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Effects of Two Different Sedation Regimes on Auditory Evoked Potentials and Electroencephalogram (EEG)

The Effects of Dexmedetomidine/Remifentanil and Midazolam/Remifentanil on Auditory-evoked Potentials and Electroencephalogram at Light-to-moderate Sedation Levels in Healthy Subjects

Status
Completed
Phases
NA
Study type
Interventional
Source
ClinicalTrials.gov
Registry ID
NCT00641563
Enrollment
10
Registered
2008-03-24
Start date
2004-03-31
Completion date
2004-06-30
Last updated
2011-11-22

For informational purposes only — not medical advice. Sourced from public registries and may not reflect the latest updates. Terms

Conditions

Conscious Sedation, Critical Care, Deep Sedation

Keywords

dexmedetomidine, midazolam, remifentanil, Electroencephalography, Event related potentials, BIS, Bispectral Index, Response Entropy, State Entropy

Brief summary

Sedation may be necessary in intensive care to facilitate diverse therapeutic interventions, but the use of sedative drugs may increase the risk of delirium and long-term cognitive impairment. Thus the implementation and monitoring of sedation remains difficult despite the use of sedation protocols and clinical sedation scores. Attempts to improve sedation monitoring through the use of the electroencephalogram(EEG) have been disappointing. Derived variables based on the unstimulated EEG fail to predict the response to external stimuli at the clinically most relevant light-to-moderate sedation levels, and the overlap between moderate and deep sedation levels is wide. We have demonstrated that long-latency auditory evoked potentials (ERPs)can be used to avoid deep levels of sedation in healthy volunteers during propofol sedation, independent of the concomitant administration of remifentanil. This approach has a potential clinical application for improved monitoring of sedation. Since the effects of different sedative drugs on the EEG may vary widely, the use of ERPs to monitor sedation needs to be evaluated with different sedative drugs. Therefore we will administer two widely used drug combinations (dexmedetomidine/remifentanil and midazolam/remifentanil) in healthy volunteers and record ERPS and processed EEG during clinical relevant sedation levels

Detailed description

Sedation may be necessary in intensive care to facilitate diverse therapeutic interventions, but the use of sedative drugs may increase the risk of delirium and long-term cognitive impairment. Thus the implementation and monitoring of sedation remains difficult despite the use of sedation protocols and clinical sedation scores. Attempts to improve sedation monitoring through the use of the electroencephalogram (EEG) have been disappointing. Derived variables based on the unstimulated EEG fail to predict the response to external stimuli at the clinically most relevant light-to-moderate sedation levels, and the overlap between moderate and deep sedation levels is wide. We have demonstrated that long-latency auditory evoked potentials (ERPs)can be used to avoid deep levels of sedation in healthy volunteers during propofol sedation, independent of the concomitant administration of remifentanil. This approach has a potential clinical application for improved monitoring of sedation. Since the effects of different sedative drugs on the EEG may vary widely, the use of ERPs to monitor sedation needs to be evaluated with different sedative drugs. The alpha-2 agonist dexmedetomidine (dex) has been approved for short-term sedation in surgical intensive care unit (ICU) patients. Preliminary data suggest that the risk of delirium may be substantially reduced when dexmedetomidine is used to produce sedation. Since dexmedetomidine acts via different receptors and brain areas than do benzodiazepines and propofol, its impact on the brain electrophysiology may also be different. The assessment of dexmedetomidine's effects on the EEG and ERPs at various sedation levels has been limited in humans. We hypothesized that the combinations DEXMEDETOMIDINE/REMIFANTANIL (dex/remi) and MIDAZOLAM/REMIFENTANIL (mida/remi) would induce the same changes in EEG and long-latency ERPs during light-to-moderate levels of sedation in healthy subjects, despite the different quality of sedation that they provide. The opioid remifentanil was added because virtually all patients in the ICU have some level of pain and receive an opioid analgesic in combination with a sedative. 10 healthy subjects were assessed with both drug combinations (dex/remi and mida/remi), at least 7 days apart. The sequence of the drug combinations were randomized.

