Limited output transcranial electrical stimulation 2023 (LOTES-2023): Updates on engineering principles, regulatory statutes, and industry standards for wellness, over-the-counter, or prescription devices with low risk
暂无分享,去创建一个
M. Bikson | A. Sack | A. Datta | A. Kirton | A. Ganho-Ávila | E. Rehn | Balder Onarheim | G. Unal | B. Gillick | Timothy Marjenin | Kiwon Lee | M. Joensson | Jinuk Kim | Sungjin Kim | Ana Ganho-Ávila | Gozde Unal
[1] M. Arns,et al. European reclassification of non-invasive brain stimulation as class III medical devices: A call to action , 2023, Brain Stimulation.
[2] F. Tecchio,et al. Book review: Transcranial direct current stimulation in neuropsychiatric disorders. Clinical principles and management , 2022, Frontiers in Neuroscience.
[3] Paulo J C Suen,et al. Digitalized transcranial electrical stimulation: A consensus statement , 2022, Clinical Neurophysiology.
[4] N. Wenderoth,et al. Non-invasive brain stimulation and neuroenhancement , 2022, Clinical neurophysiology practice.
[5] D. Yao,et al. Low Frequency Transcranial Alternating Current Stimulation Accelerates Sleep Onset Process , 2021, IEEE Transactions on Neural Systems and Rehabilitation Engineering.
[6] M. Vanderhasselt,et al. Improved Executive Functions and Reduced Craving in Youths with Methamphetamine Addiction: Evidence from Combined Transcranial Direct Current Stimulation with Mindfulness Treatment , 2021, Clinical psychopharmacology and neuroscience : the official scientific journal of the Korean College of Neuropsychopharmacology.
[7] J. Rothwell,et al. Consensus Paper: Novel Directions and Next Steps of Non-invasive Brain Stimulation of the Cerebellum in Health and Disease , 2021, The Cerebellum.
[8] T. Zaehle,et al. Amplitude modulated transcranial alternating current stimulation (AM-TACS) efficacy evaluation via phosphene induction , 2021, Scientific Reports.
[9] L. Maillard,et al. Transcranial Electrical Stimulation generates electric fields in deep human brain structures , 2021, Brain Stimulation.
[10] N. Gebodh,et al. Dataset of concurrent EEG, ECG, and behavior with multiple doses of transcranial electrical stimulation , 2021, Scientific data.
[11] A. Zilverstand,et al. Reducing Craving and Consumption in Individuals with Drug Addiction, Obesity or Overeating through Neuromodulation Intervention: A Systematic Review and Meta-analysis of its Follow-up Effects. , 2021, Addiction.
[12] B. Badran,et al. A Review of Parameter Settings for Invasive and Non-invasive Vagus Nerve Stimulation (VNS) Applied in Neurological and Psychiatric Disorders , 2021, Frontiers in Neuroscience.
[13] F. Padberg,et al. Transcranial Direct Current Stimulation (tDCS) for Depression during Pregnancy: Results from an Open-Label Pilot Study , 2021, Brain sciences.
[14] A. Brunoni,et al. Efficacy of non-invasive brain stimulation in decreasing depression symptoms during the peripartum period: A systematic review. , 2021, Journal of psychiatric research.
[15] M. Nitsche,et al. A novel closed-loop EEG-tDCS approach to promote responsiveness of patients in minimally conscious state: A study protocol , 2021, Behavioural Brain Research.
[16] Ronald G. García,et al. International Consensus Based Review and Recommendations for Minimum Reporting Standards in Research on Transcutaneous Vagus Nerve Stimulation (Version 2020) , 2021, Frontiers in Human Neuroscience.
[17] P. Robaey,et al. Systematic Review on the Safety and Tolerability of Transcranial Direct Current Stimulation in Children and Adolescents , 2021, Brain sciences.
[18] Kristoffer Hougaard Madsen,et al. A checklist for assessing the methodological quality of concurrent tES-fMRI studies (ContES checklist): a consensus study and statement , 2020, Nature Protocols.
[19] H. Sackeim,et al. Adaptive current-flow models of ECT: Explaining individual static impedance, dynamic impedance, and brain current delivery , 2020, bioRxiv.
[20] S. Rossi,et al. Safety and recommendations for TMS use in healthy subjects and patient populations, with updates on training, ethical and regulatory issues: Expert Guidelines , 2020, Clinical Neurophysiology.
[21] Rita Z. Goldstein,et al. A double‐blind sham‐controlled phase 1 clinical trial of tDCS of the dorsolateral prefrontal cortex in cocaine inpatients: Craving, sleepiness, and contemplation to change , 2020, medRxiv.
[22] D. Annane,et al. Randomized Controlled Study Evaluating Efficiency of Low Intensity Transcranial Direct Current Stimulation (tDCS) for Dyspnea Relief in Mechanically Ventilated COVID-19 Patients in ICU: The tDCS-DYSP-COVID Protocol , 2020, Frontiers in Medicine.
