Direct current stimulation as a non-invasive therapeutic alternative for treating autonomic or non-autonomic neurological disorders affecting breathing.

Central respiratory drive Electrical current Neuromodulation Neurorespiratory disorders Noninvasive brain or spinal stimulation

Journal

Clinical autonomic research : official journal of the Clinical Autonomic Research Society
ISSN: 1619-1560
Titre abrégé: Clin Auton Res
Pays: Germany
ID NLM: 9106549

Informations de publication

Date de publication:
12 Aug 2024
Historique:
received: 23 04 2024
accepted: 22 07 2024
medline: 12 8 2024
pubmed: 12 8 2024
entrez: 12 8 2024
Statut: aheadofprint

Résumé

Direct current stimulation (DCS) is a non-invasive approach to stimulate the nervous system that is now considered a powerful tool for treating neurological diseases such as those affecting cognitive or locomotor functions. DCS, as applied clinically today, is an approach built on early uses in antiquity and knowledge gained over time. Its current use makes use of specific devices and takes into account knowledge of the mechanisms by which this approach modulates functioning of the nervous system at the cellular level. Over the last 20 years, although there are few studies, it has been shown that DCS can also modulate the breathing autonomic function. In this narrative review, after briefly providing the historical perspective and describing the principles and the main cellular and molecular effects, we summarize the currently available data regarding the modulation of ventilation, and propose that DCS could be used to treat autonomic or non-autonomic neurological disorders affecting breathing.

Identifiants

pubmed: 39133345
doi: 10.1007/s10286-024-01055-y
pii: 10.1007/s10286-024-01055-y
doi:

Types de publication

Journal Article Review

Langues

eng

Sous-ensembles de citation

IM

Informations de copyright

© 2024. Springer-Verlag GmbH Germany.

