The effects of bifrontal anodal transcranial direct current stimulation (tDCS) on sleepiness and vigilance in partially sleep‐deprived subjects: A multidimensional study
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M. Gorgoni | V. Alfonsi | S. Scarpelli | F. Salfi | A. D'Atri | G. Amicucci | D. Corigliano | L. Annarumma | L. de Gennaro | Francesco Giacinti
[1] Shuyu Sun,et al. Effects of transcranial direct current stimulation on performance and recovery sleep during acute sleep deprivation: a pilot study. , 2021, Sleep medicine.
[2] M. Ferrara,et al. The electroencephalographic features of the sleep onset process and their experimental manipulation with sleep deprivation and transcranial electrical stimulation protocols , 2020, Neuroscience & Biobehavioral Reviews.
[3] M. Nitsche,et al. Induction of long-term potentiation-like plasticity in the primary motor cortex with repeated anodal transcranial direct current stimulation – Better effects with intensified protocols? , 2020, Brain Stimulation.
[4] J. Lupiáñez,et al. A High-Definition tDCS and EEG study on attention and vigilance: Brain stimulation mitigates the executive but not the arousal vigilance decrement , 2020, Neuropsychologia.
[5] P. Rossini,et al. Bilateral Theta Transcranial Alternating Current Stimulation (tACS) Modulates EEG Activity: When tACS Works Awake It Also Works Asleep , 2019, Nature and science of sleep.
[6] B. Feige,et al. Differential effects of bifrontal tDCS on arousal and sleep duration in insomnia patients and healthy controls , 2019, Brain Stimulation.
[7] Nathan Ward,et al. Modulating Applied Task Performance via Transcranial Electrical Stimulation , 2019, Front. Hum. Neurosci..
[8] M. Ferrara,et al. The Spatiotemporal Pattern of the Human Electroencephalogram at Sleep Onset After a Period of Prolonged Wakefulness , 2019, Front. Neurosci..
[9] P. Achermann,et al. Brain dynamics during the sleep onset transition: An EEG source localization study , 2018, Neurobiology of sleep and circadian rhythms.
[10] Liang Jiyuan,et al. Transcranial direct current stimulation reconstructs diminished thalamocortical connectivity during prolonged resting wakefulness: a resting-state fMRI pilot study , 2018, Brain Imaging and Behavior.
[11] L. De Gennaro,et al. The Efficacy of Transcranial Current Stimulation Techniques to Modulate Resting-State EEG, to Affect Vigilance and to Promote Sleepiness , 2018, Brain sciences.
[12] J. Reifman,et al. PC-PVT 2.0: An updated platform for psychomotor vigilance task testing, analysis, prediction, and visualization , 2018, Journal of Neuroscience Methods.
[13] M. M. Samani,et al. Basic and functional effects of transcranial Electrical Stimulation (tES)—An introduction , 2018, Neuroscience and Biobehavioral Reviews.
[14] P. Rossini,et al. Bilateral 5 Hz transcranial alternating current stimulation on fronto-temporal areas modulates resting-state EEG , 2017, Scientific Reports.
[15] I. Fried,et al. Selective neuronal lapses precede human cognitive lapses following sleep deprivation , 2017, Nature Medicine.
[16] B. Feige,et al. Top-down control of arousal and sleep: Fundamentals and clinical implications. , 2017, Sleep medicine reviews.
[17] C. Miniussi,et al. Transcranial Electrical Stimulation , 2016, The Neuroscientist : a review journal bringing neurobiology, neurology and psychiatry.
[18] P. Rossini,et al. Electrical stimulation of the frontal cortex enhances slow-frequency EEG activity and sleepiness , 2016, Neuroscience.
[19] B. Feige,et al. Modulation of Total Sleep Time by Transcranial Direct Current Stimulation (tDCS) , 2016, Neuropsychopharmacology.
[20] L. Ferini-Strambi,et al. The effects of Transcranial Direct Current Stimulation (tDCS) on Idiopathic Hypersomnia: a pilot study. , 2016, Archives italiennes de biologie.
[21] Daniel A. Cohen,et al. Prediction of Vigilant Attention and Cognitive Performance Using Self-Reported Alertness, Circadian Phase, Hours since Awakening, and Accumulated Sleep Loss , 2016, PloS one.