Interventions

DRUGDexmedetomidine

Infusion of dexmedetomidine

DRUGMidazolam

Midazolam infusion

DRUGRemifentanil

Infusion of remifentanil

Sponsors

GE Healthcare
CollaboratorINDUSTRY
Insel Gruppe AG, University Hospital Bern
Lead SponsorOTHER

Study design

Allocation
RANDOMIZED
Intervention model
CROSSOVER
Primary purpose
BASIC_SCIENCE
Masking
NONE

Eligibility

Sex/Gender
MALE
Age
18 Years to 40 Years
Healthy volunteers
Yes

Inclusion criteria

* age 18 years and older * healthy

Exclusion criteria

* History of problems during anesthesia * Impairment of the auditory system

Design outcomes

Primary

MeasureTime frameDescription
Amplitudes (in Micro Volts) of Acoustic Event Related Potentials (Time-locked Amplitudes in the Electroencephalogram 100 Milliseconds After the Acoustic Stimulus, Averaged Over 40 Stimuli)Awake and at 3 Different Drug-induced Sedation Levelsawake + 3 sedation levels (RS2/3/4) (20 minutes each)Event Related Potentials (time-locked amplitudes in the electroencephalogram 100 milliseconds after the acoustic stimulus, averaged over 40 stimuli) Sedation levels were graded with the Ramsay scale (RS), where the responses of patients to standardized increasing stimuli (voice, then prodding, the pain stimulus) are graded. The higher the number, the deeper is the sedation. RS 6 means no response at all (= anesthesia)

Secondary

MeasureTime frameDescription
BIS-Index Awake and 3 Sedation Levels (RS 2/3/4)awake and 3 sedation levels (RS 2/3/4) 20 min eachBIS-Index is a dimensionless value ranging from 0-100, indicating fully awake at 100 and a flat-line electroencephalogram at 0. Standard anesthesia creates a BIS-Index range 40-60. The scale is ordinal, not interval. BIS Index is calculated from the EEG by a proprietary algorithm (Aspect Medical Inc.)

Countries

Switzerland

Participant flow

Participants by arm

ArmCount
All Study Participants
Both arms combined
10
Total10

Baseline characteristics

CharacteristicAll Study Participants
Age, Categorical
<=18 years
0 Participants
Age, Categorical
>=65 years
0 Participants
Age, Categorical
Between 18 and 65 years
10 Participants
Age Continuous24 years
STANDARD_DEVIATION 3
Region of Enrollment
Switzerland
10 participants
Sex: Female, Male
Female
0 Participants
Sex: Female, Male
Male
10 Participants

Adverse events

Event typeEG000
affected / at risk
EG001
affected / at risk
deaths
Total, all-cause mortality
— / —— / —
other
Total, other adverse events
0 / 100 / 10
serious
Total, serious adverse events
0 / 100 / 10

Outcome results

Primary

Amplitudes (in Micro Volts) of Acoustic Event Related Potentials (Time-locked Amplitudes in the Electroencephalogram 100 Milliseconds After the Acoustic Stimulus, Averaged Over 40 Stimuli)Awake and at 3 Different Drug-induced Sedation Levels

Event Related Potentials (time-locked amplitudes in the electroencephalogram 100 milliseconds after the acoustic stimulus, averaged over 40 stimuli) Sedation levels were graded with the Ramsay scale (RS), where the responses of patients to standardized increasing stimuli (voice, then prodding, the pain stimulus) are graded. The higher the number, the deeper is the sedation. RS 6 means no response at all (= anesthesia)

Time frame: awake + 3 sedation levels (RS2/3/4) (20 minutes each)

