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A Comparison of Ketofol (Ketamine and Propofol Admixture) Versus Propofol as Induction Agents on Hemodynamic Parameters

A Comparison of Ketofol (Ketamine and Propofol Admixture) vs. Propofol as Induction Agents on Hemodynamic Parameters

Status
Completed
Phases
NA
Study type
Interventional
Source
ClinicalTrials.gov
Registry ID
NCT01065350
Enrollment
85
Registered
2010-02-09
Start date
2010-12-31
Completion date
2011-03-31
Last updated
2013-05-03

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

Conditions

Blood Pressure

Keywords

ketofol, hemodynamics, propofol, anesthesia

Brief summary

This is a pilot study to compare the hemodynamic changes that occur during induction with a novel drug combination known as ketofol (propofol and ketamine admixture with that of propofol alone (prototypic anesthesia induction agent). Propofol and ketamine are widely used as induction agents and their effects on patient hemodynamics are well known. Some of these drug-induced hemodynamic changes are undesirable and lead to deleterious effects on patient hemodynamics. We seek to investigate the hemodynamic changes associated with a novel drug combination known as ketofol (ketamine/propofol admixture) during induction and compare them to propofol. If we determine that the changes produced by ketofol are favorable compared with propofol, we then will seek to test its use in the trauma setting in a subsequent randomized controlled trial.

Detailed description

This is a pilot study to compare the hemodynamic changes that occur during induction with a novel drug combination known as ketofol with that of propofol. Propofol and ketamine are widely used as induction agents and their effects on patient hemodynamics are well known. Many of these drug-induced changes are undesirable and when used alone sometimes lead to hemodynamic effects on opposite ends of the spectrum, ie. hypotension (propofol) and hypertension (ketamine). We will investigate the hemodynamic changes associated with this drug combination referred to as ketofol (ketamine/propofol admixture) during induction compared with propofol as the gold standard induction agent used widely in anesthetic practice. If we validate that the changes produced by the ketofol admixture are favorable, we will then test its use in a wider setting of patient populations including emergency department intubations and the trauma setting. Background: Propofol is a non-opioid, non-barbiturate, sedative-hypnotic agent with rapid onset and short duration of action. It possesses many favorable effects such as an antiemetic effect and reliably produces sedation and amnesia (Felfernig Jour of Royal Naval Medical Service, '06; White International Anesth Clinics, '88; Willman Ann of Emer Med, '07). However, there are several undesirable side effects such as cardiovascular and respiratory depression. In addition, Propofol as a sole agent has no analgesic properties. These drug-induced side effects have led to alternative drugs being used with the hopes of a more favorable side effect profile. Ketamine is an example of one such drug. Ketamine is a phencyclidine derivative commonly classified as a dissociative sedative with fairly rapid onset and short duration of action (Felfernig Jour of Royal Naval Medical Service, '06; White International Anesth Clinics, '88; Willman Ann of Emer Med, '07). It causes little or no respiratory and cardiovascular depression and unlike propofol, has pain relieving properties. Ketamine as a single induction agent, however, is limited by emergence phenomena including postoperative dreaming and hallucinations, however these are attenuated by the administration of benzodiazepines. Also ketamine in induction doses 1-4.5 mg/kg can have some undesirable effects on hemodynamics (opposite of propofol) in certain patient populations including ischemic heart disease (IHD), and patients with increases in intracranial hypertension and intracranial pressure (ICP). Effectiveness of the two agents in combination has been recently demonstrated and this new combination could allow a novel induction agent with favorable effects on hemodynamics (Felfernig Jour of Royal Naval Medical Service, '06; Hui Jour of Amer Soc of Anesth, '95; Willman Ann of Emer Med, '07). To date, this combination known as ketofol has been used most extensively for procedural sedation in the Emergency Department but has not yet been standardized as an induction agent. We are obtaining funding for a pilot study to validate the use of ketofol as an induction agent.

Interventions

DRUGPropofol

As part of the induction, subjects will be given 2 milligrams per kilogram of body weight (mg/kg) of propofol. The clinician will receive a 20 milliliter (mL) syringe of propofol. If the dose, 2 mg/kg, does not add up to a total of 20 mL, normal saline will be added to make up for the 20 mL. The clinician and observer will be blinded to the medication and doses being administered during induction given that both syringes, syringes in the propofol and ketofol groups, will look identical (will both appear to be propofol only). The propofol group will also be given an additional 10 mL syringe of propofol due to any patient responding to stimulus after induction. The 10 mL syringe represents 1 mg/kg of propofol. If patient receives both the 20 and 10ml syringe, he or she will receive a total of 3mg/kg of propofol.

DRUGKetamine

As part of the induction, patients will be given 20ml syringe of ketofol which is weight based such that ketamine will represent 0.75mg/kg of the dose and propofol, 1.5mg/kg. The clinician and observer will be blinded to the medication and doses being administered during induction given that both 20ml syringes (propofol group and ketofol group) will look identical (will both appear to be propofol only). Additional 10ml syringe will be given due to any patient responding to stimulus after induction. The 10ml syringe will represent 0.25mg/kg of ketamine and 0.5mg/kg of propofol. If the patient receives both the 20 and 10ml rescue syringe, he or she will receive a total of 1mg/kg of ketamine and 2mg/kg of propofol.

Sponsors

Dartmouth-Hitchcock Medical Center
CollaboratorOTHER
Mayo Clinic
Lead SponsorOTHER

Study design

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

Eligibility

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

Inclusion criteria

* American Society of Anesthesiologists (ASA) physical status I and II who are to undergo elective general, urologic, orthopedic, plastic, or gynecologic surgery.

