human lumbar cord circuitries can be activated by extrinsic tonic input to generate locomotor-like activity. , 2007, Human movement science.

[160]  A. Jean,et al.  Evidence that activation of N-methyl-D-aspartate (NMDA) and non-NMDA receptors within the nucleus tractus solitarii triggers swallowing. , 1991, European journal of pharmacology.

[161]  Annalisa Bucchi,et al.  Physiology and pharmacology of the cardiac pacemaker ("funny") current. , 2005, Pharmacology & therapeutics.

[162]  Alan R. Harvey,et al.  The Acquisition of Target Dependence by Developing Rat Retinal Ganglion Cells , 2015, eNeuro.

[163]  M. L. Shik,et al.  [Control of walking and running by means of electric stimulation of the midbrain]. , 1966, Biofizika.

[164]  A. Frigon The neural control of interlimb coordination during mammalian locomotion. , 2017, Journal of neurophysiology.

[165]  R. Brownstone,et al.  Lhx3-Chx10 Reticulospinal Neurons in Locomotor Circuits , 2013, The Journal of Neuroscience.

[166]  L. M. Jordan,et al.  Initiation of locomotion from the mesencephalic locomotor region: Effects of selective brainstem lesions , 1985, Brain Research.

[167]  Hans Hultborn,et al.  Information to cerebellum on spinal motor networks mediated by the dorsal spinocerebellar tract , 2013, The Journal of physiology.

[168]  S. Grillner,et al.  The ionic mechanisms underlying N-methyl-d-aspartate receptor-induced, tetrodotoxin-resistant membrane potential oscillations in lamprey neurons active during locomotion , 1985, Neuroscience Letters.

[169]  S. Arber,et al.  Degradation of mouse locomotor pattern in the absence of proprioceptive sensory feedback , 2014, Proceedings of the National Academy of Sciences.

[170]  R. Harris-Warrick,et al.  Adult spinal V2a interneurons show increased excitability and serotonin-dependent bistability. , 2015, Journal of neurophysiology.

[171]  A. Muir,et al.  Oral administration of a centrally acting ghrelin receptor agonist to conscious rats triggers defecation , 2009, Neurogastroenterology and motility : the official journal of the European Gastrointestinal Motility Society.

[172]  G. Courtine,et al.  Spinal cord injury: time to move , 2011, The Lancet.

[173]  Sylvie Nadeau,et al.  Spontaneous Motor Rhythms of the Back and Legs in a Patient With a Complete Spinal Cord Transection , 2010, Neurorehabilitation and neural repair.

[174]  B. Schmidt,et al.  Neurochemical excitation of thoracic propriospinal neurons improves hindlimb stepping in adult rats with spinal cord lesions , 2015, Experimental Neurology.

[175]  L. Jordan,et al.  The role of serotonin in reflex modulation and locomotor rhythm production in the mammalian spinal cord , 2000, Brain Research Bulletin.

[176]  M. Malcangio,et al.  The role of glia in the spinal cord in neuropathic and inflammatory pain. , 2015, Handbook of experimental pharmacology.

[177]  M. Murray,et al.  Restitution of function and collateral sprouting in the cat spinal cord: The partially hemisected animal , 1974, The Journal of comparative neurology.

[178]  O. Kiehn,et al.  Sulphorhodamine‐labelled cells in the neonatal rat spinal cord following chemically induced locomotor activity in vitro. , 1994, The Journal of physiology.

[179]  H. Okada,et al.  The defecation reflex in rats: fundamental properties and the reflex center , 2004, Autonomic Neuroscience.

[180]  S. Grillner,et al.  Central Generation of Locomotion in Vertebrates , 1976 .

[181]  J. Duysens Reflex control of locomotion as revealed by stimulation of cutaneous afferents in spontaneously walking premammillary cats. , 1977, Journal of neurophysiology.

[182]  E. Field-Fote,et al.  Vibration Elicits Involuntary, Step-Like Behavior in Individuals With Spinal Cord Injury , 2012, Neurorehabilitation and neural repair.

[183]  K. Naitou,et al.  Colokinetic effect of somatostatin in the spinal defecation center in rats , 2018, The Journal of Physiological Sciences.

[184]  F. Barrington,et al.  THE EFFECT OF LESIONS OF THE HIND‐ AND MID‐BRAIN ON MICTURITION IN THE CAT , 1925 .

[185]  P. Guertin,et al.  Effects on Locomotion, Muscle, Bone, and Blood Induced by a Combination Therapy Eliciting Weight-Bearing Stepping in Nonassisted Spinal Cord–Transected Mice , 2011, Neurorehabilitation and neural repair.

[186]  Yu. P. Gerasimenko,et al.  Effects of Spinal Cord Electrical Stimulation in Patients with Vertebrospinal Pathology , 2012, Bulletin of Experimental Biology and Medicine.

[187]  W. C. Groat,et al.  The neural control of micturition , 2008, Nature Reviews Neuroscience.

[188]  T Drew,et al.  Spinal locomotion: a comparison of the kinematics and the electromyographic activity in the same animal before and after spinalization. , 1988, Acta biologica Hungarica.

[189]  E. Sacco,et al.  Emerging pharmacological targets in overactive bladder therapy: experimental and clinical evidences , 2008, International Urogynecology Journal.

[190]  S. Rossignol,et al.  Recovery of locomotion after ventral and ventrolateral spinal lesions in the cat. I. Deficits and adaptive mechanisms. , 1998, Journal of neurophysiology.

[191]  S. Rossignol,et al.  Adaptive changes of the locomotor pattern and cutaneous reflexes during locomotion studied in the same cats before and after spinalization , 2008, The Journal of physiology.

[192]  J. Wolpaw What Can the Spinal Cord Teach Us about Learning and Memory? , 2010, The Neuroscientist : a review journal bringing neurobiology, neurology and psychiatry.

[193]  W. Kristan,et al.  Neurons controlling the initiation, generation and modulation of leech swimming. , 1983, Symposia of the Society for Experimental Biology.

[194]  Shin-Da Lee,et al.  Adenosinergic modulation of ventilation in obese zucker rats. , 2005, Obesity research.

[195]  H. Hultborn Spinal reflexes, mechanisms and concepts: From Eccles to Lundberg and beyond , 2006, Progress in Neurobiology.

[196]  E. Bárbara-Bataller,et al.  Determination of changes in blood pressure during administration of sildenafil (Viagra®) in patients with spinal cord injury and erectile dysfunction , 2006, Spinal Cord.

[197]  H. Hultborn State‐dependent modulation of sensory feedback , 2001, The Journal of physiology.

[198]  R. Cueva-Rolón,et al.  Masculine copulatory behavior is facilitated by intrathecally administered muscarine , 2000, Experimental Brain Research.

[199]  J. MacLean,et al.  Is NMDA receptor activation essential for the production of locomotor-like activity in the neonatal rat spinal cord? , 2005, Journal of neurophysiology.

[200]  V. Vitton,et al.  Supraspinal control of external anal sphincter motility: effects of vesical distension in humans and cats , 2006, Neurogastroenterology and motility : the official journal of the European Gastrointestinal Motility Society.

[201]  D J Kriellaars,et al.  Mechanical entrainment of fictive locomotion in the decerebrate cat. , 1994, Journal of neurophysiology.

[202]  Gert Holstege,et al.  Neurophysiology of the lower urinary tract. , 2011, Handbook of experimental pharmacology.

[203]  A. Selverston,et al.  Invertebrate central pattern generator circuits , 2010, Philosophical Transactions of the Royal Society B: Biological Sciences.

[204]  Roger D. Quinn,et al.  A muscle-driven approach to restore stepping with an exoskeleton for individuals with paraplegia , 2017, Journal of NeuroEngineering and Rehabilitation.

[205]  Robert T. R. Huckstepp,et al.  Interactions between respiratory oscillators in adult rats , 2016, eLife.

[206]  L. Mendell,et al.  Neurotrophins and spinal circuit function , 2014, Front. Neural Circuits.

[207]  J. Wertz,et al.  Serotonergic influences on male sexual behavior of rhesus monkeys: effects of serotonin agonists , 2005, Psychopharmacology.

[208]  A. Nistri,et al.  Microelectrode arrays in combination with in vitro models of spinal cord injury as tools to investigate pathological changes in network activity: facts and promises , 2013, Front. Neuroeng..

[209]  C. Perret Centrally generated pattern of motoneuron activity during locomotion in the cat. , 1983, Symposia of the Society for Experimental Biology.

[210]  B. Lardennois,et al.  [Pharmacologic stimulation of ejaculation with midodrine hydrochloride (Gutron) for medically assisted reproduction in spinal injury]. , 2001, Progres en urologie : journal de l'Association francaise d'urologie et de la Societe francaise d'urologie.

[211]  A. Lundberg The supraspinal control of transmission in spinal reflex pathways. , 1967, Electroencephalography and clinical neurophysiology.

[212]  P. Guertin,et al.  Ionotropic 5-HT3 receptor agonist-induced motor responses in the hindlimbs of paraplegic mice. , 2005, Journal of neurophysiology.

[213]  D. Ryczko,et al.  The multifunctional mesencephalic locomotor region. , 2013, Current pharmaceutical design.

[214]  J. Cabelguen,et al.  Main characteristics of the hindlimb locomotor cycle in the decorticate cat with special reference to bifunctional muscles , 1980, Brain Research.

[215]  T. Umezaki,et al.  Medullary swallowing‐related neurons in the anesthetized cat , 1998, Neuroreport.

