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Changes in Autonomic Nervous Activity and Blood Pressure After Anesthesia Induction: Remimazolam Versus Propofol

Effects of Changes in Autonomic Nervous Activity on Changes in Blood Pressure After Anesthesia Induction: Remimazolam Versus Propofol

Status
Completed
Phases
Phase 3
Study type
Interventional
Source
ClinicalTrials.gov
Registry ID
NCT05635201
Enrollment
78
Registered
2022-12-02
Start date
2022-12-19
Completion date
2023-09-30
Last updated
2023-10-03

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

Conditions

General Anesthetics

Brief summary

The goal of this clinical trial is to compare the effects of changes in autonomic nervous activity on changes in blood pressure after anesthesia induction between propofol and remimazolam in patients undergoing low-risk surgery. The main questions it aims to answer are: * Does remimazolam shift sympathovagal balance toward parasympathetic predominance less than propofol? * Does the less shift in sympathovagal balance toward parasympathetic predominance attenuate the reduction in blood pressure? Participants will be administered either propofol or remimazolam for anesthesia induction, after which the autonomic nervous activity and blood pressure will be measured. Researchers will compare the propofol and remimazolam groups to see if remimazolam causes less shift in sympathovagal balance toward parasympathetic predominance and subsequently attenuates the reduction in blood pressure.

Interventions

After a 10-minute-long acclimation, general anesthesia is induced with 2% propofol at the effect-site concentration of 4 μg/ml based on the Marsh Pharmacokinetic model. The effect-site concentration was maintained at 4 μg/ml until the trachea was intubated. Five minutes after the anesthesia induction, remifentanil was administered at the effect-site concentration of 4 ng/ml based on the Minto pharmacokinetic model until the trachea was intubated. With the initiation of remifentanil infusion, 1 mg/kg of rocuronium was administered following the calibration of the neuromuscular monitoring device. With the train-of-four count of 0, the trachea was intubated. Then, the effect-site concentrations of propofol and remifentanil were decreased to 3 μg/ml and 0 ng/ml, respectively, until the surgical incision was made.

DRUGAnesthesia induction with remimazolam

After a 10-minute-long acclimation, general anesthesia is induced with a 2-minute-long infusion of remimazolam at a rate of 12 mg/kg/hr, after which the infusion rate was reduced to 1 mg/kg/hr and was maintained until the surgical incision was made. Five minutes after the anesthesia induction, remifentanil was administered at the effect-site concentration of 4 ng/ml based on the Minto pharmacokinetic model until the trachea was intubated. With the initiation of remifentanil infusion, 1 mg/kg of rocuronium was administered following the calibration of the neuromuscular monitoring device. With the train-of-four count of 0, the trachea was intubated. Then, the effect-site concentration of remifentanil was decreased to 0 ng/ml until the surgical incision was made.

Sponsors

Hana Pharm Co., Ltd.
CollaboratorINDUSTRY
Daegu Catholic University Medical Center
Lead SponsorOTHER

Study design

Allocation
RANDOMIZED
Intervention model
PARALLEL
Primary purpose
PREVENTION
Masking
QUADRUPLE (Subject, Caregiver, Investigator, Outcomes Assessor)

Eligibility

Sex/Gender
ALL
Age
20 Years to 60 Years
Healthy volunteers
No

Inclusion criteria

* Age between 20 and 60 years * American Society of Anesthesiologists physical status of 1 * Elective low-risk surgery requiring general anesthesia, the duration of which is shorter than 2 hours and 30 minutes (e.g., Laparoscopic cholecystectomy, Functional endoscopic sinus surgery, etc.) * Body mass index less than 30 kg/m2

