High-intensity transcranial magnetic stimulation reveals differential cortical contributions to prepared responses.
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Dana Maslovat | Joëlle Hajj | Anthony N Carlsen | Anthony N. Carlsen | Victoria Smith | N. Drummond | Neil M Drummond | Alexandra Leguerrier | J. Hajj | D. Maslovat | Victoria Smith | Alexandra Leguerrier | Dana Maslovat
[1] P. Ashby,et al. Mechanism of the silent period following transcranial magnetic stimulation Evidence from epidural recordings , 1999, Experimental Brain Research.
[2] Adam G. Davidson,et al. Bilateral actions of the reticulospinal tract on arm and shoulder muscles in the monkey: stimulus triggered averaging , 2006, Experimental Brain Research.
[3] Stuart N Baker,et al. The primate reticulospinal tract, hand function and functional recovery , 2011, The Journal of physiology.
[4] P. Brown,et al. Effects of combined cortical and acoustic stimuli on muscle activity , 2004, Experimental Brain Research.
[5] D J Sanderson,et al. Startle response of human neck muscles sculpted by readiness to perform ballistic head movements , 2001, The Journal of physiology.
[6] A. de Rugy,et al. Corticospinal modulation induced by sounds depends on action preparedness , 2014, The Journal of physiology.
[7] E. Rouiller,et al. Corticobulbar projections from distinct motor cortical areas to the reticular formation in macaque monkeys , 2017, The European journal of neuroscience.
[8] Anthony N. Carlsen,et al. Sub‐threshold transcranial magnetic stimulation applied after the go‐signal facilitates reaction time under control but not startle conditions , 2018, The European journal of neuroscience.
[9] Anthony N. Carlsen,et al. Preparation for voluntary movement in healthy and clinical populations: Evidence from startle , 2012, Clinical Neurophysiology.
[10] S. Rossi,et al. Non-invasive electrical and magnetic stimulation of the brain, spinal cord, roots and peripheral nerves: Basic principles and procedures for routine clinical and research application. An updated report from an I.F.C.N. Committee , 2015, Clinical Neurophysiology.
[11] Dana Maslovat,et al. Considerations for the use of a startling acoustic stimulus in studies of motor preparation in humans , 2011, Neuroscience & Biobehavioral Reviews.
[12] Claire F. Honeycutt,et al. Planning of Ballistic Movement following Stroke: Insights from the Startle Reflex , 2012, PloS one.
[13] H. Kuypers,et al. Anatomy of the Descending Pathways , 2011 .
[14] Mark G. Carpenter,et al. What startles tell us about control of posture and gait , 2015, Neuroscience & Biobehavioral Reviews.
[15] Walter Paulus,et al. Complete suppression of voluntary motor drive during the silent period after transcranial magnetic stimulation , 1999, Experimental Brain Research.
[16] K Matsuyama,et al. Vestibulospinal and reticulospinal neuronal activity during locomotion in the intact cat. I. Walking on a level surface. , 2000, Journal of neurophysiology.
[17] C. Chiu,et al. Cortical involvement in the StartReact effect , 2014, Neuroscience.
[18] P. Cheney,et al. Corticomotoneuronal postspike effects in shoulder, elbow, wrist, digit, and intrinsic hand muscles during a reach and prehension task. , 1998, Journal of neurophysiology.
[19] M Hallett,et al. Dissociation of the pathways mediating ipsilateral and contralateral motor‐evoked potentials in human hand and arm muscles , 1999, The Journal of physiology.
[20] E. Fetz,et al. Neural mechanisms underlying corticospinal and rubrospinal control of limb movements. , 1991, Progress in brain research.
[21] V. Weerdesteyn,et al. StartReact Restores Reaction Time in HSP: Evidence for Subcortical Release of a Motor Program , 2014, The Journal of Neuroscience.
[22] Per B. Brockhoff,et al. lmerTest Package: Tests in Linear Mixed Effects Models , 2017 .
[23] J R Tresilian,et al. Triggering prepared actions by sudden sounds: reassessing the evidence for a single mechanism , 2016, Acta physiologica.
[24] S. Baker,et al. Reticular formation responses to magnetic brain stimulation of primary motor cortex , 2012, The Journal of physiology.