[22] P. Rossini,et al. Frequency-dependent effects of oscillatory-tDCS on EEG oscillations: a study with Better OSCillation detection method (BOSC). , 2015, Archives italiennes de biologie.
[23] B. Feige,et al. Bifrontal Anodal Transcranial Direct Current Stimulation (tDCS) Improves Daytime Vigilance and Sleepiness in a Patient With Organic Hypersomnia Following Reanimation , 2015, Brain Stimulation.
[24] P. Rossini,et al. Topographic electroencephalogram changes associated with psychomotor vigilance task performance after sleep deprivation. , 2014, Sleep medicine.
[25] Lindsey K. McIntire,et al. A Comparison of the Effects of Transcranial Direct Current Stimulation and Caffeine on Vigilance and Cognitive Performance During Extended Wakefulness , 2014, Brain Stimulation.
[26] Andrea Pigorini,et al. Hippocampal sleep spindles preceding neocortical sleep onset in humans , 2014, NeuroImage.
[27] Joel S. Warm,et al. Enhancing vigilance in operators with prefrontal cortex transcranial direct current stimulation (tDCS) , 2014, NeuroImage.
[28] Srinivasan Rajaraman,et al. PC-PVT: A platform for psychomotor vigilance task testing, analysis, and prediction , 2013, Behavior research methods.
[29] Lino Nobili,et al. How we fall asleep: regional and temporal differences in electroencephalographic synchronization at sleep onset. , 2013, Sleep medicine.
[30] S. Eickhoff,et al. Sustaining attention to simple tasks: a meta-analytic review of the neural mechanisms of vigilant attention. , 2013, Psychological bulletin.
[31] Walter Paulus,et al. Induction of Late LTP-Like Plasticity in the Human Motor Cortex by Repeated Non-Invasive Brain Stimulation , 2013, Brain Stimulation.
[32] B. Merker. Cortical gamma oscillations: the functional key is activation, not cognition , 2013, Neuroscience & Biobehavioral Reviews.
[33] G. Tononi,et al. Local sleep in awake rats , 2011, Nature.
[34] M. Nitsche,et al. Physiological Basis of Transcranial Direct Current Stimulation , 2011, The Neuroscientist : a review journal bringing neurobiology, neurology and psychiatry.
[35] F. Mauguière,et al. Thalamic deactivation at sleep onset precedes that of the cerebral cortex in humans , 2010, Proceedings of the National Academy of Sciences.
[36] J. Horne. Sleepiness as a need for sleep: When is enough, enough? , 2010, Neuroscience & Biobehavioral Reviews.
[37] J. Born,et al. Slow oscillation electrical brain stimulation during waking promotes EEG theta activity and memory encoding , 2009, Proceedings of the National Academy of Sciences.
[38] Paolo Maria Rossini,et al. Neurophysiological correlates of sleepiness: A combined TMS and EEG study , 2007, NeuroImage.
[39] T. Young,et al. Subjective daytime sleepiness: dimensions and correlates in the general population. , 2005, Sleep.
[40] M. Littner,et al. Practice parameters for clinical use of the multiple sleep latency test and the maintenance of wakefulness test. , 2005, Sleep.
[41] C. Czeisler,et al. Relationship between alertness, performance, and body temperature in humans. , 2002, American journal of physiology. Regulatory, integrative and comparative physiology.
[42] Raymond Cluydts,et al. Daytime sleepiness and its evaluation. , 2002, Sleep medicine reviews.
[43] Murray W Johns,et al. Sleep propensity varies with behaviour and the situation in which it is measured: the concept of somnificity , 2002, Journal of sleep research.
[44] Y. Benjamini,et al. THE CONTROL OF THE FALSE DISCOVERY RATE IN MULTIPLE TESTING UNDER DEPENDENCY , 2001 .
[45] A A Borbély,et al. Brain topography of the human sleep EEG: antero‐posterior shifts of spectral power , 1996, Neuroreport.
[46] T. Åkerstedt,et al. Subjective and objective sleepiness in the active individual. , 1990, The International journal of neuroscience.
[47] Timothy H. Monk,et al. A visual analogue scale technique to measure global vigor and affect , 1989, Psychiatry Research.
[48] A. Borbély. A two process model of sleep regulation. , 1982, Human neurobiology.