[216]  G. R. Davis,et al.  Descending brain neurons in larval lamprey: Spinal projection patterns and initiation of locomotion , 2010, Experimental Neurology.

[217]  S. Rossignol,et al.  The effects of serotonergic drugs on the locomotor pattern and on cutaneous reflexes of the adult chronic spinal cat , 1990, Brain Research.

[218]  Keiko Ikeda,et al.  The respiratory control mechanisms in the brainstem and spinal cord: integrative views of the neuroanatomy and neurophysiology , 2016, The Journal of Physiological Sciences.

[219]  D A McCrea,et al.  Depression of muscle and cutaneous afferent‐evoked monosynaptic field potentials during fictive locomotion in the cat , 1999, The Journal of physiology.

[220]  F. Giuliano,et al.  Physiology of ejaculation: emphasis on serotonergic control. , 2005, European urology.

[221]  L. Coolen,et al.  Neural mechanisms of sexual behavior in the male rat: Emphasis on ejaculation-related circuits , 2014, Pharmacology Biochemistry and Behavior.

[222]  A. Yamanaka,et al.  Direct projections from hypothalamic orexin neurons to brainstem cardiac vagal neurons , 2016, Neuroscience.

[223]  B. Dubrovsky,et al.  Impairments in limb actions after dorsal funiculi section in cats , 1979, Experimental Brain Research.

[224]  M. A. Masino,et al.  TTX-Resistant NMDA Receptor-Mediated Membrane Potential Oscillations in Neonatal Mouse Hb9 Interneurons , 2012, PloS one.

[225]  Ansgar Büschges,et al.  A Specific Population of Reticulospinal Neurons Controls the Termination of Locomotion. , 2016, Cell reports.

[226]  U. Nissen,et al.  Development of projection‐specific interneurons and projection neurons in the embryonic mouse and rat spinal cord , 2005, The Journal of comparative neurology.

[227]  M. Fraser,et al.  Sprouting of substance P-expressing primary afferent central terminals and spinal micturition reflex NK1 receptor dependence after spinal cord injury. , 2008, American journal of physiology. Regulatory, integrative and comparative physiology.

[228]  S. Rossignol,et al.  Pharmacological aids to locomotor training after spinal injury in the cat , 2001, The Journal of physiology.

[229]  J. P. Lund,et al.  Emergence of intrinsic bursting in trigeminal sensory neurons parallels the acquisition of mastication in weanling rats. , 2006, Journal of neurophysiology.

[230]  Arthur Prochazka,et al.  Control of urinary bladder function with devices: successes and failures. , 2006, Progress in brain research.

[231]  J. Feldman,et al.  Facing the challenge of mammalian neural microcircuits: taking a few breaths may help , 2015, The Journal of physiology.

[232]  D. Vergé,et al.  Galanin and neurokinin-1 receptor immunoreactivity spinal neurons controlling the prostate and the bulbospongiosus muscle identified by transsynaptic labeling in the rat , 2005, Neuroscience.

[233]  R. Schmidt Advances in Genitourinary Neurostimulation , 1986, Neurosurgery.

[234]  A. Wright,et al.  Electroneurostimulation for the management of bladder bowel dysfunction in childhood. , 2017, European journal of paediatric neurology : EJPN : official journal of the European Paediatric Neurology Society.

[235]  S. Grillner,et al.  Activation of NMDA receptors elecits fictive locomotion and bistable membrane properties in the lamprey spinal cord , 1985, Brain Research.

[236]  Stanislav Nagy,et al.  Caenorhabditis elegans exhibit a coupling between the defecation motor program and directed locomotion , 2015, Scientific Reports.

[237]  Jerome P. Reiter,et al.  Activation of the external urethral sphincter central pattern generator by a 5-HT(1A) receptor agonist in rats with chronic spinal cord injury. , 2007, American journal of physiology. Regulatory, integrative and comparative physiology.

[238]  O. Kiehn,et al.  Phenotype of V2‐derived interneurons and their relationship to the axon guidance molecule EphA4 in the developing mouse spinal cord , 2007, The European journal of neuroscience.

[239]  Peter A. Getting,et al.  Neuronal organization of escape swimming inTritonia , 2004, Journal of comparative physiology.

[240]  E Garcia-Rill,et al.  Locomotor projections from the pedunculopontine nucleus to the spinal cord. , 1990, Neuroreport.

[241]  V. Edgerton,et al.  Epidural stimulation: Comparison of the spinal circuits that generate and control locomotion in rats, cats and humans , 2008, Experimental Neurology.

[242]  P. Pozo‐Rosich,et al.  Are neurology residents interested in headache , 2017 .

[243]  Thomas Sinkjær,et al.  Group II muscle afferents probably contribute to the medium latency soleus stretch reflex during walking in humans , 2001, The Journal of physiology.

[244]  K. Andersson,et al.  Improving voiding efficiency in the diabetic rat by a 5‐HT1A serotonin receptor agonist , 2011, Neurourology and urodynamics.

[245]  D. Ryczko,et al.  A descending dopamine pathway conserved from basal vertebrates to mammals , 2016, Proceedings of the National Academy of Sciences.

[246]  R. Harris-Warrick,et al.  Contributions of intrinsic motor neuron properties to the production of rhythmic motor output in the mammalian spinal cord , 2000, Brain Research Bulletin.

[247]  A. Riley,et al.  Partial ejaculatory incompetence: the therapeutic effect of midodrine, an orally active selective alpha-adrenoceptor agonist. , 1982, European urology.

[248]  C. Pratt,et al.  Renshaw cell activity and recurrent effects on motoneurons during fictive locomotion. , 1980, Journal of neurophysiology.

[249]  Shik Ml,et al.  Control of walking and running by means of electrical stimulation of the mesencephalon. , 1969 .

[250]  W. C. Groat,et al.  Pharmacology of the lower urinary tract. , 2001, Annual review of pharmacology and toxicology.

[251]  S. McMahon,et al.  Injury-induced plasticity of the flexor reflex in chronic decerebrate rats , 1985, Neuroscience.

[252]  S. Miller,et al.  Coordination of movements of the hindlimbs and forelimbs in different forms of locomotion in normal and decerebrate cats , 1975, Brain Research.

[253]  B. Conway,et al.  Proprioceptive input resets central locomotor rhythm in the spinal cat , 2004, Experimental Brain Research.

[254]  K. Yamanaka,et al.  Bidirectional cardiovascular responses evoked by microstimulation of the amygdala in rats , 2018, The Journal of Physiological Sciences.

[255]  V. Dietz,et al.  Locomotor activity in spinal man: significance of afferent input from joint and load receptors. , 2002, Brain : a journal of neurology.

[256]  H. Hultborn,et al.  Modulation of spontaneous locomotor and respiratory drives to hindlimb motoneurons temporally related to sympathetic drives as revealed by Mayer waves , 2015, Front. Neural Circuits.

[257]  M. Sasaki Bladder contractility‐related neurons in barrington's nucleus: Axonal projections to the spinal cord in the cat , 2002, The Journal of comparative neurology.

[258]  N. L. Chamberlin,et al.  A Brainstem Network Mediating Apneic Reflexes in the Rat , 1998, The Journal of Neuroscience.

[259]  A. Iriki,et al.  Localization of central rhythm generator involved in cortically induced rhythmical masticatory jaw-opening movement in the guinea pig. , 1986, Journal of neurophysiology.

[260]  K. Westberg,et al.  Brainstem mechanisms underlying feeding behaviors , 1998, Current Opinion in Neurobiology.

[261]  J. Roppolo,et al.  Increased c-fos expression in spinal lumbosacral projection neurons and preganglionic neurons after irritation of the lower urinary tract in the rat , 1999, Brain Research.

[262]  S. Rossignol,et al.  Dynamic sensorimotor interactions in locomotion. , 2006, Physiological reviews.

[263]  Simon Giszter,et al.  Primitives, premotor drives, and pattern generation: a combined computational and neuroethological perspective. , 2007, Progress in brain research.

[264]  H. Hultborn,et al.  Induction of fos expression by activity in the spinal rhythm generator for scratching , 1992, Brain Research.

[265]  Gordon Cheng,et al.  Multi-layered multi-pattern CPG for adaptive locomotion of humanoid robots , 2014, Biological Cybernetics.

[266]  J. P. Lund,et al.  Neurons of the trigeminal main sensory nucleus participate in the generation of rhythmic motor patterns , 2003, The European journal of neuroscience.

[267]  B J Schmidt,et al.  NMDA Receptor‐mediated Oscillatory Properties: Potential Role in Rhythm Generation in the Mammalian Spinal Cord , 1998, Annals of the New York Academy of Sciences.

[268]  S. H. Chandler,et al.  Neuropharmacological mechanisms underlying rhythmical discharge in trigeminal interneurons during fictive mastication. , 1994, Journal of neurophysiology.

[269]  S. Harkema,et al.  Retraining the injured spinal cord , 2001, The Journal of physiology.

[270]  E. Marder,et al.  Understanding circuit dynamics using the stomatogastric nervous system of lobsters and crabs. , 2007, Annual review of physiology.

[271]  David Choi,et al.  Traumatic Spinal Cord Injury—Repair and Regeneration , 2017, Neurosurgery.

[272]  J. Dempsey,et al.  Role of central/peripheral chemoreceptors and their interdependence in the pathophysiology of sleep apnea. , 2012, Advances in experimental medicine and biology.