[25] Michael A. Khan,et al. The effect of target size and inertial load on the control of rapid aiming movements A test of speed-sensitive and speed-insensitive strategies , 1999, Experimental Brain Research.
[26] Stuart N. Baker,et al. Convergence of Pyramidal and Medial Brain Stem Descending Pathways Onto Macaque Cervical Spinal Interneurons , 2010, Journal of neurophysiology.
[27] G. Deuschl,et al. Startle stimuli exert opposite effects on human cortical and spinal motor system excitability in leg muscles. , 2011, Physiological research.
[28] Marc H Schieber,et al. Bilateral Spike-Triggered Average Effects in Arm and Shoulder Muscles from the Monkey Pontomedullary Reticular Formation , 2007, The Journal of Neuroscience.
[29] B L Day,et al. Delay in the execution of voluntary movement by electrical or magnetic brain stimulation in intact man. Evidence for the storage of motor programs in the brain. , 1989, Brain : a journal of neurology.
[30] T. Tazoe,et al. Cortical and reticular contributions to human precision and power grip , 2017, The Journal of physiology.
[31] Stuart N. Baker,et al. Direct and Indirect Connections with Upper Limb Motoneurons from the Primate Reticulospinal Tract , 2009, The Journal of Neuroscience.
[32] William A. Hunt,et al. The startle pattern , 1939 .
[33] Paul W. Frankland,et al. The acoustic startle reflex: neurons and connections , 1995, Brain Research Reviews.
[34] Adam G. Davidson,et al. Movement-related and preparatory activity in the reticulospinal system of the monkey , 2004, Experimental Brain Research.
[35] Anthony N. Carlsen,et al. Can prepared responses be stored subcortically? , 2004, Experimental Brain Research.
[36] Trevor Drew,et al. Independent and convergent signals from the pontomedullary reticular formation contribute to the control of posture and movement during reaching in the cat. , 2004, Journal of neurophysiology.
[37] D. Bates,et al. Fitting Linear Mixed-Effects Models Using lme4 , 2014, 1406.5823.
[38] Romeo Chua,et al. Startle produces early response latencies that are distinct from stimulus intensity effects , 2006, Experimental Brain Research.
[39] D M Corcos,et al. Organizing principles for single-joint movements. I. A speed-insensitive strategy. , 1989, Journal of neurophysiology.
[40] P. Cheney,et al. Properties of primary motor cortex output to forelimb muscles in rhesus macaques. , 2004, Journal of neurophysiology.
[41] Ian M. Franks,et al. Using a startling acoustic stimulus to investigate underlying mechanisms of bradykinesia in Parkinson's disease , 2013, Neuropsychologia.
[42] J. Valls-Solé,et al. Interaction between startle and voluntary reactions in humans , 2008, Experimental Brain Research.
[43] Anthony N. Carlsen. A broadband acoustic stimulus is more likely than a pure tone to elicit a startle reflex and prepared movements , 2015, Physiological reports.
[44] D. Corcos,et al. Organizing principles for single-joint movements. II. A speed-sensitive strategy. , 1989, Journal of neurophysiology.
[45] P. Hodges,et al. A comparison of computer-based methods for the determination of onset of muscle contraction using electromyography. , 1996, Electroencephalography and clinical neurophysiology.
[46] M. Hallett,et al. Spinal motor neuron excitability during the silent period after cortical stimulation. , 1991, Electroencephalography and clinical neurophysiology.
[47] J. Rothwell,et al. Patterned ballistic movements triggered by a startle in healthy humans , 1999, The Journal of physiology.
[48] P. Rossini,et al. Non-invasive electrical and magnetic stimulation of the brain, spinal cord and roots: basic principles and procedures for routine clinical application. Report of an IFCN committee. , 1994, Electroencephalography and clinical neurophysiology.
[49] H. Onishi,et al. Motor Cortex-Evoked Activity in Reciprocal Muscles Is Modulated by Reward Probability , 2014, PloS one.
[50] Michael J. Carter,et al. Startle neural activity is additive with normal cortical initiation-related activation , 2014, Neuroscience Letters.
[51] C. MacKinnon,et al. The early release of planned movement by acoustic startle can be delayed by transcranial magnetic stimulation over the motor cortex , 2012, The Journal of physiology.
[52] R. Lemon. Descending pathways in motor control. , 2008, Annual review of neuroscience.