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The Electroencephalographic Mechanisms of Anesthesia and Human Consciousness

The Electroencephalographic Mechanisms of Anesthesia and Human Consciousness

Status
Recruiting
Phases
Phase 4
Study type
Interventional
Source
ClinicalTrials.gov
Registry ID
NCT07145697
Enrollment
30
Registered
2025-08-28
Start date
2025-04-10
Completion date
2027-06-30
Last updated
2025-08-28

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

Conditions

Consciousness, Level Altered

Brief summary

In the field of general anesthesia research, the neural mechanism underlying the loss of consciousness has long been a highly core issue. It remains unclear what consciousness is and how it emerges from brain activity. By studying anesthesia and sleep, the investigators aim to reveal what happens in the brain when consciousness is lost and when it returns. Dexmedetomidine, a widely used drug in clinical anesthetic practice, plays an important role in the anesthetic process due to its unique pharmacological properties. It hardly causes respiratory depression during the sedative and hypnotic process, which makes it occupy an important position in clinical anesthetic regimens. The emergence of stereoelectroencephalography (SEEG) technology has brought new opportunities for research on anesthesia mechanisms. Compared with traditional electroencephalographic (EEG), SEEG can directly penetrate into deep brain structures to record electrical activities, enabling precise localization of brain regions closely related to consciousness regulation. At present, although there have been some studies on the effects of dexmedetomidine on EEG activities, there are still many deficiencies. Most studies have focused on simple spectral analysis of EEG signals or observations of limited brain regions, lacking comprehensive multi-dimensional research on functional connectivity between brain regions, microstates, and complexity. Through monitoring key brain regions, the SEEG technology can obtain more targeted and accurate information, thereby providing strong support for comprehensively revealing the neural mechanisms of dexmedetomidine-induced loss of consciousness.

Interventions

DRUGDexmedetomidine

Escalating concentrations until loss of responsiveness

Sponsors

Guangzhou General Hospital of Guangzhou Military Command
Lead SponsorOTHER

Study design

Allocation
RANDOMIZED
Intervention model
PARALLEL
Primary purpose
BASIC_SCIENCE
Masking
NONE

Eligibility

Sex/Gender
ALL
Age
3 Years to 65 Years
Healthy volunteers
No

Inclusion criteria

1. Age range: 1 - 65 years old 2. BMI: 18.5 - 25.0 kg/m² 3. ASA physical status classification: I - III 4. Patients diagnosed with drug - refractory epilepsy who, after long - term monitoring of epileptic seizures, require stereo-electroencephalography (SEEG) electrode implantation based on the clinical need for monitoring their epilepsy. 5. Patients voluntarily participate in this study and sign a written informed consent form.

Exclusion criteria

1. Patients with severe arrhythmia or other organic heart diseases; 2. Patients with comorbid obstructive sleep apnea-hypopnea syndrome (OSAHS); 3. Patients with hepatic or renal dysfunction; those with a history of immunodeficiency diseases , or a history of cancer/malignant tumors, or a history of autoimmune diseases, or severe cardiovascular and cerebrovascular diseases, or other diseases that may significantly reduce life expectancy; 4. Patients with any history of diseases that may affect protocol compliance (such as severe mental disorders, disturbance of consciousness; cognitive dysfunction, drug abuse or addiction, etc.); 5. Pregnant or lactating women, or those of childbearing potential who are unwilling/unable to take effective contraceptive measures; 6. Patients with known allergies to the ingredients contained in the drugs used in this study; 7. Patients who have participated in any drug clinical trial within 6 months before the screening examination; 8. Patients who are deemed unsuitable to participate in this study by the researcher.

Design outcomes

Primary

MeasureTime frame
Stereo-electroencephalographyAfter the patient has completed the monitoring of epileptic seizures due to clinical needs, they can participate in this test. Through test completion, an average of 3 hours.

Secondary

MeasureTime frameDescription
Functional connectivitythrough test completion, an average of 3 hourspermutation mutual information (PMI); stereo-electroencephalography assessment parameter
The complexitythrough test completion, an average of 3 hoursexamined by permutation entropy (PE); stereo-electroencephalography assessment parameter
Phase-amplitude coupling (PAC)through test completion, an average of3 hours.PAC is used to illuminate cross-frequency coordination in neurophysiological activity of electroencephalogram. stereo-electroencephalography assessment parameter
Directional connectivitythrough test completion, an average of 3 hourssymbolic conditional mutual information (SCMI) and directionality index (DI); stereo-electroencephalography assessment parameter

Countries

China

Outcome results

None listed

Source: ClinicalTrials.gov · Data processed: Feb 4, 2026