Références

Ahmed Z (2011) Trans-spinal direct current stimulation modulates motor cortex-induced muscle contraction in mice. J Appl Physiol 110:1414–1424
pubmed: 21350028 doi: 10.1152/japplphysiol.01390.2010
Akcay G, Aslan M, Kipmen Korgun D, Ceker T, Akan E, Derin N (2024) Effects of transcranial direct current stimulation on the glutamatergic pathway in the male rat hippocampus after experimental focal cerebral ischemia. J Neurosci Res 102:e25247
pubmed: 37800665 doi: 10.1002/jnr.25247
Aldini G (1804) Essai théorique et expérimental sur le galvanisme, avec une série d’expériences faites devant des commissaires de l’Institut national de France, et en divers amphithéâtres anatomiques de Londres. Fournier Fils, Paris
Andrade SM, de Araujo C, Silvestre M, Tenorio de Franca EE, Bezerra Sales Queiroz MH, de Jesus SK, Lima Holmes Madruga ML, Torres Teixeira Mendes CK, Araujo de Oliveira E, Bezerra JF, Barreto RG, Fernandes A, da Silva SM, Alves de Sousa T, Medeiros de Sousa WC, Patricia da Silva M, Cintra Ribeiro VM, Lucena P, Beltrammi D, Catharino RR, Caparelli-Daquer E, Hampstead BM, Datta A, Teixeira AL, Fernandez-Calvo B, Sato JR, Bikson M (2022) Efficacy and safety of HD-tDCS and respiratory rehabilitation for critically ill patients with COVID-19 The HD-RECOVERY randomized clinical trial. Brain Stimul 15:780–788
pubmed: 35568312 pmcid: 9093082 doi: 10.1016/j.brs.2022.05.006
Antal A, Alekseichuk I, Bikson M, Brockmoller J, Brunoni AR, Chen R, Cohen LG, Dowthwaite G, Ellrich J, Floel A, Fregni F, George MS, Hamilton R, Haueisen J, Herrmann CS, Hummel FC, Lefaucheur JP, Liebetanz D, Loo CK, McCaig CD, Miniussi C, Miranda PC, Moliadze V, Nitsche MA, Nowak R, Padberg F, Pascual-Leone A, Poppendieck W, Priori A, Rossi S, Rossini PM, Rothwell J, Rueger MA, Ruffini G, Schellhorn K, Siebner HR, Ugawa Y, Wexler A, Ziemann U, Hallett M, Paulus W (2017) Low intensity transcranial electric stimulation: safety, ethical, legal regulatory and application guidelines. Clin Neurophysiol 128:1774–1809
pubmed: 28709880 pmcid: 5985830 doi: 10.1016/j.clinph.2017.06.001
Azabou E, Bao G, Heming N, Bounab R, Moine P, Chevallier S, Chevret S, Resche-Rigon M, Siami S, Sharshar T, Lofaso F, Annane D (2020) 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. Front Med (Lausanne) 7:372
pubmed: 32671084 doi: 10.3389/fmed.2020.00372
Azabou E, Roche N, Sharshar T, Bussel B, Lofaso F, Petitjean M (2013) Transcranial direct-current stimulation reduced the excitability of diaphragmatic corticospinal pathways whatever the polarity used. Respir Physiol Neurobiol 189:183–187
pubmed: 23933029 doi: 10.1016/j.resp.2013.07.024
Baughn JM, Matarese CA (2023) Control of breathing and central hypoventilation syndromes. Sleep Med Clin 18:161–171
pubmed: 37120159 doi: 10.1016/j.jsmc.2023.01.002
Bikson M, Grossman P, Thomas C, Zannou AL, Jiang J, Adnan T, Mourdoukoutas AP, Kronberg G, Truong D, Boggio P, Brunoni AR, Charvet L, Fregni F, Fritsch B, Gillick B, Hamilton RH, Hampstead BM, Jankord R, Kirton A, Knotkova H, Liebetanz D, Liu A, Loo C, Nitsche MA, Reis J, Richardson JD, Rotenberg A, Turkeltaub PE, Woods AJ (2016) Safety of transcranial direct current stimulation: evidence based update 2016. Brain Stimul 9:641–661
pubmed: 27372845 pmcid: 5007190 doi: 10.1016/j.brs.2016.06.004
Braun R, Klein R, Walter HL, Ohren M, Freudenmacher L, Getachew K, Ladwig A, Luelling J, Neumaier B, Endepols H, Graf R, Hoehn M, Fink GR, Schroeter M, Rueger MA (2016) Transcranial direct current stimulation accelerates recovery of function, induces neurogenesis and recruits oligodendrocyte precursors in a rat model of stroke. Exp Neurol 279:127–136
pubmed: 26923911 doi: 10.1016/j.expneurol.2016.02.018