[273]  Comment on “Restoring Voluntary Control of Locomotion After Paralyzing Spinal Cord Injury” , 2012, Science.

[274]  R. Brownstone,et al.  An in vitro functionally mature mouse spinal cord preparation for the study of spinal motor networks , 1999, Brain Research.

[275]  Hideyuki Yamamoto,et al.  Spinal mechanism of micturition reflex inhibition by naftopidil in rats. , 2014, Life sciences.

[276]  D. McCreery,et al.  Intraspinal stimulation for bladder voiding in cats before and after chronic spinal cord injury , 2007, Journal of neural engineering.

[277]  Y. Yanagawa,et al.  Medullary Reticular Neurons Mediate Neuropeptide Y-Induced Metabolic Inhibition and Mastication. , 2017, Cell metabolism.

[278]  H Hultborn,et al.  Intrinsic membrane properties causing a bistable behaviour of alpha-motoneurones. , 1984, Experimental brain research.

[279]  G. Bruyn Posture and gait: Development, adaptation and modulation By Bernard Amblard, Alain Berthoz and François Clarac (eds.), Excerpta Medica, Amsterdam-New York-Oxford, 1988, ICS 812, Dfl. 265.00 , 1989, Journal of the Neurological Sciences.

[280]  Lai-Hua Xie,et al.  Autonomic and endocrine control of cardiovascular function. , 2015, World journal of cardiology.

[281]  M. Knikou,et al.  Plantar cutaneous afferents normalize the reflex modulation patterns during stepping in chronic human spinal cord injury. , 2010, Journal of neurophysiology.

[282]  P. Lalley Opioidergic and dopaminergic modulation of respiration , 2008, Respiratory Physiology & Neurobiology.

[283]  P. Guertin,et al.  Plasticity in sublesionally located neurons following spinal cord injury. , 2007, Journal of neurophysiology.

[284]  S. Hochman,et al.  Restless legs syndrome , 2006, Neurology.

[285]  Ole Kiehn,et al.  Projection patterns of commissural interneurons in the lumbar spinal cord of the neonatal rat , 2002, The Journal of comparative neurology.

[286]  B. Bussel,et al.  Late flexion reflex in paraplegic patients. Evidence for a spinal stepping generator , 1989, Brain Research Bulletin.

[287]  V. Dietz,et al.  Arm movements can increase leg muscle activity during submaximal recumbent stepping in neurologically intact individuals. , 2013, Journal of applied physiology.

[288]  Michael J. O'Donovan,et al.  Locomotor-like activity generated by the neonatal mouse spinal cord , 2002, Brain Research Reviews.

[289]  H. Forssberg,et al.  Chapter 19 Phasic modulation of postural activation patterns during human walking , 1988 .

[290]  R. Oosting,et al.  Serotonin 1A receptors and sexual behavior in male rats: A review , 2014, Pharmacology Biochemistry and Behavior.

[291]  C. Heckman,et al.  Cutaneous inputs from the back abolish locomotor-like activity and reduce spastic-like activity in the adult cat following complete spinal cord injury , 2012, Experimental Neurology.

[292]  Toshiaki Endo,et al.  Asymmetric operation of the locomotor central pattern generator in the neonatal mouse spinal cord. , 2008, Journal of neurophysiology.

[293]  L. Jordan,et al.  Mechanism for activation of locomotor centers in the spinal cord by stimulation of the mesencephalic locomotor region. , 2003, Journal of neurophysiology.

[294]  Christie K. Ferreira,et al.  Flexion reflex modulation during stepping in human spinal cord injury , 2009, Experimental Brain Research.

[295]  Yuki Nakamura,et al.  Peripheral and central control of swallowing initiation in healthy humans , 2015, Physiology & Behavior.

[296]  C. Maggi,et al.  Nervous control of the urogenital system , 1993 .

[297]  Yuchio Yanagawa,et al.  Electrophysiological and morphological characteristics of GABAergic respiratory neurons in the mouse pre‐Bötzinger complex , 2006, The European journal of neuroscience.

[298]  S. Rossignol,et al.  Cholinergic mechanisms in spinal locomotion—potential target for rehabilitation approaches , 2014, Front. Neural Circuits.

[299]  K. Andersson Potential Future Pharmacological Treatment of Bladder Dysfunction. , 2016, Basic & clinical pharmacology & toxicology.

[300]  J. Bosma,et al.  An electromyographic analysis of reflex deglutition. , 1956, Journal of neurophysiology.

[301]  L. M. Jordan,et al.  The role of Renshaw cells in locomotion: antagonism of their excitation from motor axon collaterals with intravenous mecamylamine , 1987, Experimental Brain Research.

[302]  C. Lynne,et al.  Anesthetic block of the dorsal penile nerve inhibits vibratory-induced ejaculation in men with spinal cord injuries. , 2000, Urology.

[303]  J. P. Lund Mastication and its control by the brain stem. , 1991, Critical reviews in oral biology and medicine : an official publication of the American Association of Oral Biologists.

[304]  O. Kiehn,et al.  Transmitter-controlled properties of alpha-motoneurones causing long-lasting motor discharge to brief excitatory inputs. , 1986, Progress in brain research.

[305]  B. Rexed The cytoarchitectonic organization of the spinal cord in the cat , 1952, The Journal of comparative neurology.

[306]  S. Grillner,et al.  The locomotion of the acute spinal cat injected with clonidine i.v. , 1973, Brain research.

[307]  A. Boriek,et al.  Mechanics of the respiratory muscles. , 2011, Comprehensive Physiology.

[308]  R. Delgado-Lezama,et al.  Cholinergic facilitation of erection and ejaculation in spinal cord-transected rats , 2004, International Journal of Impotence Research.

[309]  R. Williams,et al.  The control of neuron number. , 1988, Annual review of neuroscience.

[310]  D J Kriellaars,et al.  The effect of selective brainstem or spinal cord lesions on treadmill locomotion evoked by stimulation of the mesencephalic or pontomedullary locomotor regions , 1991, The Journal of neuroscience : the official journal of the Society for Neuroscience.

[311]  S. Harkema,et al.  Altering spinal cord excitability enables voluntary movements after chronic complete paralysis in humans. , 2014, Brain : a journal of neurology.

[312]  P. Luiten,et al.  The course of paraventricular hypothalamic efferents to autonomic structures in medulla and spinal cord , 1985, Brain Research.

[313]  Cervical response among ascending ventrolateral funiculus pathways of the neonatal rat , 2013, Brain Research.

[314]  K. Pearson,et al.  Stimulation of the group I extensor afferents prolongs the stance phase in walking cats , 2004, Experimental Brain Research.

[315]  R. Harris-Warrick,et al.  Activity of Hb9 Interneurons during Fictive Locomotion in Mouse Spinal Cord , 2009, The Journal of Neuroscience.

[316]  S. Rossignol,et al.  Inducing hindlimb locomotor recovery in adult rat after complete thoracic spinal cord section using repeated treadmill training with perineal stimulation only. , 2015, Journal of neurophysiology.

[317]  Jan-Marino Ramirez,et al.  A novel excitatory network for the control of breathing , 2016, Nature.

[318]  M. Laere,et al.  Constipation and other chronic gastrointestinal problems in spinal cord injury patients , 1998, Spinal Cord.

[319]  Timothy A. Machado,et al.  Primacy of Flexor Locomotor Pattern Revealed by Ancestral Reversion of Motor Neuron Identity , 2015, Cell.

[320]  J. Roppolo,et al.  Transneuronal labeling of neurons in the adult rat brainstem and spinal cord after injection of pseudorabies virus into the urethra , 1995, The Journal of comparative neurology.

[321]  A. Hodgkin,et al.  A quantitative description of membrane current and its application to conduction and excitation in nerve , 1990 .

[322]  V. Brooks,et al.  Recurrent inhibition in the cat's spinal cord , 1959, The Journal of physiology.

[323]  B S Nashold,et al.  Electrical activation of micturition by spinal cord stimulation. , 1971, The Journal of surgical research.

[324]  Larry M. Jordan,et al.  5-HT2 and 5-HT7 receptor agonists facilitate plantar stepping in chronic spinal rats through actions on different populations of spinal neurons , 2014, Front. Neural Circuits.

[325]  B. Schmidt,et al.  A comparison of motor patterns induced by N-methyl-d-aspartate , acetylcholine and serotonin in the in vitro neonatal rat spinal cord , 1994, Neuroscience Letters.

[326]  R. Robitaille,et al.  An astrocyte-dependent mechanism for neuronal rhythmogenesis , 2015, Nature Neuroscience.

[327]  P. Jacobs,et al.  Involuntary stepping after chronic spinal cord injury. Evidence for a central rhythm generator for locomotion in man. , 1994, Brain : a journal of neurology.

[328]  Michael Schaefer,et al.  Neurotransmitter properties of spinal interneurons in embryonic and larval zebrafish , 2004, The Journal of comparative neurology.

[329]  P. Guertin,et al.  Specific role of dopamine D1 receptors in spinal network activation and rhythmic movement induction in vertebrates , 2009, The Journal of physiology.

[330]  L. Ritz,et al.  Descending projections to the rat sacrocaudal spinal cord , 1991, The Journal of comparative neurology.

[331]  D. Ryczko,et al.  The Transformation of a Unilateral Locomotor Command into a Symmetrical Bilateral Activation in the Brainstem , 2010, The Journal of Neuroscience.