Exclusion criteria

* Arrhythmias or cardiac conduction disorders * Disease or medical conditions affecting autonomic nervous activity (hypertension, diabetes mellitus, ischemic heart disease, congestive heart failure, cerebrovascular accident, chronic kidney disease, thyroid dysfunction, etc.) * Valvular heart disease * Use of medications affecting autonomic nervous activity or cardiac conduction (e.g., beta blocker) * Limited mouth opening, limited head and upper neck extension, history of obstructive sleep apnea, or Modified Mallampati class 3 or 4 * Serum electrolyte abnormalities * Severe hypovolemia * Psychiatric diseases

Design outcomes

Primary

MeasureTime frameDescription
Difference in low-to-high frequency power ratio (LF/HF) of heart rate variability (HRV) between 5-minute-pre-anesthesia and 5-minute-post-anesthesia inductionBetween 5 minutes before and after anesthesia inductionLow-frequency power (LF) and high-frequency power (HF) of heart rate variability (HRV) were calculated with the Fast Fourier Transform applied to a 5-minute-long electrocardiogram (ECG) waveform. LF/HF represents the sympathovagal balance.

Secondary

MeasureTime frameDescription
Mean arterial blood pressure during 5 minutes before surgical incision5 minutes before surgical incisionMeasured at any time during 5 minutes before surgical incision
Mean arterial blood pressure during 5 minutes after anesthesia induction5 minutes after anesthesia inductionMean arterial blood pressure corresponding to the lowest systolic blood pressure during 5 minutes after anesthesia induction
Mean arterial blood pressure during 5 minutes after endotracheal intubation5 minutes after endotracheal intubationMeasured at any time during 5 minutes after endotracheal intubation
Systolic blood pressure during 5 minutes before anesthesia induction5 minutes before anesthesia inductionMeasured at any time during 5 minutes before anesthesia induction
Systolic blood pressure during 5 minutes after anesthesia induction5 minutes after anesthesia inductionThe lowest systolic blood pressure during 5 minutes after anesthesia induction
Bispectral index (BIS) during 5 minutes before anesthesia induction5 minutes before anesthesia inductionThe BIS value corresponding to blood pressure measured during 5 minutes before anesthesia induction
Bispectral index (BIS) during 5 minutes after anesthesia induction5 minutes after anesthesia inductionThe BIS value corresponding to the lowest systolic blood pressure during 5 minutes after anesthesia induction
Bispectral index (BIS) during 5 minutes after endotracheal intubation5 minutes after anesthesia inductionThe BIS value corresponding to blood pressure measured during 5 minutes after endotracheal intubation
Bispectral index (BIS) during 5 minutes before surgical incision5 minutes before surgical incisionThe BIS value corresponding to blood pressure measured during 5 minutes before surgical incision
Low-frequency power (LF) of heart rate variability (HRV) during 5 minutes before anesthesia induction5 minutes before anesthesia inductionLow-frequency power (LF) of heart rate variability (HRV) were calculated by integrating power spectra between 0.04 and 0.15 Hz, which were obtained from the Fast Fourier Transform applied to a 5-minute-long electrocardiogram (ECG) waveform. LF represents the combined sympathetic and parasympathetic modulation of heart rate via baroreceptor reflexes, but is mainly modulated by sympathetic nervous activity.
Low-frequency power (LF) of heart rate variability (HRV) during 5 minutes after anesthesia induction5 minutes after anesthesia inductionLow-frequency power (LF) of heart rate variability (HRV) were calculated by integrating power spectra between 0.04 and 0.15 Hz, which were obtained from the Fast Fourier Transform applied to a 5-minute-long electrocardiogram (ECG) waveform. LF represents the combined sympathetic and parasympathetic modulation of heart rate via baroreceptor reflexes, but is mainly modulated by sympathetic nervous activity.
Low-frequency power (LF) of heart rate variability (HRV) during 5 minutes after endotracheal intubation5 minutes after endotracheal intubationLow-frequency power (LF) of heart rate variability (HRV) were calculated by integrating power spectra between 0.04 and 0.15 Hz, which were obtained from the Fast Fourier Transform applied to a 5-minute-long electrocardiogram (ECG) waveform. LF represents the combined sympathetic and parasympathetic modulation of heart rate via baroreceptor reflexes, but is mainly modulated by sympathetic nervous activity.