Cancel LM, Silas D, Bikson M, Tarbell JM (2022) Direct current stimulation modulates gene expression in isolated astrocytes with implications for glia-mediated plasticity. Sci Rep 12:17964
pubmed: 36289296 pmcid: 9606293 doi: 10.1038/s41598-022-22394-8
Chang CC, Kao YC, Chao CY, Tzeng NS, Chang HA (2021) The effects of Bi-anodal tDCS over the prefrontal cortex regions with extracephalic reference placement on insight levels and cardio-respiratory and autonomic functions in schizophrenia patients and exploratory biomarker analyses for treatment response. Int J Neuropsychopharmacol 24:40–53
pubmed: 32808025 doi: 10.1093/ijnp/pyaa063
Chhatbar PY, Chen R, Deardorff R, Dellenbach B, Kautz SA, George MS, Feng W (2017) Safety and tolerability of transcranial direct current stimulation to stroke patients—a phase I current escalation study. Brain Stimul 10:553–559
pubmed: 28279641 pmcid: 5411981 doi: 10.1016/j.brs.2017.02.007
Clark VP, Coffman BA, Mayer AR, Weisend MP, Lane TD, Calhoun VD, Raybourn EM, Garcia CM, Wassermann EM (2012) TDCS guided using fMRI significantly accelerates learning to identify concealed objects. Neuroimage 59:117–128
pubmed: 21094258 doi: 10.1016/j.neuroimage.2010.11.036
Cogiamanian F, Vergari M, Pulecchi F, Marceglia S, Priori A (2008) Effect of spinal transcutaneous direct current stimulation on somatosensory evoked potentials in humans. Clin Neurophysiol 119:2636–2640
pubmed: 18786856 doi: 10.1016/j.clinph.2008.07.249
Datta A, Bansal V, Diaz J, Patel J, Reato D, Bikson M (2009) Gyri-precise head model of transcranial direct current stimulation: improved spatial focality using a ring electrode versus conventional rectangular pad. Brain Stimul 2(201–207):207.e201
De Carvalho P, Goulardins JB, de Sousa DMN, Barbosa C, Caetano TCC, Dos Santos LM, Ito CH, Hirota AS, Pereira RPR, Baptista AF, Tanaka C (2021) Noninvasive neuromodulation techniques in difficult tracheostomy weaning of patients with spinal cord injury: report of two cases. Chest 159:e299–e302
pubmed: 33965152 doi: 10.1016/j.chest.2020.11.065
Demoule A, Verin E, Montcel ST, Similowski T (2008) Short-term training-dependent plasticity of the corticospinal diaphragm control in normal humans. Respir Physiol Neurobiol 160:172–180
pubmed: 17964864 doi: 10.1016/j.resp.2007.09.007
Dubois M, Chenivesse C, Raux M, Morales-Robles A, Nierat MC, Garcia G, Navarro-Sune X, Chavez M, Martinerie J, Similowski T (2016) Neurophysiological evidence for a cortical contribution to the wakefulness-related drive to breathe explaining hypocapnia-resistant ventilation in humans. J Neurosci 36:10673–10682
pubmed: 27733617 pmcid: 6601927 doi: 10.1523/JNEUROSCI.2376-16.2016
Farahani F, Kronberg G, FallahRad M, Oviedo HV, Parra LC (2021) Effects of direct current stimulation on synaptic plasticity in a single neuron. Brain Stimul 14:588–597
pubmed: 33766677 pmcid: 8165013 doi: 10.1016/j.brs.2021.03.001
Faria P, Hallett M, Miranda PC (2011) A finite element analysis of the effect of electrode area and inter-electrode distance on the spatial distribution of the current density in tDCS. J Neural Eng 8:066017
pubmed: 22086257 pmcid: 3411515 doi: 10.1088/1741-2560/8/6/066017
Fernandes SR, Pereira M, Salvador R, Miranda PC, de Carvalho M (2019) Cervical trans-spinal direct current stimulation: a modelling-experimental approach. J Neuroeng Rehabil 16:123
pubmed: 31653265 pmcid: 6815068 doi: 10.1186/s12984-019-0589-6
Fukai M, Bunai T, Hirosawa T, Kikuchi M, Ito S, Minabe Y, Ouchi Y (2019) Endogenous dopamine release under transcranial direct-current stimulation governs enhanced attention: a study with positron emission tomography. Transl Psychiatry 9:115
pubmed: 30877269 pmcid: 6420561 doi: 10.1038/s41398-019-0443-4
Gandevia SC, Rothwell JC (1987) Activation of the human diaphragm from the motor cortex. J Physiol 384:109–118