[332]  R. Paredes,et al.  Facilitation of ejaculation induced by 8-OH-DPAT does not produce conditioned place preference in male rats. , 2007, Behavioral neuroscience.

[333]  P. Buser,et al.  The effects of DOPA and 5-HTP on rhythmic efferent discharges in hind limb nerves in the rabbit. , 1969, Brain research.

[334]  S. Hochman,et al.  Diffuse distribution of sulforhodamine‐labeled neurons during serotonin‐evoked locomotion in the neonatal rat thoracolumbar spinal cord , 2000, The Journal of comparative neurology.

[335]  D. Bayliss,et al.  Proton detection and breathing regulation by the retrotrapezoid nucleus , 2016, The Journal of physiology.

[336]  F. Clarac,et al.  Localization and organization of the central pattern generator for hindlimb locomotion in newborn rat , 1995, The Journal of neuroscience : the official journal of the Society for Neuroscience.

[337]  V. M. Pokrovskii Integration of the heart rhythmogenesis levels: heart rhythm generator in the brain. , 2005 .

[338]  V. Sandler,et al.  Intrinsic response properties of bursting neurons in the nucleus principalis trigemini of the gerbil , 1998, Neuroscience.

[339]  E. Jankowska,et al.  An interneuronal relay for group I and II muscle afferents in the midlumbar segments of the cat spinal cord. , 1987, The Journal of physiology.

[340]  V. Gurfinkel,et al.  Tonic central and sensory stimuli facilitate involuntary air-stepping in humans. , 2009, Journal of neurophysiology.

[341]  Farran Briggs,et al.  Organizing Principles of Cortical Layer 6 , 2009, Front. Neural Circuits.

[342]  Ilya A. Rybak,et al.  Sensory and Motor Systems Organization of the Mammalian Locomotor CPG: Review of Computational Model and Circuit Architectures Based on Genetically Identified Spinal Interneurons , 2015 .

[343]  R. Hemmings,et al.  Good-quality semen recovered from a paraplegic man with physostigmine salicylate treatment. A case report. , 1991, The Journal of reproductive medicine.

[344]  P. Guertin,et al.  Effects of Spinal α2-Adrenoceptor and I1-Imidazoline Receptor Activation on Hindlimb Movement Induction in Spinal Cord-Injured Mice , 2008, Journal of Pharmacology and Experimental Therapeutics.

[345]  M. Amri,et al.  Activity of neurons located in the region of the hypoglossal motor nucleus during swallowing in sheep , 2004, Experimental Brain Research.

[346]  L. Jordan,et al.  Serotonin controls initiation of locomotion and afferent modulation of coordination via 5‐HT7 receptors in adult rats , 2017, The Journal of physiology.

[347]  V. Edgerton,et al.  Use-Dependent Modulation of Inhibitory Capacity in the Feline Lumbar Spinal Cord , 2002, The Journal of Neuroscience.

[348]  P. Winn,et al.  Deep Brain Stimulation of Different Pedunculopontine Targets in a Novel Rodent Model of Parkinsonism , 2015, The Journal of Neuroscience.

[349]  Naoki Yoshimura,et al.  Anatomy and physiology of the lower urinary tract. , 2015, Handbook of clinical neurology.

[350]  Dopaminergic influences on swallowing , 1977, Neuropharmacology.

[351]  G. Holstege,et al.  Pontine control of ejaculation and female orgasm. , 2013, The journal of sexual medicine.

[352]  S. Miller,et al.  Functional organization of long ascending propriospinal pathways linking lumbo-sacral and cervical segments in the cat. , 1973, Brain research.

[353]  Serge Rossignol,et al.  Spinal Cord Injury: Time to Move? , 2007, The Journal of Neuroscience.

[354]  I. Abdel-Hamid,et al.  The drug treatment of delayed ejaculation , 2016, Translational andrology and urology.

[355]  Toshiaki Endo,et al.  Genetic Ablation of V2a Ipsilateral Interneurons Disrupts Left-Right Locomotor Coordination in Mammalian Spinal Cord , 2008, Neuron.

[356]  F. Heredia-López,et al.  Quinolinic acid lesions of the pedunculopontine nucleus impair sleep architecture, but not locomotion, exploration, emotionality or working memory in the rat , 2011, Behavioural Brain Research.

[357]  J. Duysens,et al.  Significance of load receptor input during locomotion: a review. , 2000, Gait & posture.

[358]  D. Vergé,et al.  Identification of lumbar spinal neurons controlling simultaneously the prostate and the bulbospongiosus muscles in the rat , 2006, Neuroscience.

[359]  Cindy F Yang,et al.  Efferent projections of excitatory and inhibitory preBötzinger Complex neurons , 2018, The Journal of comparative neurology.

[360]  T. Brown The intrinsic factors in the act of progression in the mammal , 1911 .

[361]  R. Pehrson,et al.  CNS Involvement in Overactive Bladder , 2012, Drugs.

[362]  Keir G. Pearson,et al.  Descending command systems for the initiation of locomotion in mammals , 2008, Brain Research Reviews.

[363]  D. Magnuson,et al.  Hindlimb Stretching Alters Locomotor Function After Spinal Cord Injury in the Adult Rat , 2015, Neurorehabilitation and neural repair.

[364]  Jörg Striessnig,et al.  Cav1.2 and Cav1.3 L-type calcium channels regulate dopaminergic firing activity in the mouse ventral tegmental area. , 2014, Journal of neurophysiology.

[365]  D. Verdier,et al.  Ion Homeostasis in Rhythmogenesis: The Interplay Between Neurons and Astroglia. , 2015, Physiology.

[366]  Ole Kiehn,et al.  Organization of left–right coordination in the mammalian locomotor network , 2002, Brain Research Reviews.

[367]  F. Clarac,et al.  Reversible Disorganization of the Locomotor Pattern after Neonatal Spinal Cord Transection in the Rat , 2003, The Journal of Neuroscience.

[368]  V. Mushahwar,et al.  Locomotor-Related Networks in the Lumbosacral Enlargement of the Adult Spinal Cat: Activation Through Intraspinal Microstimulation , 2006, IEEE Transactions on Neural Systems and Rehabilitation Engineering.

[369]  M. Perreault,et al.  Organization of pontine reticulospinal inputs to motoneurons controlling axial and limb muscles in the neonatal mouse. , 2014, Journal of neurophysiology.

[370]  Shapkova Ey,et al.  Two types of motor modulation underlying human stepping evoked by spinal cord electrical stimulation (SCES). , 2001 .

[371]  Simon M. Danner,et al.  Spinal Rhythm Generation by Step-Induced Feedback and Transcutaneous Posterior Root Stimulation in Complete Spinal Cord–Injured Individuals , 2016, Neurorehabilitation and neural repair.

[372]  Ole Kiehn,et al.  Activity of Renshaw Cells during Locomotor-Like Rhythmic Activity in the Isolated Spinal Cord of Neonatal Mice , 2006, The Journal of Neuroscience.

[373]  V R Edgerton,et al.  [Transcutaneous electrical stimulation of the spinal cord: non-invasive tool for activation of locomotor circuitry in human]. , 2012, Fiziologiia cheloveka.

[374]  A. Hodgkin,et al.  A quantitative description of membrane current and its application to conduction and excitation in nerve , 1952, The Journal of physiology.

[375]  J. Furness,et al.  Site and mechanism of the colokinetic action of the ghrelin receptor agonist, HM01 , 2015, Neurogastroenterology and motility : the official journal of the European Gastrointestinal Motility Society.

[376]  Linying Wu,et al.  Persistent sodium current contributes to induced voltage oscillations in locomotor-related hb9 interneurons in the mouse spinal cord. , 2008, Journal of neurophysiology.

[377]  O. Kiehn Decoding the organization of spinal circuits that control locomotion , 2016, Nature Reviews Neuroscience.

[378]  Hideyuki Yamamoto,et al.  Action of naftopidil on spinal serotonergic neurotransmission for inhibition of the micturition reflex in rats , 2017, Neurourology and urodynamics.

[379]  Jan-Marino Ramirez,et al.  Behavioral/systems/cognitive Substance P-mediated Modulation of Pacemaker Properties in the Mammalian Respiratory Network , 2022 .

[380]  A. Prochazka,et al.  Intraspinal micro stimulation generates locomotor-like and feedback-controlled movements , 2002, IEEE Transactions on Neural Systems and Rehabilitation Engineering.

[381]  Ansgar Büschges,et al.  Organizing network action for locomotion: Insights from studying insect walking , 2008, Brain Research Reviews.

[382]  Miguel Valencia,et al.  Decoding brain state transitions in the pedunculopontine nucleus: cooperative phasic and tonic mechanisms , 2015, Front. Neural Circuits.

[383]  R. Harris-Warrick,et al.  Serotonin modulates dendritic calcium influx in commissural interneurons in the mouse spinal locomotor network. , 2007, Journal of neurophysiology.

[384]  M. Goulding,et al.  Functional Subpopulations of V3 Interneurons in the Mature Mouse Spinal Cord , 2013, The Journal of Neuroscience.

[385]  C. Hubscher,et al.  Responses of thalamic neurons to input from the male genitalia. , 2003, Journal of neurophysiology.

[386]  Noboru Iwagaki,et al.  Activation of group I metabotropic glutamate receptors modulates locomotor-related motoneuron output in mice. , 2011, Journal of neurophysiology.

[387]  Robert M. Brownstone,et al.  Strategies for delineating spinal locomotor rhythm-generating networks and the possible role of Hb9 interneurones in rhythmogenesis , 2008, Brain Research Reviews.