ArmMeasureGroupValue (MEAN)Dispersion
Dex/RemiAmplitudes (in Micro Volts) of Acoustic Event Related Potentials (Time-locked Amplitudes in the Electroencephalogram 100 Milliseconds After the Acoustic Stimulus, Averaged Over 40 Stimuli)Awake and at 3 Different Drug-induced Sedation Levelsawake-5.9 micro VoltStandard Deviation 1.3
Dex/RemiAmplitudes (in Micro Volts) of Acoustic Event Related Potentials (Time-locked Amplitudes in the Electroencephalogram 100 Milliseconds After the Acoustic Stimulus, Averaged Over 40 Stimuli)Awake and at 3 Different Drug-induced Sedation LevelsRS 2-6.4 micro VoltStandard Deviation 1.1
Dex/RemiAmplitudes (in Micro Volts) of Acoustic Event Related Potentials (Time-locked Amplitudes in the Electroencephalogram 100 Milliseconds After the Acoustic Stimulus, Averaged Over 40 Stimuli)Awake and at 3 Different Drug-induced Sedation LevelsRS 3-4.7 micro VoltStandard Deviation 2.4
Dex/RemiAmplitudes (in Micro Volts) of Acoustic Event Related Potentials (Time-locked Amplitudes in the Electroencephalogram 100 Milliseconds After the Acoustic Stimulus, Averaged Over 40 Stimuli)Awake and at 3 Different Drug-induced Sedation LevelsRS 4-3.5 micro VoltStandard Deviation 2.7
Mida/RemiAmplitudes (in Micro Volts) of Acoustic Event Related Potentials (Time-locked Amplitudes in the Electroencephalogram 100 Milliseconds After the Acoustic Stimulus, Averaged Over 40 Stimuli)Awake and at 3 Different Drug-induced Sedation LevelsRS 4-0.4 micro VoltStandard Deviation 1.1
Mida/RemiAmplitudes (in Micro Volts) of Acoustic Event Related Potentials (Time-locked Amplitudes in the Electroencephalogram 100 Milliseconds After the Acoustic Stimulus, Averaged Over 40 Stimuli)Awake and at 3 Different Drug-induced Sedation Levelsawake-5.3 micro VoltStandard Deviation 1.3
Mida/RemiAmplitudes (in Micro Volts) of Acoustic Event Related Potentials (Time-locked Amplitudes in the Electroencephalogram 100 Milliseconds After the Acoustic Stimulus, Averaged Over 40 Stimuli)Awake and at 3 Different Drug-induced Sedation LevelsRS 3-2.4 micro VoltStandard Deviation 2
Mida/RemiAmplitudes (in Micro Volts) of Acoustic Event Related Potentials (Time-locked Amplitudes in the Electroencephalogram 100 Milliseconds After the Acoustic Stimulus, Averaged Over 40 Stimuli)Awake and at 3 Different Drug-induced Sedation LevelsRS 2-4.8 micro VoltStandard Deviation 2
Secondary

BIS-Index Awake and 3 Sedation Levels (RS 2/3/4)

BIS-Index is a dimensionless value ranging from 0-100, indicating fully awake at 100 and a flat-line electroencephalogram at 0. Standard anesthesia creates a BIS-Index range 40-60. The scale is ordinal, not interval. BIS Index is calculated from the EEG by a proprietary algorithm (Aspect Medical Inc.)

Time frame: awake and 3 sedation levels (RS 2/3/4) 20 min each

ArmMeasureGroupValue (MEAN)Dispersion
Dex/RemiBIS-Index Awake and 3 Sedation Levels (RS 2/3/4)sedation level RS 284.5 Units on a scaleStandard Deviation 5.82
Dex/RemiBIS-Index Awake and 3 Sedation Levels (RS 2/3/4)awake92.5 Units on a scaleStandard Deviation 4.64
Dex/RemiBIS-Index Awake and 3 Sedation Levels (RS 2/3/4)sedation level RS 369.5 Units on a scaleStandard Deviation 8.05
Dex/RemiBIS-Index Awake and 3 Sedation Levels (RS 2/3/4)sedation level RS 451.4 Units on a scaleStandard Deviation 7.16
Mida/RemiBIS-Index Awake and 3 Sedation Levels (RS 2/3/4)sedation level RS 468.9 Units on a scaleStandard Deviation 5.7
Mida/RemiBIS-Index Awake and 3 Sedation Levels (RS 2/3/4)sedation level RS 373.2 Units on a scaleStandard Deviation 6.66
Mida/RemiBIS-Index Awake and 3 Sedation Levels (RS 2/3/4)awake93.7 Units on a scaleStandard Deviation 3.51
Mida/RemiBIS-Index Awake and 3 Sedation Levels (RS 2/3/4)sedation level RS 284.7 Units on a scaleStandard Deviation 5.13

Source: ClinicalTrials.gov · Data processed: Apr 3, 2026