pubmed: 3656144 pmcid: 1192253 doi: 10.1113/jphysiol.1987.sp016445
Gebodh N, Esmaeilpour Z, Adair D, Chelette K, Dmochowski J, Woods AJ, Kappenman ES, Parra LC, Bikson M (2019) Inherent physiological artifacts in EEG during tDCS. Neuroimage 185:408–424
pubmed: 30321643 doi: 10.1016/j.neuroimage.2018.10.025
Gellner AK, Reis J, Fiebich BL, Fritsch B (2021) Electrified microglia: impact of direct current stimulation on diverse properties of the most versatile brain cell. Brain Stimul 14:1248–1258
pubmed: 34411753 doi: 10.1016/j.brs.2021.08.007
Golia MT, Poggini S, Alboni S, Garofalo S, Ciano Albanese N, Viglione A, Ajmone-Cat MA, St-Pierre A, Brunello N, Limatola C, Branchi I, Maggi L (2019) Interplay between inflammation and neural plasticity: Both immune activation and suppression impair LTP and BDNF expression. Brain Behav Immun 81:484–494
pubmed: 31279682 doi: 10.1016/j.bbi.2019.07.003
Guyenet PG, Bayliss DA (2022) Central respiratory chemoreception. Handb Clin Neurol 188:37–72
pubmed: 35965033 pmcid: 10557475 doi: 10.1016/B978-0-323-91534-2.00007-2
Horn EM, Waldrop TG (1998) Suprapontine control of respiration. Respir Physiol 114:201–211
pubmed: 9926985 doi: 10.1016/S0034-5687(98)00087-5
Hudson AL, Nierat MC, Raux M, Similowski T (2018) The relationship between respiratory-related premotor potentials and small perturbations in ventilation. Front Physiol 9:621
pubmed: 29899704 pmcid: 5988848 doi: 10.3389/fphys.2018.00621
Kim MS, Koo H, Han SW, Paulus W, Nitsche MA, Kim YH, Yoon JA, Shin YI (2017) Repeated anodal transcranial direct current stimulation induces neural plasticity-associated gene expression in the rat cortex and hippocampus. Restor Neurol Neurosci 35:137–146
pubmed: 28059801
Kronberg G, Bridi M, Abel T, Bikson M, Parra LC (2017) Direct current stimulation modulates LTP and LTD: activity dependence and dendritic effects. Brain Stimul 10:51–58
pubmed: 28104085 doi: 10.1016/j.brs.2016.10.001
Kunori N, Takashima I (2019) Evaluation of acute anodal direct current stimulation-induced effects on somatosensory-evoked responses in the rat. Brain Res 1720:146318
pubmed: 31276639 doi: 10.1016/j.brainres.2019.146318
Kuo MF, Paulus W, Nitsche MA (2008) Boosting focally-induced brain plasticity by dopamine. Cereb Cortex 18:648–51
pubmed: 17591596 doi: 10.1093/cercor/bhm098
Laakso I, Tanaka S, Mikkonen M, Koyama S, Sadato N, Hirata A (2016) Electric fields of motor and frontal tDCS in a standard brain space: a computer simulation study. Neuroimage 137:140–151
pubmed: 27188218 doi: 10.1016/j.neuroimage.2016.05.032
Lafon B, Rahman A, Bikson M, Parra LC (2017) Direct current stimulation alters neuronal input/output function. Brain Stimul 10:36–45
pubmed: 27717601 doi: 10.1016/j.brs.2016.08.014
Largus SRJ (1529) De Compositionibus Medicamentorum [The Compositions of Drugs]. In: Ruello J (ed) De Compositionibus Medicamentorum. Liber Unus. Wechel, Paris
Lee DJ, Lee YS, Kim HJ, Seo TH (2017) The effects of exercise training using transcranial direct current stimulation (tDCS) on breathing in patients with chronic stroke patients. J Phys Ther Sci 29:527–530
pubmed: 28356647 pmcid: 5361026 doi: 10.1589/jpts.29.527
Leite J, Carvalho S, Fregni F, Boggio PS, Goncalves OF (2013) The effects of cross-hemispheric dorsolateral prefrontal cortex transcranial direct current stimulation (tDCS) on task switching. Brain Stimul 6:660–667
pubmed: 23142550 doi: 10.1016/j.brs.2012.10.006
Lippold OC, Redfearn JW (1964) Mental changes resulting from the passage of small direct currents through the human brain. Br J Psychiatry 110:768–772
pubmed: 14211693 doi: 10.1192/bjp.110.469.768
Locke KC, Randelman ML, Hoh DJ, Zholudeva LV, Lane MA (2022) Respiratory plasticity following spinal cord injury: perspectives from mouse to man. Neural Regen Res 17:2141–2148