Low-frequency power (LF) of heart rate variability (HRV) during 5 minutes before surgical incision5 minutes before surgical incisionLow-frequency power (LF) of heart rate variability (HRV) were calculated by integrating power spectra between 0.04 and 0.15 Hz, which were obtained from the Fast Fourier Transform applied to a 5-minute-long electrocardiogram (ECG) waveform. LF represents the combined sympathetic and parasympathetic modulation of heart rate via baroreceptor reflexes, but is mainly modulated by sympathetic nervous activity.
High-frequency power (HF) of heart rate variability (HRV) during 5 minutes before anesthesia induction5 minutes before anesthesia inductionHigh-frequency power (HF) of heart rate variability (HRV) were calculated by integrating power spectra between 0.15 and 0.4 Hz, which were obtained from the Fast Fourier Transform applied to a 5-minute-long electrocardiogram (ECG) waveform. HF represents the parasympathetic modulation of heart rate in response to respiration.
High-frequency power (HF) of heart rate variability (HRV) during 5 minutes after anesthesia induction5 minutes after anesthesia inductionHigh-frequency power (HF) of heart rate variability (HRV) were calculated by integrating power spectra between 0.15 and 0.4 Hz, which were obtained from the Fast Fourier Transform applied to a 5-minute-long electrocardiogram (ECG) waveform. HF represents the parasympathetic modulation of heart rate in response to respiration.
High-frequency power (HF) of heart rate variability (HRV) during 5 minutes after endotracheal intubation5 minutes after endotracheal intubationHigh-frequency power (HF) of heart rate variability (HRV) were calculated by integrating power spectra between 0.15 and 0.4 Hz, which were obtained from the Fast Fourier Transform applied to a 5-minute-long electrocardiogram (ECG) waveform. HF represents the parasympathetic modulation of heart rate in response to respiration.
The percentage of adjacent normal-to-normal sinus beat RR intervals that have a more than 50 milliseconds difference between them (pNN50) during 5 minutes before anesthesia induction5 minutes before anesthesia inductionpNN50 represents the parasympathetic nervous activity mediated by a respiratory sinus arrhythmia.
High-frequency power (HF) of heart rate variability (HRV) during 5 minutes before surgical incision5 minutes before surgical incisionHigh-frequency power (HF) of heart rate variability (HRV) were calculated by integrating power spectra between 0.15 and 0.4 Hz, which were obtained from the Fast Fourier Transform applied to a 5-minute-long electrocardiogram (ECG) waveform. HF represents the parasympathetic modulation of heart rate in response to respiration.
Total power (TP) of heart rate variability (HRV) during 5 minutes before anesthesia induction5 minutes before anesthesia inductionTotal power (TP) of heart rate variability (HRV) were calculated by integrating power spectra between 0 and 0.4 Hz, which were obtained from the Fast Fourier Transform applied to a 5-minute-long electrocardiogram (ECG) waveform. TP represents the overall activity of the autonomic nervous system.
Total power (TP) of heart rate variability (HRV) during 5 minutes after anesthesia induction5 minutes after anesthesia inductionTotal power (TP) of heart rate variability (HRV) were calculated by integrating power spectra between 0 and 0.4 Hz, which were obtained from the Fast Fourier Transform applied to a 5-minute-long electrocardiogram (ECG) waveform. TP represents the overall activity of the autonomic nervous system.
Total power (TP) of heart rate variability (HRV) during 5 minutes after endotracheal intubation5 minutes after endotracheal intubationTotal power (TP) of heart rate variability (HRV) were calculated by integrating power spectra between 0 and 0.4 Hz, which were obtained from the Fast Fourier Transform applied to a 5-minute-long electrocardiogram (ECG) waveform. TP represents the overall activity of the autonomic nervous system.
Total power (TP) of heart rate variability (HRV) during 5 minutes before surgical incision5 minutes before surgical incisionTotal power (TP) of heart rate variability (HRV) were calculated by integrating power spectra between 0 and 0.4 Hz, which were obtained from the Fast Fourier Transform applied to a 5-minute-long electrocardiogram (ECG) waveform. TP represents the overall activity of the autonomic nervous system.
Low-to-high-frequency power ratio (LF/HF) of heart rate variability (HRV) during 5 minutes before anesthesia induction5 minutes before anesthesia inductionLow-frequency power (LF) and high-frequency power (HF) of heart rate variability (HRV) were calculated with the Fast Fourier Transform applied to a 5-minute-long electrocardiogram (ECG) waveform. LF/HF represents the sympathovagal balance.