[388]  P. Guertin,et al.  Role of spinal 5‐HT2 receptor subtypes in quipazine‐induced hindlimb movements after a low‐thoracic spinal cord transection , 2008, The European journal of neuroscience.

[389]  F Lacquaniti,et al.  Spinal cord maps of spatiotemporal alpha-motoneuron activation in humans walking at different speeds. , 2006, Journal of neurophysiology.

[390]  N. A. Croll,et al.  Integrated behaviour in the feeding phase of Caenorhabditis elegans (Nematoda) , 2009 .

[391]  Hans Hultborn,et al.  Thomas Graham Brown (1882–1965), Anders Lundberg (1920–), and the neural control of stepping , 2008, Brain Research Reviews.

[392]  A. Jean Brain stem control of swallowing: neuronal network and cellular mechanisms. , 2001, Physiological reviews.

[393]  P. Guertin Central Pattern Generator for Locomotion: Anatomical, Physiological, and Pathophysiological Considerations , 2013, Front. Neur..

[394]  J. Hoover,et al.  Retrograde labeling of lumbosacral interneurons following injections of red and green fluorescent microspheres into hindlimb motor nuclei of the cat. , 1992, Somatosensory & motor research.

[395]  Y. Jan,et al.  Transmembrane channel-like (tmc) gene regulates Drosophila larval locomotion , 2016, Proceedings of the National Academy of Sciences.

[396]  M. Oudega,et al.  Degenerative and spontaneous regenerative processes after spinal cord injury. , 2006, Journal of neurotrauma.

[397]  P. Guertin,et al.  Double-Blind, Placebo-Controlled, Randomized Phase I/IIa Study (Safety and Efficacy) with Buspirone/Levodopa/Carbidopa (SpinalonTM) in Subjects with Complete AIS A or Motor-Complete AIS B Spinal Cord Injury. , 2017, Current pharmaceutical design.

[398]  R. Harris-Warrick Neuromodulation and flexibility in Central Pattern Generator networks , 2011, Current Opinion in Neurobiology.

[399]  S. Rossignol,et al.  Contribution of cutaneous inputs from the hindpaw to the control of locomotion. II. Spinal cats. , 2003, Journal of neurophysiology.

[400]  Phasic modulation of postural activation patterns during human walking. , 1988, Progress in brain research.

[401]  A. Jean,et al.  Activation of N‐methyl‐D‐aspartate Receptors Induces Endogenous Rhythmic Bursting Activities in Nucleus Tractus Solitarii Neurons: An Intracellular Study on Adult Rat Brainstem Slices , 1991, The European journal of neuroscience.

[402]  Thomas Deller,et al.  Neuroanatomical characteristics of the human pre-Bötzinger complex and its involvement in neurodegenerative brainstem diseases. , 2011, Brain : a journal of neurology.

[403]  L. Branco,et al.  Brain monoaminergic neurons and ventilatory control in vertebrates , 2008, Respiratory Physiology & Neurobiology.

[404]  S. Miller,et al.  The spinal locomotor generator , 1977, Experimental Brain Research.

[405]  C. Leonard,et al.  Altered precision grasping in stumptail macaques after fasciculus cuneatus lesions. , 1992, Somatosensory & motor research.

[406]  J. Greer,et al.  Serotonergic and noradrenergic effects on respiratory neural discharge in the medullary slice preparation of neonatal rats , 1996, Pflügers Archiv.

[407]  G. Miles,et al.  Adenosine-mediated modulation of ventral horn interneurons and spinal motoneurons in neonatal mice , 2015, Journal of neurophysiology.

[408]  Anatol C. Kreitzer,et al.  Cell-Type-Specific Control of Brainstem Locomotor Circuits by Basal Ganglia , 2016, Cell.

[409]  P. Holmes,et al.  The nature of the coupling between segmental oscillators of the lamprey spinal generator for locomotion: A mathematical model , 1982, Journal of mathematical biology.

[410]  A. Lundberg,et al.  Inhibition of transmission in the recurrent inhibitory pathway to motoneurones. , 1969, Brain research.

[411]  O. Kiehn Locomotor circuits in the mammalian spinal cord. , 2006, Annual review of neuroscience.

[412]  M. L. Sotgiu,et al.  Single unit activity in lateral reticular nucleus during cortically evoked masticatory movements in rabbits , 1985, Brain Research.

[413]  D. McCrea,et al.  Organization of mammalian locomotor rhythm and pattern generation , 2008, Brain Research Reviews.

[414]  T. Bem,et al.  Fictive locomotion in the adult thalamic rat , 2004, Experimental Brain Research.

[415]  Locomotor rhythm evoked by ventrolateral funiculus stimulation in the neonatal rat spinal cord in vitro. , 1997, Journal of neurophysiology.

[416]  P. Whelan,et al.  Dopaminergic Modulation of Spinal Neuronal Excitability , 2007, The Journal of Neuroscience.

[417]  H Hultborn,et al.  Transmission in the pathway of reciprocal Ia inhibition to motoneurones and its control during the tonic stretch reflex. , 1976, Progress in brain research.

[418]  K. Sillar,et al.  A role for slow NMDA receptor‐mediated, intrinsic neuronal oscillations in the control of fast fictive swimming in Xenopus laevis larvae , 1998, The European journal of neuroscience.

[419]  Elizabeth A. Crane,et al.  Mammalian Oral Rhythms and Motor Control , 2011 .

[420]  Ole Kiehn,et al.  Phenotypic Characterization of Speed-Associated Gait Changes in Mice Reveals Modular Organization of Locomotor Networks , 2015, Current Biology.

[421]  F. Gudat,et al.  [Normal weight of the brain in adults in relation to age, sex, body height and weight]. , 1994, Der Pathologe.

[422]  R. Sakakibara,et al.  Brainstem Stroke and Increased Anal Tone , 2012, Lower urinary tract symptoms.

[423]  S. Rossignol,et al.  On the initiation of the swing phase of locomotion in chronic spinal cats , 1978, Brain Research.

[424]  A. Borgdorff,et al.  Ejaculation elicited by microstimulation of lumbar spinothalamic neurons. , 2008, European urology.

[425]  D. Bayliss,et al.  Neural Control of Breathing and CO2 Homeostasis , 2015, Neuron.

[426]  S. Grillner,et al.  Neural networks for vertebrate locomotion. , 1996, Scientific American.

[427]  Hong-tian Zhang,et al.  Temporal changes in the expression of some neurotrophins in spinal cord transected adult rats , 2007, Neuropeptides.

[428]  G. M. Hughes,et al.  The Co-ordination of Swimmeret Movements in the Crayfish, Procambarus Clarkii (Girard) , 1960 .

[429]  P. Bois,et al.  Molecular regulation and pharmacology of pacemaker channels. , 2007, Current pharmaceutical design.

[430]  Toshiaki Endo,et al.  Excitatory components of the mammalian locomotor CPG , 2008, Brain Research Reviews.

[431]  M. Takaki,et al.  Role and localization of a region in the pons which has a descending inhibitory influence on sympathetically mediated inhibition of the recto-rectal reflex of guinea pigs , 1983, Pflügers Archiv.

[432]  Eadweard Muybridge,et al.  Muybridge's Complete human and animal locomotion : all 781 plates from the 1887 Animal locomotion , 1979 .

[433]  S. Grillner Neuronal networks in motion from ion channels to behaviour. , 2006, Anales de la Real Academia Nacional de Medicina.

[434]  V. Gurfinkel,et al.  Tonic and Rhythmic Spinal Activity Underlying Locomotion. , 2017, Current pharmaceutical design.

[435]  B. Bussel,et al.  Myoclonus in a patient with spinal cord transection. Possible involvement of the spinal stepping generator. , 1988, Brain : a journal of neurology.

[436]  M. Kogo,et al.  Localization of oral–motor rhythmogenic circuits in the isolated rat brainstem preparation , 1999, Brain Research.

[437]  L. Vinay,et al.  Do Pacemakers Drive the Central Pattern Generator for Locomotion in Mammals? , 2010, The Neuroscientist : a review journal bringing neurobiology, neurology and psychiatry.

[438]  C. Stucky,et al.  Species and strain differences in rodent sciatic nerve anatomy: Implications for studies of neuropathic pain , 2008, PAIN.

[439]  K. Takakusaki Functional Neuroanatomy for Posture and Gait Control , 2017, Journal of movement disorders.

[440]  D. McCrea,et al.  Deletions of rhythmic motoneuron activity during fictive locomotion and scratch provide clues to the organization of the mammalian central pattern generator. , 2005, Journal of neurophysiology.

[441]  J. Ramirez,et al.  Selective lesioning of the cat pre‐Bötzinger complex in vivo eliminates breathing but not gasping , 1998, The Journal of physiology.

[442]  J. Hounsgaard,et al.  l-Type calcium channels but not N-methyl-d-aspartate receptor channels mediate rhythmic activity induced by cholinergic agonist in motoneurons from turtle spinal cord slices , 1999, Neuroscience Letters.

[443]  O. Kiehn,et al.  Glutamatergic Mechanisms for Speed Control and Network Operation in the Rodent Locomotor CPG , 2010, Front. Neural Circuits.

[444]  Ole Kiehn,et al.  Descending Command Neurons in the Brainstem that Halt Locomotion , 2015, Cell.