pubmed: 35259820 pmcid: 9083159 doi: 10.4103/1673-5374.335839
Mekhael W, Begum S, Samaddar S, Hassan M, Toruno P, Ahmed M, Gorin A, Maisano M, Ayad M, Ahmed Z (2019) Repeated anodal trans-spinal direct current stimulation results in long-term reduction of spasticity in mice with spinal cord injury. J Physiol 597:2201–2223
pubmed: 30689208 pmcid: 6462463 doi: 10.1113/JP276952
Ministro G, Castano JB, Barboza CA, Moura EG, Ferreira-Melo SE, Mostarda CT, Fattori A, Moreno-Junior H, Rodrigues B (2022) Acute transcranial direct current stimulation (tDCS) improves ventilatory variability and autonomic modulation in resistant hypertensive patients. Respir Physiol Neurobiol 297:103830
pubmed: 34915178 doi: 10.1016/j.resp.2021.103830
Mitchell GS, Baker TL (2022) Respiratory neuroplasticity: mechanisms and translational implications of phrenic motor plasticity. Handb Clin Neurol 188:409–432
pubmed: 35965036 doi: 10.1016/B978-0-323-91534-2.00016-3
Monai H, Ohkura M, Tanaka M, Oe Y, Konno A, Hirai H, Mikoshiba K, Itohara S, Nakai J, Iwai Y, Hirase H (2016) Calcium imaging reveals glial involvement in transcranial direct current stimulation-induced plasticity in mouse brain. Nat Commun 7:11100
pubmed: 27000523 pmcid: 4804173 doi: 10.1038/ncomms11100
Morris KF, Baekey DM, Nuding SC, Dick TE, Shannon R (1985) Invited review: neural network plasticity in respiratory control. J Appl Physiol 94:1242–1252
doi: 10.1152/japplphysiol.00715.2002
Nierat MC, Similowski T, Lamy JC (2014) Does trans-spinal direct current stimulation alter phrenic motoneurons and respiratory neuromechanical outputs in humans? A double-blind, sham-controlled, randomized, crossover study. J Neurosci 34:14420–14429
pubmed: 25339753 pmcid: 6608388 doi: 10.1523/JNEUROSCI.1288-14.2014
Nitsche MA, Cohen LG, Wassermann EM, Priori A, Lang N, Antal A, Paulus W, Hummel F, Boggio PS, Fregni F, Pascual-Leone A (2008) Transcranial direct current stimulation: state of the art 2008. Brain Stimul 1:206–223
pubmed: 20633386 doi: 10.1016/j.brs.2008.06.004
Nitsche MA, Fricke K, Henschke U, Schlitterlau A, Liebetanz D, Lang N, Henning S, Tergau F, Paulus W (2003) Pharmacological modulation of cortical excitability shifts induced by transcranial direct current stimulation in humans. J Physiol 553:293–301
pubmed: 12949224 pmcid: 2343495 doi: 10.1113/jphysiol.2003.049916
Nitsche MA, Grundey J, Liebetanz D, Lang N, Tergau F, Paulus W (2004) Catecholaminergic consolidation of motor cortical neuroplasticity in humans. Cereb Cortex 14:1240–1245
pubmed: 15142961 doi: 10.1093/cercor/bhh085
Nitsche MA, Kuo MF, Karrasch R, Wachter B, Liebetanz D, Paulus W (2009) Serotonin affects transcranial direct current-induced neuroplasticity in humans. Biol Psychiatry 66:503–508
pubmed: 19427633 doi: 10.1016/j.biopsych.2009.03.022
Nitsche MA, Liebetanz D, Schlitterlau A, Henschke U, Fricke K, Frommann K, Lang N, Henning S, Paulus W, Tergau F (2004) GABAergic modulation of DC stimulation-induced motor cortex excitability shifts in humans. Eur J Neurosci 19:2720–2726
pubmed: 15147306 doi: 10.1111/j.0953-816X.2004.03398.x
Nitsche MA, Paulus W (2000) Excitability changes induced in the human motor cortex by weak transcranial direct current stimulation. J Physiol 527(Pt 3):633–639
pubmed: 10990547 pmcid: 2270099 doi: 10.1111/j.1469-7793.2000.t01-1-00633.x
Paciello F, Podda MV, Rolesi R, Cocco S, Petrosini L, Troiani D, Fetoni AR, Paludetti G, Grassi C (2018) Anodal transcranial direct current stimulation affects auditory cortex plasticity in normal-hearing and noise-exposed rats. Brain Stimul 11:1008–1023
pubmed: 29929771 doi: 10.1016/j.brs.2018.05.017
Parazzini M, Rossi E, Rossi L, Priori A, Ravazzani P (2013) Evaluation of the current density in the brainstem during transcranial direct current stimulation with extra-cephalic reference electrode. Clin Neurophysiol 124:1039–1040
