Respiratory, cardiac, EEG, BOLD signals and functional connectivity over multiple microsleep episodes
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Vince D. Calhoun | Soon Chun Siong | Ju Lynn Ong | Juan Helen Zhou | Thomas Liu | Kwun Kei Ng | Ksenia Vinogradova | Michael W. L. Chee | V. Calhoun | Thomas T. Liu | J. Zhou | M. Chee | K. K. Ng | J. Ong | K. Vinogradova | K. K. Ng
[1] B. T. Thomas Yeo,et al. Co-activated yet disconnected—Neural correlates of eye closures when trying to stay awake , 2015, NeuroImage.
[2] Uri Hasson,et al. Progression to deep sleep is characterized by changes to BOLD dynamics in sensory cortices , 2016, NeuroImage.
[3] R T Wilkinson,et al. Behavioral versus EEG-based monitoring of all-night sleep/wake patterns. , 1988, Sleep.
[4] Masanori Sekimoto,et al. Activity of Midbrain Reticular Formation and Neocortex during the Progression of Human Non-Rapid Eye Movement Sleep , 1999, The Journal of Neuroscience.
[5] Vince D. Calhoun,et al. Connectivity dynamics from wakefulness to sleep , 2020, NeuroImage.
[6] Christian Sander,et al. Assessment of Wakefulness and Brain Arousal Regulation in Psychiatric Research , 2016, Neuropsychobiology.
[7] Thomas T. Liu,et al. Differences in the resting-state fMRI global signal amplitude between the eyes open and eyes closed states are related to changes in EEG vigilance , 2016, NeuroImage.
[8] Jonathan D. Power. A simple but useful way to assess fMRI scan qualities , 2017, NeuroImage.
[9] Hengyi Rao,et al. Cerebral metabolic rate of oxygen during transition from wakefulness to sleep measured with high temporal resolution OxFlow MRI with concurrent EEG , 2020, Journal of cerebral blood flow and metabolism : official journal of the International Society of Cerebral Blood Flow and Metabolism.
[10] Tadao Hori,et al. Topographical EEG changes and the hypnagogic experience. , 1994 .
[11] A GXS,et al. The benefits , 2006, To Subsidise My Income.
[12] Thomas T. Liu,et al. Noise contributions to the fMRI signal: An overview , 2016, NeuroImage.
[13] Mark W. Woolrich,et al. Investigations into within- and between-subject resting-state amplitude variations , 2017, NeuroImage.
[14] Enzo Tagliazucchi,et al. Automatic sleep staging using fMRI functional connectivity data , 2012, NeuroImage.
[15] Marisa O. Hollinshead,et al. The organization of the human cerebral cortex estimated by intrinsic functional connectivity. , 2011, Journal of neurophysiology.
[16] B. T. Thomas Yeo,et al. Functional connectivity during rested wakefulness predicts vulnerability to sleep deprivation , 2015, NeuroImage.
[17] Maquet,et al. Functional neuroimaging of normal human sleep by positron emission tomography , 2000, Journal of sleep research.
[18] G H Glover,et al. Image‐based method for retrospective correction of physiological motion effects in fMRI: RETROICOR , 2000, Magnetic resonance in medicine.
[19] Juan Zhou,et al. Spontaneous eyelid closures link vigilance fluctuation with fMRI dynamic connectivity states , 2016, Proceedings of the National Academy of Sciences.
[20] Catie Chang,et al. Mapping the end-tidal CO2 response function in the resting-state BOLD fMRI signal: Spatial specificity, test–retest reliability and effect of fMRI sampling rate , 2015, NeuroImage.
[21] Robert Turner,et al. A Method for Removing Imaging Artifact from Continuous EEG Recorded during Functional MRI , 2000, NeuroImage.
[22] J D Watson,et al. Nonparametric Analysis of Statistic Images from Functional Mapping Experiments , 1996, Journal of cerebral blood flow and metabolism : official journal of the International Society of Cerebral Blood Flow and Metabolism.
[23] Timothy O. Laumann,et al. Sources and implications of whole-brain fMRI signals in humans , 2017, NeuroImage.
[24] Gregor Leicht,et al. EEG-vigilance and BOLD effect during simultaneous EEG/fMRI measurement , 2009, NeuroImage.
[25] Clifford B Saper,et al. Wake–sleep circuitry: an overview , 2017, Current Opinion in Neurobiology.