Low-to-high-frequency power ratio (LF/HF) of heart rate variability (HRV) during 5 minutes after anesthesia induction5 minutes after anesthesia inductionLow-frequency power (LF) and high-frequency power (HF) of heart rate variability (HRV) were calculated with the Fast Fourier Transform applied to a 5-minute-long electrocardiogram (ECG) waveform. LF/HF represents the sympathovagal balance.
Systolic blood pressure during 5 minutes after endotracheal intubation5 minutes after endotracheal intubationMeasured at any time during 5 minutes after endotracheal intubation
Low-to-high-frequency power ratio (LF/HF) of heart rate variability (HRV) during 5 minutes after endotracheal intubation5 minutes after endotracheal intubationLow-frequency power (LF) and high-frequency power (HF) of heart rate variability (HRV) were calculated with the Fast Fourier Transform applied to a 5-minute-long electrocardiogram (ECG) waveform. LF/HF represents the sympathovagal balance.
Low-to-high-frequency power ratio (LF/HF) of heart rate variability (HRV) during 5 minutes before surgical incision5 minutes before surgical incisionLow-frequency power (LF) and high-frequency power (HF) of heart rate variability (HRV) were calculated with the Fast Fourier Transform applied to a 5-minute-long electrocardiogram (ECG) waveform. LF/HF represents the sympathovagal balance.
Root mean square of the successive differences of the RR intervals (RMSSD) during 5 minutes before anesthesia induction5 minutes before anesthesia inductionRMSSD represents the parasympathetic nervous activity mediated by a respiratory sinus arrhythmia.
Root mean square of the successive differences of the RR intervals (RMSSD) during 5 minutes after anesthesia induction5 minutes after anesthesia inductionRMSSD represents the parasympathetic nervous activity mediated by a respiratory sinus arrhythmia.
Root mean square of the successive differences of the RR intervals (RMSSD) during 5 minutes after endotracheal intubation5 minutes after endotracheal intubationRMSSD represents the parasympathetic nervous activity mediated by a respiratory sinus arrhythmia.
Root mean square of the successive differences of the RR intervals (RMSSD) during 5 minutes before surgical incision5 minutes before surgical incisionRMSSD represents the parasympathetic nervous activity mediated by a respiratory sinus arrhythmia.
Standard deviation of the RR intervals of normal sinus beats originating from the sinoatrial node of the right atrium (SDNN) during 5 minutes before anesthesia induction5 minutes before anesthesia inductionSDNN represents the parasympathetic nervous activity mediated by a respiratory sinus arrhythmia.
Standard deviation of the RR intervals of normal sinus beats originating from the sinoatrial node of the right atrium (SDNN) during 5 minutes after anesthesia induction5 minutes after anesthesia inductionSDNN represents the parasympathetic nervous activity mediated by a respiratory sinus arrhythmia.
Standard deviation of the RR intervals of normal sinus beats originating from the sinoatrial node of the right atrium (SDNN) during 5 minutes after endotracheal intubation5 minutes after endotracheal intubationSDNN represents the parasympathetic nervous activity mediated by a respiratory sinus arrhythmia.
Standard deviation of the RR intervals of normal sinus beats originating from the sinoatrial node of the right atrium (SDNN) during 5 minutes before surgical incision5 minutes before surgical incisionSDNN represents the parasympathetic nervous activity mediated by a respiratory sinus arrhythmia.
Systolic blood pressure during 5 minutes before surgical incision5 minutes before surgical incisionMeasured at any time during 5 minutes before surgical incision
The percentage of adjacent normal-to-normal sinus beat RR intervals that have a more than 50 milliseconds difference between them (pNN50) during 5 minutes after anesthesia induction5 minutes after anesthesia inductionpNN50 represents the parasympathetic nervous activity mediated by a respiratory sinus arrhythmia.
The percentage of adjacent normal-to-normal sinus beat RR intervals that have a more than 50 milliseconds difference between them (pNN50) during 5 minutes after endotracheal intubation5 minutes after endotracheal intubationpNN50 represents the parasympathetic nervous activity mediated by a respiratory sinus arrhythmia.
The percentage of adjacent normal-to-normal sinus beat RR intervals that have a more than 50 milliseconds difference between them (pNN50) during 5 minutes before surgical incision5 minutes before surgical incisionpNN50 represents the parasympathetic nervous activity mediated by a respiratory sinus arrhythmia.