[445]  J. Cazalets,et al.  Coupling between lumbar and sacral motor networks in the neonatal rat spinal cord , 2000, The European journal of neuroscience.

[446]  L. Álvaro,et al.  Cataplexy associated with midbrain lesion , 1995, Neurology.

[447]  Douglas G. Stuart,et al.  Neural Control of Locomotion , 1976, Advances in Behavioral Biology.

[448]  A. Fernández-Guasti,et al.  Unraveling the modulatory actions of serotonin on male rat sexual responses , 2015, Neuroscience & Biobehavioral Reviews.

[449]  Thomas Brandt,et al.  Differential effects of vestibular stimulation on walking and running , 2000, Neuroreport.

[450]  S. Micera,et al.  Restoring Voluntary Control of Locomotion after Paralyzing Spinal Cord Injury , 2012, Science.

[451]  B. Schurch,et al.  Oral nitric oxide donors: a new pharmacological approach to detrusor-sphincter dyssynergia in spinal cord injured patients? , 2004, European urology.

[452]  S. Itohara,et al.  Optogenetic dissection reveals multiple rhythmogenic modules underlying locomotion , 2013, Proceedings of the National Academy of Sciences.

[453]  S. Rossignol,et al.  Mid-lumbar segments are needed for the expression of locomotion in chronic spinal cats. , 2005, Journal of neurophysiology.

[454]  S. Herculano‐Houzel The Human Brain in Numbers: A Linearly Scaled-up Primate Brain , 2009, Front. Hum. Neurosci..

[455]  Bradford T. Stokes,et al.  Behavioral and Histological Outcomes Following Graded Spinal Cord Contusion Injury in the C57Bl/6 Mouse , 2001, Experimental Neurology.

[456]  Fan Wang,et al.  Monosynaptic premotor circuit tracing reveals neural substrates for oro-motor coordination , 2014, eLife.

[457]  K. Pearson Role of sensory feedback in the control of stance duration in walking cats , 2008, Brain Research Reviews.

[458]  L. Leocani,et al.  Cyclic modulation of the H-reflex in a wrist flexor during rhythmic flexion-extension movements of the ipsilateral foot , 1998, Experimental Brain Research.

[459]  C. Fowler,et al.  Intravesical capsaicin for treatment of detrusor hyperreflexia. , 1994, Journal of Neurology Neurosurgery & Psychiatry.

[460]  Francesco Lacquaniti,et al.  Locomotor-Like Leg Movements Evoked by Rhythmic Arm Movements in Humans , 2014, PloS one.

[461]  S. Mori,et al.  Pontine-induced generalized suppression of postural muscle tone in a reflexively standing acute decerebrate cat , 1993, Neuroscience Research.

[462]  S. Rossignol,et al.  Initiation and modulation of the locomotor pattern in the adult chronic spinal cat by noradrenergic, serotonergic and dopaminergic drugs , 1991, Brain Research.

[463]  C. Morgado-Valle,et al.  Pre-Bötzinger complex: Generation and modulation of respiratory rhythm. , 2016, Neurologia.

[464]  K. Westberg,et al.  Identification of brainstem interneurons projecting to the trigeminal motor nucleus and adjacent structures in the rabbit , 2000, Journal of Chemical Neuroanatomy.

[465]  H. Schrøder,et al.  Anatomical and pathoanatomical studies on the spinal efferent systems innervating pelvic structures. 1. Organization of spinal nuclei in animals. 2. The nucleus X-pelvic motor system in man. , 1985, Journal of the autonomic nervous system.

[466]  F. Clarac,et al.  GABAergic inactivation of the central pattern generators for locomotion in isolated neonatal rat spinal cord. , 1994, The Journal of physiology.

[467]  P. Fuller,et al.  Movement- and behavioral state-dependent activity of pontine reticulospinal neurons , 2012, Neuroscience.

[468]  P. Halpern,et al.  Mechanics of respiratory muscles , 2008, Respiratory Physiology & Neurobiology.

[469]  K. Pearson,et al.  Neural circuits in the flight system of the locust. , 1985, Journal of neurophysiology.

[470]  F. Clarac,et al.  Activation of the central pattern generators for locomotion by serotonin and excitatory amino acids in neonatal rat. , 1992, The Journal of physiology.

[471]  Generation and peripheral control of locomotor rhythm , 1992 .

[472]  Cheryl C. H. Yang,et al.  Electrical stimulation of the rostral ventrolateral medulla promotes wakefulness in rats. , 2013, Sleep medicine.

[473]  Ilse Jonkers,et al.  The flexion synergy, mother of all synergies and father of new models of gait , 2013, Front. Comput. Neurosci..

[474]  C. Saper,et al.  A putative flip–flop switch for control of REM sleep , 2006, Nature.

[475]  S. Grillner,et al.  On the central generation of locomotion in the low spinal cat , 1979, Experimental Brain Research.

[476]  P. Guertin,et al.  Neuromodulation of Spinal Locomotor Networks in Rodents. , 2017, Current pharmaceutical design.

[477]  C. Perret,et al.  Interlimb coordination during fictive locomotion in the thalamic cat , 2004, Experimental Brain Research.

[478]  E Jankowska,et al.  Candidate interneurones mediating group I disynaptic EPSPs in extensor motoneurones during fictive locomotion in the cat , 2005, The Journal of physiology.

[479]  A. Kolta,et al.  Properties and interconnections of trigeminal interneurons of the lateral pontine reticular formation in the rat. , 2001, Journal of neurophysiology.

[480]  B S Nashold,et al.  Spinal cord stimulation and bladder function in normal and paraplegic animals. , 1972, Journal of neurosurgery.

[481]  François Clarac,et al.  Some historical reflections on the neural control of locomotion , 2008, Brain Research Reviews.

[482]  Hugo J. Bellen,et al.  100 years of Drosophila research and its impact on vertebrate neuroscience: a history lesson for the future , 2010, Nature Reviews Neuroscience.

[483]  H Hultborn,et al.  Possible functions of transmitter-controlled plateau potentials in alpha motoneurones. , 1989, Progress in brain research.

[484]  D. Higgins A pivotal role of lumbar spinothalamic cells in regulation of ejaculation via intraspinal connections , 2012 .

[485]  A. B. Wells,et al.  Afferent connections of the parvocellular subparafascicular thalamic nucleus in the rat: Evidence for functional subdivisions , 2003, The Journal of comparative neurology.

[486]  Charles Watson,et al.  The Mouse Nervous System. , 2012 .

[487]  J. C. Moore,et al.  The Golgi tendon organ: a review and update. , 1984, The American journal of occupational therapy : official publication of the American Occupational Therapy Association.

[488]  Ronald M. Harris-Warrick,et al.  Frequency-dependent recruitment of V2a interneurons during fictive locomotion in the mouse spinal cord , 2011, Nature communications.

[489]  Hiroshi Kohsaka,et al.  Neural Circuits Underlying Fly Larval Locomotion , 2017, Current pharmaceutical design.

[490]  J. Furness,et al.  Neural pathways for colorectal control, relevance to spinal cord injury and treatment: a narrative review , 2018, Spinal Cord.

[491]  S. Grillner,et al.  Peripheral control of the cat's step cycle. II. Entrainment of the central pattern generators for locomotion by sinusoidal hip movements during "fictive locomotion.". , 1983, Acta physiologica Scandinavica.

[492]  S. H. Chandler,et al.  Participation of a persistent sodium current and calcium-activated nonspecific cationic current to burst generation in trigeminal principal sensory neurons. , 2013, Journal of neurophysiology.

[493]  G. Székely,et al.  The activity pattern of limb muscles in freely moving normal and deafferented newts , 1969, Experimental Brain Research.

[494]  L. Jordan,et al.  Stimulation of the parapyramidal region of the neonatal rat brain stem produces locomotor-like activity involving spinal 5-HT7 and 5-HT2A receptors. , 2005, Journal of neurophysiology.

[495]  Timothy J Lewis,et al.  Robust phase-waves in chains of half-center oscillators , 2017, Journal of mathematical biology.

[496]  M. Bélanger,et al.  Blood pressure changes during sexual stimulation, ejaculation and midodrine treatment in men with spinal cord injury , 2008, BJU international.

[497]  Pierre A Guertin,et al.  Chemical and electrical stimulation induce rhythmic motor activity in an in vitro preparation of the spinal cord from adult turtles , 1998, Neuroscience Letters.

[498]  Paul S. G. Stein Neurons, networks, and motor behavior , 1999 .

[499]  A. Jean [Localization and activity of medullary swallowing neurones]. , 1972, Journal de physiologie.

[500]  E. Kandel,et al.  The Molecular and Systems Biology of Memory , 2014, Cell.

[501]  H. Koester,et al.  Correlations Decrease with Propagation of Spiking Activity in the Mouse Barrel Cortex , 2011, Front. Neural Circuits.

[502]  Russell S. Ray,et al.  Respiratory Network Stability and Modulatory Response to Substance P Require Nalcn , 2017, Neuron.

[503]  R. W. Doty,et al.  Effect of medullary lesions on coordination of deglutition. , 1967, Experimental neurology.

[504]  E. Bizzi,et al.  The construction of movement by the spinal cord , 1999, Nature Neuroscience.

[505]  M. Antal,et al.  Localization of last‐order premotor interneurons in the lumbar spinal cord of rats , 1997, The Journal of comparative neurology.

[506]  Keir G Pearson,et al.  Generating the walking gait: role of sensory feedback. , 2004, Progress in brain research.