[26] Thomas Stephan,et al. Eye closure in darkness animates sensory systems , 2003, NeuroImage.
[27] Pablo Balenzuela,et al. On wakefulness fluctuations as a source of BOLD functional connectivity dynamics , 2017, Scientific Reports.
[28] Feng Han,et al. Arousal Contributions to Resting-State fMRI Connectivity and Dynamics , 2019, Front. Neurosci..
[29] J. Trinder,et al. Cardiac activity during sleep onset. , 1999, Psychophysiology.
[30] G. Tononi,et al. Auditory responses and stimulus-specific adaptation in rat auditory cortex are preserved across NREM and REM sleep. , 2015, Cerebral cortex.
[31] Thierry Bal,et al. Sensory gating mechanisms of the thalamus , 1994, Current Opinion in Neurobiology.
[32] M. Schölvinck,et al. Tracking brain arousal fluctuations with fMRI , 2016, Proceedings of the National Academy of Sciences.
[33] Arpita Jadhav Bhatt,et al. Real-Time Driver Drowsiness Detection System Using Eye Aspect Ratio and Eye Closure Ratio , 2019, SSRN Electronic Journal.
[34] Jeff H. Duyn,et al. Low-frequency fluctuations in the cardiac rate as a source of variance in the resting-state fMRI BOLD signal , 2007, NeuroImage.
[35] Edward T. Bullmore,et al. Network-based statistic: Identifying differences in brain networks , 2010, NeuroImage.
[36] N. Tzourio-Mazoyer,et al. Automated Anatomical Labeling of Activations in SPM Using a Macroscopic Anatomical Parcellation of the MNI MRI Single-Subject Brain , 2002, NeuroImage.
[37] G. McCarthy,et al. The Influence of Memory Load Upon Delay-Interval Activity in a Working-Memory Task: An Event-Related Functional MRI Study , 2000, Journal of Cognitive Neuroscience.
[38] M. Fukunaga,et al. Low frequency BOLD fluctuations during resting wakefulness and light sleep: A simultaneous EEG‐fMRI study , 2008, Human brain mapping.
[39] D. Dinges,et al. EVALUATION OF TECHNIQUES FOR OCULAR MEASUREMENT AS AN INDEX OF FATIGUE AND THE BASIS FOR ALERTNESS MANAGEMENT , 1998 .
[40] Carrie R. H. Innes,et al. Losing the struggle to stay awake: Divergent thalamic and cortical activity during microsleeps , 2014, Human brain mapping.
[41] R. Dampney,et al. Bidirectional interactions between the baroreceptor reflex and arousal: an update. , 2015, Sleep medicine.
[42] Govinda R. Poudel,et al. Distinct neural correlates of time-on-task and transient errors during a visuomotor tracking task after sleep restriction , 2013, NeuroImage.
[43] April R. Levin,et al. The Harvard Automated Processing Pipeline for Electroencephalography (HAPPE): Standardized Processing Software for Developmental and High-Artifact Data , 2018, Front. Neurosci..
[44] Arno Villringer,et al. Internal ventilation system of MR scanners induces specific EEG artifact during simultaneous EEG-fMRI , 2013, NeuroImage.
[45] Peter A. Bandettini,et al. Separating respiratory-variation-related fluctuations from neuronal-activity-related fluctuations in fMRI , 2006, NeuroImage.
[46] Ming Li,et al. Impact of global signal regression on characterizing dynamic functional connectivity and brain states , 2018, NeuroImage.
[47] Louis Lemieux,et al. Identification of EEG Events in the MR Scanner: The Problem of Pulse Artifact and a Method for Its Subtraction , 1998, NeuroImage.
[48] 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.
[49] Michael W. L. Chee,et al. Lapsing when sleep deprived: Neural activation characteristics of resistant and vulnerable individuals , 2010, NeuroImage.
[50] H. Magoun,et al. An ascending reticular activating system in the brain stem. , 1952, Harvey lectures.
[51] Michael W. L. Chee,et al. Modulating rest-break length induces differential recruitment of automatic and controlled attentional processes upon task reengagement , 2016, NeuroImage.
[52] L. Sokoloff,et al. The effects of sleep and lack of sleep on the cerebral circulation and metabolism of normal young men. , 1955, The Journal of clinical investigation.