Standard deviation 1 (SD1) of a Poincaré plot during 5 minutes before anesthesia induction5 minutes before anesthesia inductionA Poincaré plot is a scatter plot where each pair of preceding and succeeding RR intervals is plotted on the abscissa and ordinate, respectively. After fitting the ellipse around the plot, SD1 is calculated as the standard deviation of the distance of each point from the line of identity (y=x). SD1 reflects the short-term HRV as the length of the transverse axis of the ellipse. SD1 correlates with the baroreflex sensitivity and HF.
Standard deviation 1 (SD1) of a Poincaré plot during 5 minutes after anesthesia induction5 minutes after anesthesia inductionA Poincaré plot is a scatter plot where each pair of preceding and succeeding RR intervals is plotted on the abscissa and ordinate, respectively. After fitting the ellipse around the plot, SD1 is calculated as the standard deviation of the distance of each point from the line of identity (y=x). SD1 reflects the short-term HRV as the length of the transverse axis of the ellipse. SD1 correlates with the baroreflex sensitivity and HF.
Standard deviation 1 (SD1) of a Poincaré plot during 5 minutes after endotracheal intubation5 minutes after endotracheal intubationA Poincaré plot is a scatter plot where each pair of preceding and succeeding RR intervals is plotted on the abscissa and ordinate, respectively. After fitting the ellipse around the plot, SD1 is calculated as the standard deviation of the distance of each point from the line of identity (y=x). SD1 reflects the short-term HRV as the length of the transverse axis of the ellipse. SD1 correlates with the baroreflex sensitivity and HF.
Standard deviation 1 (SD1) of a Poincaré plot during 5 minutes before surgical incision5 minutes before surgical incisionA Poincaré plot is a scatter plot where each pair of preceding and succeeding RR intervals is plotted on the abscissa and ordinate, respectively. After fitting the ellipse around the plot, SD1 is calculated as the standard deviation of the distance of each point from the line of identity (y=x). SD1 reflects the short-term HRV as the length of the transverse axis of the ellipse. SD1 correlates with the baroreflex sensitivity and HF.
Standard deviation 2 (SD2) of a Poincaré plot during 5 minutes before anesthesia induction5 minutes before anesthesia inductionA Poincaré plot is a scatter plot where each pair of preceding and succeeding RR intervals is plotted on the abscissa and ordinate, respectively. After fitting the ellipse around the plot, SD2 is calculated as the standard deviation of the distance of each point from the line passing through the centroid, which vertically intersects the line of identity (y=x). SD2 reflects the long-term HRV as the length of the long axis of the ellipse. SD2 correlates with the baroreflex sensitivity and LF.
Standard deviation 2 (SD2) of a Poincaré plot during 5 minutes after anesthesia induction5 minutes after anesthesia inductionA Poincaré plot is a scatter plot where each pair of preceding and succeeding RR intervals is plotted on the abscissa and ordinate, respectively. After fitting the ellipse around the plot, SD2 is calculated as the standard deviation of the distance of each point from the line passing through the centroid, which vertically intersects the line of identity (y=x). SD2 reflects the long-term HRV as the length of the long axis of the ellipse. SD2 correlates with the baroreflex sensitivity and LF.
Standard deviation 2 (SD2) of a Poincaré plot during 5 minutes after endotracheal intubation5 minutes after endotracheal intubationA Poincaré plot is a scatter plot where each pair of preceding and succeeding RR intervals is plotted on the abscissa and ordinate, respectively. After fitting the ellipse around the plot, SD2 is calculated as the standard deviation of the distance of each point from the line passing through the centroid, which vertically intersects the line of identity (y=x). SD2 reflects the long-term HRV as the length of the long axis of the ellipse. SD2 correlates with the baroreflex sensitivity and LF.
Standard deviation 2 (SD2) of a Poincaré plot during 5 minutes before surgical incision5 minutes before surgical incisionA Poincaré plot is a scatter plot where each pair of preceding and succeeding RR intervals is plotted on the abscissa and ordinate, respectively. After fitting the ellipse around the plot, SD2 is calculated as the standard deviation of the distance of each point from the line passing through the centroid, which vertically intersects the line of identity (y=x). SD2 reflects the long-term HRV as the length of the long axis of the ellipse. SD2 correlates with the baroreflex sensitivity and LF.
Mean arterial blood pressure during 5 minutes before anesthesia induction5 minutes before anesthesia inductionMeasured at any time during 5 minutes before anesthesia induction