pubmed: 23084663 doi: 10.1016/j.clinph.2012.09.021
Pikhovych A, Stolberg NP, Jessica Flitsch L, Walter HL, Graf R, Fink GR, Schroeter M, Rueger MA (2016) Transcranial direct current stimulation modulates neurogenesis and microglia activation in the mouse brain. Stem Cells Int 2016:2715196
pubmed: 27403166 pmcid: 4925996 doi: 10.1155/2016/2715196
Pilloni G, Bikson M, Badran BW, George MS, Kautz SA, Okano AH, Baptista AF, Charvet LE (2020) Update on the use of transcranial electrical brain stimulation to manage acute and chronic COVID-19 symptoms. Front Hum Neurosci 14:595567
pubmed: 33281589 pmcid: 7689057 doi: 10.3389/fnhum.2020.595567
Pouget P, Allard E, Poitou T, Raux M, Wattiez N, Similowski T (2018) Slower is higher: threshold modulation of cortical activity in voluntary control of breathing initiation. Front Neurosci 12:663
pubmed: 30364283 pmcid: 6193114 doi: 10.3389/fnins.2018.00663
Priori A, Berardelli A, Rona S, Accornero N, Manfredi M (1998) Polarization of the human motor cortex through the scalp. Neuroreport 9:2257–60
pubmed: 9694210 doi: 10.1097/00001756-199807130-00020
Rahman A, Reato D, Arlotti M, Gasca F, Datta A, Parra LC, Bikson M (2013) Cellular effects of acute direct current stimulation: somatic and synaptic terminal effects. J Physiol 591:2563–2578
pubmed: 23478132 pmcid: 3678043 doi: 10.1113/jphysiol.2012.247171
Raimundo RJS, Uribe CE, Brasil-Neto JP (2012) Lack of clinically detectable acute changes on autonomic or thermoregulatory functions in healthy subjects after transcranial direct current stimulation (tDCS). Brain Stimul 5:196–200
pubmed: 22037121 doi: 10.1016/j.brs.2011.03.009
Reato D, Rahman A, Bikson M, Parra LC (2010) Low-intensity electrical stimulation affects network dynamics by modulating population rate and spike timing. J Neurosci 30:15067–15079
pubmed: 21068312 pmcid: 3500391 doi: 10.1523/JNEUROSCI.2059-10.2010
Reato D, Rahman A, Bikson M, Parra LC (2013) Effects of weak transcranial alternating current stimulation on brain activity-a review of known mechanisms from animal studies. Front Hum Neurosci 7:687
pubmed: 24167483 pmcid: 3805939 doi: 10.3389/fnhum.2013.00687
Redfearn JW, Lippold OC, Costain R (1964) A preliminary account of the clinical effects of polarizing the brain in certain psychiatric disorders. Br J Psychiatry 110:773–785
pubmed: 14211694 doi: 10.1192/bjp.110.469.773
Robinovitch LG (1911) Electric analgesia, and electric resuscitation after heart failure under chloroform or electrocution. JAMA 56:478–481
doi: 10.1001/jama.1911.02560070010003
Rohan JG, Carhuatanta KA, McInturf SM, Miklasevich MK, Jankord R (2015) Modulating hippocampal plasticity with in vivo brain stimulation. J Neurosci 35:12824–12832
pubmed: 26377469 pmcid: 4643097 doi: 10.1523/JNEUROSCI.2376-15.2015
Rueger MA, Keuters MH, Walberer M, Braun R, Klein R, Sparing R, Fink GR, Graf R, Schroeter M (2012) Multi-session transcranial direct current stimulation (tDCS) elicits inflammatory and regenerative processes in the rat brain. PLoS One 7:e43776
pubmed: 22928032 pmcid: 3425495 doi: 10.1371/journal.pone.0043776
Ruohonen J, Karhu J (2012) tDCS possibly stimulates glial cells. Clin Neurophysiol 123:2006–2009
pubmed: 22480602 doi: 10.1016/j.clinph.2012.02.082
Sadleir RJ, Vannorsdall TD, Schretlen DJ, Gordon B (2010) Transcranial direct current stimulation (tDCS) in a realistic head model. Neuroimage 51:1310–1318
pubmed: 20350607 doi: 10.1016/j.neuroimage.2010.03.052
Samaddar S, Vazquez K, Ponkia D, Toruno P, Sahbani K, Begum S, Abouelela A, Mekhael W (1985) Transspinal direct current stimulation modulates migration and proliferation of adult newly born spinal cells in mice. J Appl Physiol 122:339–353
doi: 10.1152/japplphysiol.00834.2016