[53] Yu-Ping Wang,et al. Dynamic Resting-State Connectivity Differences in Eyes Open Versus Eyes Closed Conditions , 2020, Brain Connect..
[54] Roel H. R. Deckers,et al. Large-amplitude, spatially correlated fluctuations in BOLD fMRI signals during extended rest and early sleep stages. , 2006, Magnetic resonance imaging.
[55] Catie Chang,et al. Template-based prediction of vigilance fluctuations in resting-state fMRI , 2017, NeuroImage.
[56] Thomas E. Nichols,et al. Nonparametric permutation tests for functional neuroimaging: A primer with examples , 2002, Human brain mapping.
[57] Catie Chang,et al. Relationship between respiration, end-tidal CO2, and BOLD signals in resting-state fMRI , 2009, NeuroImage.
[58] M. Czisch,et al. Development of the brain's default mode network from wakefulness to slow wave sleep. , 2011, Cerebral cortex.
[59] Maryam Falahpour,et al. Vigilance Effects in Resting-State fMRI , 2020, Frontiers in Neuroscience.
[60] Catie Chang,et al. Physiological changes in sleep that affect fMRI inference , 2020, Current Opinion in Behavioral Sciences.
[61] J Trinder,et al. Ventilation during sleep onset. , 1987, Journal of applied physiology.
[62] Akinori Ueno,et al. Detecting deteriorated vigilance using percentage of eyelid closure time during behavioral maintenance of wakefulness tests. , 2011, International journal of psychophysiology : official journal of the International Organization of Psychophysiology.
[63] H. Schulz,et al. A taxonomic analysis of sleep stages. , 2006, Sleep.
[64] S. Chokroverty,et al. The visual scoring of sleep in adults. , 2007, Journal of clinical sleep medicine : JCSM : official publication of the American Academy of Sleep Medicine.
[65] N. Thakor,et al. Quantitative EEG analysis methods and clinical applications , 2009 .
[66] P. Arnal,et al. Benefits of Sleep Extension on Sustained Attention and Sleep Pressure Before and During Total Sleep Deprivation and Recovery. , 2015, Sleep.
[67] Thomas T. Liu,et al. The Effects of Global Signal Regression on Estimates of Resting-State Blood Oxygen-Level-Dependent Functional Magnetic Resonance Imaging and Electroencephalogram Vigilance Correlations , 2018, Brain Connect..
[68] A. Braun,et al. Regional cerebral blood flow throughout the sleep-wake cycle. An H2(15)O PET study. , 1997, Brain : a journal of neurology.
[69] Manuel S. Schröter,et al. Development of a Large-Scale Functional Brain Network during Human Non-Rapid Eye Movement Sleep , 2010, The Journal of Neuroscience.
[70] M. Chee,et al. Lapsing during Sleep Deprivation Is Associated with Distributed Changes in Brain Activation , 2008, The Journal of Neuroscience.
[71] Valer Jurcak,et al. 10/20, 10/10, and 10/5 systems revisited: Their validity as relative head-surface-based positioning systems , 2007, NeuroImage.
[72] Michael W. L. Chee,et al. Time-on-task and sleep deprivation effects are evidenced in overlapping brain areas , 2013, NeuroImage.
[73] E. G. Jones,et al. Thalamic oscillations and signaling , 1990 .
[74] Evan M. Gordon,et al. On the Stability of BOLD fMRI Correlations , 2016, Cerebral cortex.
[75] L. Uddin. Bring the Noise: Reconceptualizing Spontaneous Neural Activity , 2020, Trends in Cognitive Sciences.
[76] T. Kjaer,et al. Regional cerebral blood flow during light sleep – a H215O‐PET study , 2002, Journal of sleep research.
[77] Yuying Jiang,et al. Driver Sleepiness Detection System Based on Eye Movements Variables , 2013 .
[78] Jürgen Schmidt,et al. Eye blink detection for different driver states in conditionally automated driving and manual driving using EOG and a driver camera , 2017, Behavior Research Methods.
[79] Catie Chang,et al. Influence of heart rate on the BOLD signal: The cardiac response function , 2009, NeuroImage.
[80] Enzo Tagliazucchi,et al. Human non-REM sleep and the mean global BOLD signal , 2018, Journal of cerebral blood flow and metabolism : official journal of the International Society of Cerebral Blood Flow and Metabolism.
[81] Vince D. Calhoun,et al. Connectivity dynamics from wakefulness to sleep , 2018, NeuroImage.