[507]  J. Bosma,et al.  Deglutition: pharyngeal stage. , 1957, Physiological reviews.

[508]  O. Kiehn,et al.  Spinal Hb9::Cre-derived excitatory interneurons contribute to rhythm generation in the mouse , 2017, Scientific Reports.

[509]  Mark L. Latash,et al.  Progress in Motor Control , 2016, Advances in Experimental Medicine and Biology.

[510]  N. Mellen,et al.  Neuromodulation of the locomotor network by dopamine in the isolated spinal cord of newborn rat , 2004, The European journal of neuroscience.

[511]  H. Kohsaka,et al.  Serotonin and Downstream Leucokinin Neurons Modulate Larval Turning Behavior in Drosophila , 2014, The Journal of Neuroscience.

[512]  Jørn Hounsgaard,et al.  Conditional intrinsic voltage oscillations in mature vertebrate neurons undergo specific changes in culture. , 2006, Journal of neurophysiology.

[513]  Ole Kiehn,et al.  Firing Properties of Identified Interneuron Populations in the Mammalian Hindlimb Central Pattern Generator , 2002, The Journal of Neuroscience.

[514]  D. Bieger,et al.  Role of solitarial GABAergic mechanisms in control of swallowing. , 1991, The American journal of physiology.

[515]  [Role of Ca(2+) in the pacemaker-like property of spinal motoneurons]. , 2007, Medecine sciences : M/S.

[516]  R. J. Gregor,et al.  Effects of training on the recovery of full-weight-bearing stepping in the adult spinal cat , 1986, Experimental Neurology.

[517]  Pierre A. Guertin,et al.  Rôle du Ca2+ dans la propriété de type pacemaker des motoneurones spinaux , 2007 .

[518]  T. Hökfelt,et al.  Immunohistochemical evidence for a spinothalamic pathway co-containing cholecystokinin- and galanin-like immunoreactivities in the rat , 1987, Neuroscience.

[519]  S. Grillner Control of Locomotion in Bipeds, Tetrapods, and Fish , 1981 .

[520]  P. Flourens Recherches expérimentales sur les propriétés et les fonctions du système nerveux dans les animaux vertébrés , 1842 .

[521]  P. Denys,et al.  Human spinal ejaculation generator , 2017, Annals of neurology.

[522]  S. Harkema,et al.  Effects of exercise training on urinary tract function after spinal cord injury. , 2016, American journal of physiology. Renal physiology.

[523]  C. Sherrington,et al.  Reflexes in Response to Stretch (Myotatic Reflexes) , 1924 .

[524]  P. Denys,et al.  The spinal control of ejaculation revisited: a systematic review and meta-analysis of anejaculation in spinal cord injured patients. , 2013, Human reproduction update.

[525]  P. Guertin,et al.  Key central pattern generators of the spinal cord , 2009, Journal of neuroscience research.

[526]  A. Car,et al.  Déglutitions et contractions oesophagiennes réflexes produites par la stimulation du bulbe rachidien , 2004, Experimental Brain Research.

[527]  M. Perreault,et al.  Pontine reticulospinal projections in the neonatal mouse: Internal organization and axon trajectories , 2016, The Journal of comparative neurology.

[528]  Ole Kiehn,et al.  Locomotor Rhythm Generation Linked to the Output of Spinal Shox2 Excitatory Interneurons , 2013, Neuron.

[529]  S. Rossignol,et al.  Recovery of locomotion after chronic spinalization in the adult cat , 1987, Brain Research.

[530]  R. R. Sturrock,et al.  Neural Origin of Rhythmic Movements , 1984 .

[531]  J. Barthe,et al.  Long-lasting recovery of locomotor function in chronic spinal rat following chronic combined pharmacological stimulation of serotonergic receptors with 8-OHDPAT and quipazine , 2005, Neuroscience Letters.

[532]  L. Looger,et al.  The Role of the TRP Channel NompC in Drosophila Larval and Adult Locomotion , 2010, Neuron.

[533]  V. M. Pokrovskii Integration of the heart rhythmogenesis levels: heart rhythm generator in the brain. , 2005, Journal of integrative neuroscience.

[534]  C. Pratt,et al.  Ia inhibitory interneurons and Renshaw cells as contributors to the spinal mechanisms of fictive locomotion. , 1987, Journal of neurophysiology.

[535]  J. Fichna,et al.  Efficacy and Safety of Serotonin Receptor Ligands in the Treatment of Irritable Bowel Syndrome: A Review. , 2017, Current drug targets.

[536]  R. Brownstone,et al.  Spinal microcircuits comprising dI3 interneurons are necessary for motor functional recovery following spinal cord transection , 2016, eLife.

[537]  D. Richter,et al.  Voltage-dependent currents in neurones of the nuclei of the solitary tract of rat brainstem slices , 1986, Pflügers Archiv European Journal of Physiology.

[538]  R. Harris-Warrick,et al.  Electrophysiological Characterization of V2a Interneurons and Their Locomotor-Related Activity in the Neonatal Mouse Spinal Cord , 2010, The Journal of Neuroscience.

[539]  K. McVary,et al.  A model for the study of sexual function in anesthetized male and female rats. , 1991, The American journal of physiology.

[540]  J. Nielsen,et al.  Positive force feedback in human walking , 2007, The Journal of physiology.

[541]  M. Miyazato,et al.  Central nervous control of micturition and urine storage. , 2005, Journal of smooth muscle research = Nihon Heikatsukin Gakkai kikanshi.

[542]  K. Pearson,et al.  Fictive motor patterns in chronic spinal cats. , 1991, Journal of neurophysiology.

[543]  P. Guertin,et al.  Functional and Physiological Effects of Treadmill Training Induced by Buspirone, Carbidopa, and L-DOPA in Clenbuterol-Treated Paraplegic Mice , 2012, Neurorehabilitation and neural repair.

[544]  E. Jankowska Interneuronal relay in spinal pathways from proprioceptors , 1992, Progress in Neurobiology.

[545]  T. Jessell,et al.  Genetic Identification of Spinal Interneurons that Coordinate Left-Right Locomotor Activity Necessary for Walking Movements , 2004, Neuron.

[546]  S. Rossignol,et al.  Differential Effects of the Noradrenergic Agonist Clonidine on the Locomotion of Intact, Partially and Completely Spinalized Adult Cats a , 1998, Annals of the New York Academy of Sciences.

[547]  D. Chew,et al.  Electrical nerve stimulation to promote micturition in spinal cord injury patients: A review of current attempts , 2016, Neurourology and urodynamics.

[548]  S. Hochman Metabolic recruitment of spinal locomotion: intracellular neuromodulation by trace amines and their receptors , 2015, Neural regeneration research.

[549]  L. Coolen,et al.  A pivotal role of lumbar spinothalamic cells in the regulation of ejaculation via intraspinal connections. , 2012, The journal of sexual medicine.

[550]  E. Merrill,et al.  Monosynaptic inhibition of phrenic motoneurons: a long descending projection from Botzinger neurons , 1984, The Journal of neuroscience : the official journal of the Society for Neuroscience.

[551]  Dimitri Ryczko,et al.  Chapter 4--supraspinal control of locomotion: the mesencephalic locomotor region. , 2011, Progress in brain research.

[552]  J. Dempsey,et al.  Control of breathing during exercise. , 2012, Comprehensive Physiology.

[553]  Christian Gratzke,et al.  Pharmacology of the lower urinary tract , 2014, Indian journal of urology : IJU : journal of the Urological Society of India.

[554]  E. Makela,et al.  Selective Serotonin-Reuptake Inhibitors in the Treatment of Premature Ejaculation , 2005, The Annals of pharmacotherapy.

[555]  Fan Wang,et al.  How the brainstem controls orofacial behaviors comprised of rhythmic actions , 2014, Trends in Neurosciences.

[556]  A. Nistri,et al.  Effect of metabotropic glutamate receptor activity on rhythmic discharges of the neonatal rat spinal cord in vitro , 2003, Experimental Brain Research.

[557]  M. Dimitrijevic,et al.  Evidence for a Spinal Central Pattern Generator in Humans a , 1998, Annals of the New York Academy of Sciences.

[558]  J. Feldman,et al.  Understanding the rhythm of breathing: so near, yet so far. , 2013, Annual review of physiology.

[559]  R. Stornetta,et al.  The retrotrapezoid nucleus stimulates breathing by releasing glutamate in adult conscious mice , 2015, The European journal of neuroscience.

[560]  I. Aydogdu,et al.  Neurophysiology of swallowing , 2003, Clinical Neurophysiology.

[561]  S. Rossignol,et al.  Autoradiographic study of α1‐ and α2‐noradrenergic and serotonin1A receptors in the spinal cord of normal and chronically transected cats , 1999 .

[562]  M. Shafei,et al.  Effect of glutamate stimulation of the cuneiform nucleus on cardiovascular regulation in anesthetized rats: Role of the pontine Kolliker–Fuse nucleus , 2011, Brain Research.

[563]  Yoshio Nakamura,et al.  Generation of masticatory rhythm in the brainstem , 1995, Neuroscience Research.

[564]  C. M. Bastiaanse,et al.  Neuronal coordination of arm and leg movements during human locomotion , 2001, The European journal of neuroscience.

[565]  John C. Rothwell,et al.  What do reflex and voluntary mean? Modern views on an ancient debate , 2000, Experimental Brain Research.