Schottelkotte KM, Crone SA (2022) Forebrain control of breathing: anatomy and potential functions. Front Neurol 13:1041887
pubmed: 36388186 pmcid: 9663927 doi: 10.3389/fneur.2022.1041887
Smith B (2006) Cranial electrotherapy stimulation: its first fifty years, plus three: a monograph. Taye, Mustang
Smith JC (2022) Respiratory rhythm and pattern generation: brainstem cellular and circuit mechanisms. Handb Clin Neurol 188:1–35
pubmed: 35965022 doi: 10.1016/B978-0-323-91534-2.00004-7
Song W, Martin JH (2017) Spinal cord direct current stimulation differentially modulates neuronal activity in the dorsal and ventral spinal cord. J Neurophysiol 117:1143–1155
pubmed: 28031400 doi: 10.1152/jn.00584.2016
Stafford J, Brownlow ML, Qualley A, Jankord R (2018) AMPA receptor translocation and phosphorylation are induced by transcranial direct current stimulation in rats. Neurobiol Learn Mem 150:36–41
pubmed: 29137960 doi: 10.1016/j.nlm.2017.11.002
Taytard J, Nierat MC, Gand C, Lavault S, Morelot-Panzini C, Patout M, Serresse L, Wattiez N, Bodineau L, Straus C, Similowski T (2023) Short-term cognitive loading deteriorates breathing pattern and gas exchange in adult patients with congenital central hypoventilation syndrome. ERJ Open Res. https://doi.org/10.1183/23120541.00408-2022
doi: 10.1183/23120541.00408-2022 pubmed: 36923564 pmcid: 10009700
Tenorio-Lopes L, Kinkead R (2021) Sex-specific effects of stress on respiratory control: plasticity, adaptation, and dysfunction. Compr Physiol 11:2097–2134
pubmed: 34107062 doi: 10.1002/cphy.c200022
Tomczak CR, Greidanus KR, Boliek CA (2013) Modulation of chest wall intermuscular coherence: effects of lung volume excursion and transcranial direct current stimulation. J Neurophysiol 110:680–687
pubmed: 23678011 doi: 10.1152/jn.00723.2012
Tremoureux L, Raux M, Hudson AL, Ranohavimparany A, Straus C, Similowski T (2014) Does the supplementary motor area keep patients with Ondine’s curse syndrome breathing while awake? PLoS One 9:e84534
pubmed: 24475031 pmcid: 3901646 doi: 10.1371/journal.pone.0084534
Vandermeeren Y, Jamart J, Ossemann M (2010) Effect of tDCS with an extracephalic reference electrode on cardio-respiratory and autonomic functions. BMC Neurosci 11:38
pubmed: 20233439 pmcid: 2844382 doi: 10.1186/1471-2202-11-38
Walsh JSS (1773) Of the electric property of the torpedo. In a Letter from John Walsh, Esq; F. R. S. to Benjamin Franklin, Esq; LL.D., F. R. S. In: Proceedings of the Royal Society of London, Philosophical Transactions of the Royal Society 63:461–480
Yamaguchi T, Moriya K, Tanabe S, Kondo K, Otaka Y, Tanaka S (2020) Transcranial direct-current stimulation combined with attention increases cortical excitability and improves motor learning in healthy volunteers. J Neuroeng Rehabil 17:23
pubmed: 32075667 pmcid: 7031972 doi: 10.1186/s12984-020-00665-7

Auteurs

Roman Delucenay-Clarke (R)

Sorbonne Université, Inserm, UMR_S1158 Neurophysiologie Respiratoire Expérimentale et Clinique, 75005, Paris, France.

Marie-Cécile Niérat (MC)

Sorbonne Université, Inserm, UMR_S1158 Neurophysiologie Respiratoire Expérimentale et Clinique, 75005, Paris, France.

Alain Frugière (A)

Sorbonne Université, Inserm, UMR_S1158 Neurophysiologie Respiratoire Expérimentale et Clinique, 75005, Paris, France.

Thomas Similowski (T)

Sorbonne Université, Inserm, UMR_S1158 Neurophysiologie Respiratoire Expérimentale et Clinique, 75005, Paris, France.

Florence Cayetanot (F)

Sorbonne Université, Inserm, UMR_S1158 Neurophysiologie Respiratoire Expérimentale et Clinique, 75005, Paris, France.

Laurence Bodineau (L)

Sorbonne Université, Inserm, UMR_S1158 Neurophysiologie Respiratoire Expérimentale et Clinique, 75005, Paris, France. laurence.bodineau@sorbonne-universite.fr.

Classifications MeSH