[23] E. Jaul,et al. Prefrontal cortex transcranial direct-current stimulation putatively enhances electroencephalography classification resolution of binary responses in a minimal conscious state patient , 2020, Clinical Neurophysiology.
[24] N. Wenderoth,et al. Guidelines for TMS/tES clinical services and research through the COVID-19 pandemic , 2020, Brain Stimulation.
[25] F. Cong,et al. Combined Behavioral and Mismatch Negativity Evidence for the Effects of Long-Lasting High-Definition tDCS in Disorders of Consciousness: A Pilot Study , 2020, Frontiers in Neuroscience.
[26] H. Khalil,et al. Therapeutic Effects of Bilateral Anodal Transcranial Direct Current Stimulation on Prefrontal and Motor Cortical Areas in Children with Autism Spectrum Disorders: A Pilot Study , 2020, Autism research : official journal of the International Society for Autism Research.
[27] H. Chertkow,et al. Investigation into the effect of transcranial direct current stimulation on cardiac pacemakers , 2020, Brain Stimulation.
[28] M. Bikson,et al. Supervised transcranial direct current stimulation (tDCS) at home: A guide for clinical research and practice , 2020, Brain Stimulation.
[29] T. Kammer,et al. Vision modulation, plasticity and restoration using non-invasive brain stimulation – An IFCN-sponsored review , 2020, Clinical Neurophysiology.
[30] M. Gorassini,et al. Safety and tolerability of transcranial magnetic and direct current stimulation in children: Prospective single center evidence from 3.5 million stimulations , 2019, Brain Stimulation.
[31] K. Witkiewitz,et al. Non-invasive brain stimulation in substance use disorders: implications for dissemination to clinical settings. , 2019, Current opinion in psychology.
[32] T. Oberlander,et al. Transcranial direct current stimulation (tDCS) for depression in pregnancy: A pilot randomized controlled trial , 2019, Brain Stimulation.
[33] Hyeonseok S. Jeong,et al. Effects of 6-month at-home transcranial direct current stimulation on cognition and cerebral glucose metabolism in Alzheimer's disease , 2019, Brain Stimulation.
[34] John R. Fedota,et al. Transcranial electrical and magnetic stimulation (tES and TMS) for addiction medicine: A consensus paper on the present state of the science and the road ahead , 2019, Neuroscience & Biobehavioral Reviews.
[35] Angel V. Peterchev,et al. Transcranial electrical stimulation nomenclature , 2019, Brain Stimulation.
[36] F. Padberg,et al. Transcranial alternating current stimulation for the treatment of major depression during pregnancy , 2019, Psychiatry Research.
[37] G. Pickett,et al. Electroconvulsive Therapy After Flow Diversion Stenting of Intracranial Aneurysm. , 2019, The journal of ECT.
[38] M. P. Riccio,et al. Fronto-cerebellar tDCS in children with Autism Spectrum Disorder , 2019, L'Encéphale.
[39] FDA permits marketing of first medical device for treatment of ADHD , 2019, Case Medical Research.
[40] L. Naccache,et al. Electromagnetic Brain Stimulation in Patients With Disorders of Consciousness , 2019, Front. Neurosci..
[41] J. Brasil-Neto,et al. Safety of transcranial direct current stimulation in a patient with deep brain stimulation electrodes , 2018, Arquivos de Neuro-Psiquiatria.
[42] P. Schestatsky,et al. Latin American and Caribbean consensus on noninvasive central nervous system neuromodulation for chronic pain management (LAC2-NIN-CP) , 2019, Pain reports.
[43] J. Reginster,et al. Consequences of maternal postpartum depression: A systematic review of maternal and infant outcomes , 2019, Women's health.
[44] D. M. Rios,et al. Impact of Transcranial Direct Current Stimulation on Reading Skills of Children and Adolescents With Dyslexia , 2018, Child neurology open.
[45] Mark S. George,et al. Evidence of transcranial direct current stimulation-generated electric fields at subthalamic level in human brain in vivo , 2018, Brain Stimulation.
[46] P. Fitzgerald,et al. Electroconvulsive therapy (ECT) during pregnancy: quantifying and assessing the electric field strength inside the foetal brain , 2018, Scientific Reports.
[47] F. Padberg,et al. The Effects of Transcranial Direct Current Stimulation (tDCS) on Psychomotor and Visual Perception Functions Related to Driving Skills , 2018, Front. Behav. Neurosci..
[48] Lucas C. Parra,et al. Rigor and reproducibility in research with transcranial electrical stimulation: An NIMH-sponsored workshop , 2017, Brain Stimulation.
[49] S. Rossi,et al. Low intensity transcranial electric stimulation: Safety, ethical, legal regulatory and application guidelines , 2017, Clinical Neurophysiology.
[50] John G. Gaspar,et al. Distracted driving and high-definition tDCS , 2017, Brain Stimulation.