[566]  D. Castell,et al.  Effect of dry swallows and wet swallows of different volumes on esophageal peristalsis. , 1975, Journal of applied physiology.

[567]  Turgay Akay,et al.  V3 Spinal Neurons Establish a Robust and Balanced Locomotor Rhythm during Walking , 2008, Neuron.

[568]  S. Rossignol,et al.  Effects of intrathecal glutamatergic drugs on locomotion. II. NMDA and AP-5 in intact and late spinal cats. , 2003, Journal of neurophysiology.

[569]  M. Kogo,et al.  Effect of Serotonin (5-HT) on Trigeminal Rhythmic Activities Generated in in vitro Brainstem Block Preparations , 2002, Journal of dental research.

[570]  M. Yoshiyama,et al.  Supraspinal and spinal α-amino-3-hydroxy-5-methylisoxazole-4-propionic acid and N-methyl-d-aspartate glutamatergic control of the micturition reflex in the urethane-anesthetized rat , 2005, Neuroscience.

[571]  Jia-Jin Chen,et al.  Roles of glutamatergic and serotonergic mechanisms in reflex control of the external urethral sphincter in urethane-anesthetized female rats. , 2006, American journal of physiology. Regulatory, integrative and comparative physiology.

[572]  R. Miselis,et al.  Central representation of bladder and colon revealed by dual transsynaptic tracing in the rat: substrates for pelvic visceral coordination , 2003, The European journal of neuroscience.

[573]  C. Morgado-Valle,et al.  The pre-Bötzinger complex: Generation and modulation of respiratory rhythm , 2019, Neurología (English Edition).

[574]  J. Roppolo,et al.  The central neural pathways involved in micturition in the neonatal rat as revealed by the injection of pseudorabies virus into the urinary bladder , 1997, Neuroscience Letters.

[575]  A. Thévenon,et al.  Prise en charge des troubles de l’éjaculation par chlorhydrate de midodrine (Gutron®) per os. Étude rétrospective chez 16 sujets , 2005 .

[576]  Y. Oku,et al.  Location and axonal projection of one type of swallowing interneurons in cat medulla , 1993, Brain Research.

[577]  Ilya A. Rybak,et al.  Activity-Dependent Changes in Extracellular Ca2+ and K+ Reveal Pacemakers in the Spinal Locomotor-Related Network , 2013, Neuron.

[578]  B. Nigg,et al.  The effect of changes in foot sensation on plantar pressure and muscle activity. , 2001, Clinical biomechanics.

[579]  L. Coolen,et al.  Activation of galanin and cholecystokinin receptors in the lumbosacral spinal cord is required for ejaculation in male rats , 2017, The European journal of neuroscience.

[580]  W. D. de Groat,et al.  Induction of c-fos expression in spinal neurons by nociceptive and nonnociceptive stimulation of LUT. , 1993, The American journal of physiology.

[581]  D. Griffiths,et al.  Neural control of the lower urinary tract. , 2015, Comprehensive Physiology.

[582]  L. Alexandre,et al.  Microinjection of the preferential dopamine receptor D3 agonist 7-hydroxy-N,N-di-n-propylaminotetralin hydrobromide into the hypothalamic medial preoptic area induced ejaculation in anesthetized rats , 2007, Neuroscience.

[583]  V. Braitenberg,et al.  Morphological observations on the cerebellar cortex , 1958, The Journal of comparative neurology.

[584]  A. Thevenon,et al.  [Treatment of ejaculation disorders by midodrine (Gutron) per os. Retrospective study of about 16 subjects]. , 2005, Annales de readaptation et de medecine physique : revue scientifique de la Societe francaise de reeducation fonctionnelle de readaptation et de medecine physique.

[585]  G. Wagner,et al.  Erection and ejaculation in man. Assessment of the electromyographic activity of the bulbocavernosus and ischiocavernosus muscles. , 1990, British journal of urology.

[586]  Qiao Lv,et al.  Identification of crucial genes associated with rat traumatic spinal cord injury , 2017, Molecular medicine reports.

[587]  H. Mizoguchi,et al.  Ejaculatory response induced by a 5-HT2 receptor agonist m-CPP in rats: Differential roles of 5-HT2 receptor subtypes , 2008, Pharmacology Biochemistry and Behavior.

[588]  R. Harris-Warrick,et al.  Postnatal emergence of serotonin-induced plateau potentials in commissural interneurons of the mouse spinal cord. , 2012, Journal of neurophysiology.

[589]  M. Sasaki Role of Barrington's nucleus in micturition , 2005, The Journal of comparative neurology.

[590]  Larry M. Jordan,et al.  Localization of a descending pathway in the spinal cord which is necessary for controlled treadmill locomotion , 1980, Neuroscience Letters.

[591]  Rune W. Berg,et al.  Neuronal Population Activity in Spinal Motor Circuits: Greater Than the Sum of Its Parts , 2017, Front. Neural Circuits.

[592]  K. Andersson,et al.  Beta3‐adrenoceptors in the rat sacral spinal cord and their functional relevance in micturition under normal conditions and in a model of partial urethral obstruction , 2011, Neurourology and urodynamics.

[593]  M. Goulding Circuits controlling vertebrate locomotion: moving in a new direction , 2009, Nature Reviews Neuroscience.

[594]  A. Lundberg,et al.  The effect of DOPA on the spinal cord. 6. Half-centre organization of interneurones transmitting effects from the flexor reflex afferents. , 1967, Acta physiologica Scandinavica.

[595]  P. Guertin Role of NMDA receptor activation in serotonin agonist-induced air-stepping in paraplegic mice , 2004, Spinal Cord.

[596]  K. Pearson Proprioceptive regulation of locomotion , 1995, Current Opinion in Neurobiology.

[597]  N. Watanabe,et al.  Gentle Mechanical Skin Stimulation Inhibits Micturition Contractions via the Spinal Opioidergic System and by Decreasing Both Ascending and Descending Transmissions of the Micturition Reflex in the Spinal Cord , 2015, PloS one.

[598]  E. Callaway,et al.  V1 spinal neurons regulate the speed of vertebrate locomotor outputs , 2006, Nature.

[599]  J. Menani,et al.  Facilitation of breathing by leptin effects in the central nervous system , 2016, The Journal of physiology.

[600]  G. Holstege,et al.  Location of motoneurons innervating soft palate, pharynx and upper esophagus. Anatomical evidence for a possible swallowing center in the pontine reticular formation. An HRP and autoradiographical tracing study. , 1983, Brain, behavior and evolution.

[601]  G. Paxinos,et al.  The Spinal Cord: A Christopher and Dana Reeve Foundation Text and Atlas , 2009 .

[602]  C. Pratt,et al.  Adaptive control for backward quadrupedal walking V. Mutable activation of bifunctional thigh muscles. , 1996, Journal of neurophysiology.

[603]  K. Yasuda,et al.  Postnatal changes in 5HT and NK1 receptors in rat trigeminal motor nucleus and surroundings , 2007, International Journal of Developmental Neuroscience.

[604]  U. Tan Uner Tan Syndrome: History, Clinical Evaluations, Genetics, and the Dynamics of Human Quadrupedalism , 2010, The open neurology journal.

[605]  I. Rybak,et al.  Brainstem respiratory networks: building blocks and microcircuits , 2013, Trends in Neurosciences.

[606]  S. Rossignol,et al.  Early locomotor training with clonidine in spinal cats. , 1998, Journal of neurophysiology.

[607]  R. Oosting,et al.  Serotonin 1A receptors and sexual behavior in female rats: A review , 2014, Pharmacology Biochemistry and Behavior.

[608]  A. Ijspeert,et al.  The Human Central Pattern Generator for Locomotion: Does It Exist and Contribute to Walking? , 2017, The Neuroscientist : a review journal bringing neurobiology, neurology and psychiatry.

[609]  S. Grillner,et al.  Neural control , 1996, Current Opinion in Neurobiology.

[610]  Susan J. Harkema,et al.  Plasticity of interneuronal networks of the functionally isolated human spinal cord , 2008, Brain Research Reviews.

[611]  P. Merton Speculations on the Servo‐Control of Movement , 2008 .

[612]  P. Nathan,et al.  Vestibulospinal, reticulospinal and descending propriospinal nerve fibres in man. , 1996, Brain : a journal of neurology.

[613]  Y. Arshavsky,et al.  Cerebellum and Rhythmical Movements , 1986 .

[614]  T. Yaksh Spinal drug delivery , 1999 .

[615]  F. Giuliano,et al.  The spinal generator of ejaculation: Functional consequences of chronic spinalization and effect of substance P in anesthetized rats , 2016, Neuroscience.

[616]  Edouard Pearlstein,et al.  Invertebrate preparations and their contribution to neurobiology in the second half of the 20th century , 2007, Brain Research Reviews.

[617]  Ilya A. Rybak,et al.  Structural and functional architecture of respiratory networks in the mammalian brainstem , 2009, Philosophical Transactions of the Royal Society B: Biological Sciences.

[618]  S. Nishizawa,et al.  Urinary Retention Associated with Stroke. , 2016, Journal of UOEH.

[619]  R. Wyman,et al.  MOTOR OUTPUT PATTERNS DURING RANDOM AND RHYTHMIC STIMULATION OF LOCUST THORACIC GANGLIA. , 1965, Biophysical journal.

[620]  L. Coolen,et al.  Activation of Mu or Delta Opioid Receptors in the Lumbosacral Spinal Cord Is Essential for Ejaculatory Reflexes in Male Rats , 2015, PloS one.