Other

MeasureTime frameDescription
Deceleration capacity (DC) during 5 minutes after endotracheal intubation5 minutes after endotracheal intubationThe quasi-periodic decelerations in short-term heart rate are calculated using a phase-rectified signal averaging technique. The calculated deceleration (deceleration capacity: DC) represents parasympathetic nervous activity.
Deceleration capacity (DC) during 5 minutes before surgical incision5 minutes before surgical incisionThe quasi-periodic decelerations in short-term heart rate are calculated using a phase-rectified signal averaging technique. The calculated deceleration (deceleration capacity: DC) represents parasympathetic nervous activity.
Diastolic blood pressure during 5 minutes before anesthesia induction5 minutes before anesthesia inductionMeasured at any time during 5 minutes before anesthesia induction
Diastolic blood pressure during 5 minutes after anesthesia induction5 minutes after anesthesia inductionDiastolic blood pressure corresponding to the lowest systolic blood pressure during 5 minutes after anesthesia induction
Diastolic blood pressure during 5 minutes after endotracheal intubation5 minutes after endotracheal intubationMeasured at any time during 5 minutes after endotracheal intubation
Diastolic blood pressure during 5 minutes before surgical incision5 minutes before surgical incisionMeasured at any time during 5 minutes before surgical incision
Deceleration capacity (DC) during 5 minutes after anesthesia induction5 minutes after anesthesia inductionThe quasi-periodic decelerations in short-term heart rate are calculated using a phase-rectified signal averaging technique. The calculated deceleration (deceleration capacity: DC) represents parasympathetic nervous activity.
Deceleration capacity (DC) during 5 minutes before anesthesia induction5 minutes before anesthesia inductionThe quasi-periodic decelerations in short-term heart rate are calculated using a phase-rectified signal averaging technique. The calculated deceleration (deceleration capacity: DC) represents parasympathetic nervous activity.

Countries

South Korea

Outcome results

None listed

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