[82] D. Dinges,et al. A meta-analysis of the impact of short-term sleep deprivation on cognitive variables. , 2010, Psychological bulletin.
[83] Daisuke Ono,et al. Hypothalamic regulation of the sleep/wake cycle , 2017, Neuroscience Research.
[84] Govinda R. Poudel,et al. Temporal evolution of neural activity and connectivity during microsleeps when rested and following sleep restriction , 2018, NeuroImage.
[85] Michael W. L. Chee,et al. Sleep deprivation reduces default mode network connectivity and anti-correlation during rest and task performance , 2012, NeuroImage.
[86] James C. Scott,et al. Diminished brain glucose metabolism is a significant determinant for falling rates of systemic glucose utilization during sleep in normal humans. , 1994, The Journal of clinical investigation.
[87] Christopher L. Asplund,et al. Now you hear me, now you don't: eyelid closures as an indicator of auditory task disengagement. , 2013, Sleep.
[88] J. Armony,et al. Auditory Processing across the Sleep-Wake Cycle Simultaneous EEG and fMRI Monitoring in Humans , 2000, Neuron.
[89] Tobias U. Hauser,et al. The PhysIO Toolbox for Modeling Physiological Noise in fMRI Data , 2017, Journal of Neuroscience Methods.
[90] Jonathan D. Power,et al. Characteristics of respiratory measures in young adults scanned at rest, including systematic changes and “missed” deep breaths , 2020, NeuroImage.
[91] Edmund T. Rolls,et al. Implementation of a new parcellation of the orbitofrontal cortex in the automated anatomical labeling atlas , 2015, NeuroImage.
[92] T. Åkerstedt,et al. Subjective sleepiness, simulated driving performance and blink duration: examining individual differences , 2006, Journal of sleep research.
[93] V. Calhoun,et al. EEG Signatures of Dynamic Functional Network Connectivity States , 2017, Brain Topography.
[94] H. Laufs,et al. Decoding Wakefulness Levels from Typical fMRI Resting-State Data Reveals Reliable Drifts between Wakefulness and Sleep , 2014, Neuron.
[95] Thomas T. Liu,et al. Coupling of cerebral blood flow and oxygen consumption during physiological activation and deactivation measured with fMRI , 2004, NeuroImage.
[96] Alessandro Silvani,et al. PHYSIOLOGICAL SLEEP‐DEPENDENT CHANGES IN ARTERIAL BLOOD PRESSURE: CENTRAL AUTONOMIC COMMANDS AND BAROREFLEX CONTROL , 2008, Clinical and experimental pharmacology & physiology.
[97] Peter Achermann,et al. Microsleep episodes in the borderland between wakefulness and sleep. , 2019, Sleep.
[98] Mary E. Meyerand,et al. The effect of scan length on the reliability of resting-state fMRI connectivity estimates , 2013, NeuroImage.
[99] M. Raichle,et al. Cortical network functional connectivity in the descent to sleep , 2009, Proceedings of the National Academy of Sciences.
[100] Irene Tracey,et al. Resting fluctuations in arterial carbon dioxide induce significant low frequency variations in BOLD signal , 2004, NeuroImage.
[101] Chris I. De Zeeuw,et al. The Sleeping Cerebellum , 2017, Trends in Neurosciences.
[102] Søren Holm,et al. Cerebral oxygen metabolism and cerebral blood flow in man during light sleep (stage 2) , 1991, Brain Research.
[103] S. Doran,et al. Sustained attention performance during sleep deprivation: evidence of state instability. , 2001, Archives italiennes de biologie.
[104] H. Schulz,et al. A computerized method for detecting episodes of wakefulness during sleep based on the alpha slow-wave index (ASI). , 1994, Sleep.
[105] Thomas E. Scammell,et al. The sleep switch: hypothalamic control of sleep and wakefulness , 2001, Trends in Neurosciences.
[106] Jeff H. Duyn,et al. Contribution of systemic vascular effects to fMRI activity in white matter , 2018, NeuroImage.
[107] Peter A. Bandettini,et al. The respiration response function: The temporal dynamics of fMRI signal fluctuations related to changes in respiration , 2008, NeuroImage.
[108] R. Ogilvie,et al. Behavioral, event-related potential, and EEG/FFT changes at sleep onset. , 1991, Psychophysiology.