[51] F. Padberg,et al. P017 Transcranial direct current stimulation (tDCS) for the treatment of depression during pregnancy: A pilot study , 2017, Clinical Neurophysiology.
[52] J. Borckardt,et al. A Double-Blind Study Exploring the Use of Transcranial Direct Current Stimulation (tDCS) to Potentially Enhance Mindfulness Meditation (E-Meditation) , 2017, Brain Stimulation.
[53] Vincent P. Clark,et al. Mechanisms and Effects of Transcranial Direct Current Stimulation , 2017, Dose-response : a publication of International Hormesis Society.
[54] L. Parra,et al. Measurements and models of electric fields in the in vivo human brain during transcranial electric stimulation , 2017, Brain Stimulation.
[55] M. Bikson,et al. The off-label use, utility and potential value of tDCS in the clinical care of particular neuropsychiatric conditions , 2016, Journal of law and the biosciences.
[56] M. Nitsche,et al. Safety of Transcranial Direct Current Stimulation: Evidence Based Update 2016 , 2016, Brain Stimulation.
[57] L. Parra,et al. Tolerability of Repeated Application of Transcranial Electrical Stimulation with Limited Outputs to Healthy Subjects , 2016, Brain Stimulation.
[58] Alexander Opitz,et al. Spatiotemporal structure of intracranial electric fields induced by transcranial electric stimulation in humans and nonhuman primates , 2016, Scientific Reports.
[59] A. Bose,et al. Monotherapy With tDCS for Treatment of Depressive Episode During Pregnancy: A Case Report , 2016, Brain Stimulation.
[60] I. D. Bandeira,et al. Transcranial Direct Current Stimulation in Children and Adolescents With Attention-Deficit/Hyperactivity Disorder (ADHD) , 2016, Journal of child neurology.
[61] N. Wenderoth,et al. A technical guide to tDCS, and related non-invasive brain stimulation tools , 2016, Clinical Neurophysiology.
[62] Anna Wexler. A pragmatic analysis of the regulation of consumer transcranial direct current stimulation (TDCS) devices in the United States , 2015, Journal of law and the biosciences.
[63] J. Giordano. Conditions for Consent to the Use of Neurotechnology: A Preparatory Neuroethical Approach to Risk Assessment and Reduction , 2015 .
[64] Q. Cordeiro,et al. Trigeminal Nerve Stimulation (TNS) for Major Depressive Disorder in Pregnancy: A Case Study , 2015, Brain Stimulation.
[65] G. Hammond,et al. The Causal Role of the Dorsolateral Prefrontal Cortex in the Modification of Attentional Bias: Evidence from Transcranial Direct Current Stimulation , 2014, Biological Psychiatry.
[66] C. Honey,et al. Electroconvulsive Therapy in Patients With Deep Brain Stimulators , 2014, Journal of ECT.
[67] Felipe Fregni,et al. Classification of methods in transcranial Electrical Stimulation (tES) and evolving strategy from historical approaches to contemporary innovations , 2013, Journal of Neuroscience Methods.
[68] F. Fregni,et al. A systematic review on reporting and assessment of adverse effects associated with transcranial direct current stimulation. , 2011, The international journal of neuropsychopharmacology.
[69] A. Priori,et al. Transcutaneous spinal cord direct current stimulation inhibits the lower limb nociceptive flexion reflex in human beings , 2011, PAIN®.
[70] Dennis J. L. G. Schutter,et al. Retinal origin of phosphenes to transcranial alternating current stimulation , 2010, Clinical Neurophysiology.
[71] A. Straube,et al. Spinal DC stimulation in humans modulates post-activation depression of the H-reflex depending on current polarity , 2010, Clinical Neurophysiology.
[72] Yves Vandermeeren,et al. Effect of tDCS with an extracephalic reference electrode on cardio-respiratory and autonomic functions , 2010, BMC Neuroscience.
[73] J. Rothwell,et al. Consensus: Motor cortex plasticity protocols , 2008, Brain Stimulation.
[74] S. Cappa,et al. Improved naming after transcranial direct current stimulation in aphasia , 2007, Journal of Neurology, Neurosurgery, and Psychiatry.
[75] Neri Accornero,et al. Visual evoked potentials modulation during direct current cortical polarization , 2007, Experimental Brain Research.
[76] G. Baltuch,et al. Electroconvulsive therapy for depression in a Parkinson's disease patient with bilateral subthalamic nucleus deep brain stimulators. , 2005, Parkinsonism & related disorders.
[77] H. Sackeim,et al. Physical properties and quantification of the ECT stimulus: I. Basic principles. , 1994, Convulsive therapy.
[78] M. Nitsche,et al. tDCS in Child and Adolescent Psychiatry , 2021, Transcranial Direct Current Stimulation in Neuropsychiatric Disorders.
[79] R J DUBOS,et al. Health and disease. , 1960, JAMA.