Exclusion criteria

* patients with age less than 18 yr or over 60 yr, * emergency surgery, * patients undergoing neurosurgical procedures, * any procedure with adjunctive analgesia, * any patient on chronic opiate use, * females who are known to be pregnant, * patients who had ingested psychotropic or sedative medication within one month of investigation, * patients with personality disorders, * weight greater than 20% of ideal, and * any known contraindications to ketamine or propofol.

Design outcomes

Primary

MeasureTime frameDescription
Percent of Subjects With a Greater Than 20% Decrease in Systolic Blood Pressure (SBP) Following Induction of General AnesthesiaBaseline, 5 minutes, 10 minutes, 30 minutes post inductionBlood pressure was recorded every minute for a total of 30 minutes after anesthesia was induced and readings were captured via a Non-Invasive Cardiac Output Monitor \[NICOM\], Cheetah Medical, Israel. The percentage of subjects experiencing decreases in SBP of greater than 20% during the specified time intervals is reported, as compared to the baseline systolic blood pressure reading. There are two numbers in a blood pressure reading, and they are expressed in millimeters of mercury (mm Hg). This tells how high in millimeters the pressure of your blood raises a column of mercury. The numbers usually are expressed in the form of a fraction; an example of a blood pressure reading is 120/80 mm Hg. The first, or top, number (120 in the example) is the systolic pressure. The systolic pressure is the measure of your blood pressure as the heart contracts and pumps blood.

Secondary

MeasureTime frameDescription
Percent of Subjects With a Greater Than 20% Decrease in Mean Arterial Pressure (MAP) Following Induction of General AnesthesiaBaseline, 5 minutes, 10 minutes, 30 minutes post inductionMAP was recorded every minute for a total of 30 minutes after anesthesia was induced and readings were captured via a Non-Invasive Cardiac Output Monitor \[NICOM\], Cheetah Medical, Israel. The percentage of subjects experiencing decreases in MAP of greater than 20% during the specified time intervals is reported, as compared to the baseline MAP reading.
Average Change in Cardiac Output (CO)Baseline, 5 minutes, 10 minutes post inductionCO was recorded every minute for a total of 30 minutes after anesthesia was induced and readings were captured via a Non-Invasive Cardiac Output Monitor \[NICOM\], Cheetah Medical, Israel. The average change in CO as compared to baseline CO during the specified time intervals is reported. CO is defined as the quantity of blood ejected per minute by the heart into the systemic circulation. It is the product of the heart rate (HR) (beats per minute) times the stroke volume (SV) (milliliters of blood ejected during each contraction).
Average Change in Cardiac Index (CI)Baseline, 5 minutes, 10 minutes post inductionCI was recorded every minute for a total of 30 minutes after anesthesia was induced and readings were captured via a Non-Invasive Cardiac Output Monitor \[NICOM\], Cheetah Medical, Israel. The average change in CI as compared to the baseline CI during the specified time intervals is reported. To determine CI, cardiac output is divided by the body surface area in order to account for body size.
Average Change in Heart Rate (HR)Baseline, 5 minutes, 10 minutes post inductionHR was recorded every minute for a total of 30 minutes after anesthesia was induced and readings were captured via a Non-Invasive Cardiac Output Monitor \[NICOM\], Cheetah Medical, Israel. The average change in HR (as compared to baseline HR) during the specified time intervals is reported.
Average Change in Systolic Blood Pressure (SBP)Baseline, 5 minutes, 10 minutes post inductionBlood pressure was recorded every minute for a total of 30 minutes after anesthesia was induced and readings were captured via a Non-Invasive Cardiac Output Monitor \[NICOM\], Cheetah Medical, Israel. The average change in SBP (as compared to baseline SBP) during the specified time intervals is reported.
Average Change in Diastolic Blood Pressure (DBP)Baseline, 5 minutes, 10 minutes post inductionBlood pressure was recorded every minute for a total of 30 minutes after anesthesia was induced and readings were captured via a Non-Invasive Cardiac Output Monitor \[NICOM\], Cheetah Medical, Israel. The average change in DBP (as compared to baseline DBP) during the specified time intervals is reported.
Percent of Subjects With a Greater Than 20% Decrease in Diastolic Blood Pressure (DBP) Following Induction of General AnesthesiaBaseline, 5 minutes, 10 minutes, 30 minutes post inductionBlood pressure was recorded every minute for a total of 30 minutes after anesthesia was induced and readings were captured via a Non-Invasive Cardiac Output Monitor \[NICOM\], Cheetah Medical, Israel. The percentage of subjects experiencing decreases in DBP of greater than 20% during the specified time intervals is reported, as compared to the baseline DBP reading. The second or lower number of a blood pressure reading is the DBP and is the measure taken when your heart is at rest.
Average Change in Total Peripheral Resistance (TPR)Baseline, 5 minutes, 10 minutes post inductionTPR was recorded every minute for a total of 30 minutes after anesthesia was induced and readings were captured via a Non-Invasive Cardiac Output Monitor \[NICOM\], Cheetah Medical, Israel. The average change in TPR from baseline during the specified time intervals is reported. TPR is the overall resistance to blood flow through the systemic blood vessels.
Average Change in Total Peripheral Resistance Index (TPRI)Baseline, 5 minutes, 10 minutes post inductionTPRI was recorded every minute for a total of 30 minutes after anesthesia was induced and results were captured via a Non-Invasive Cardiac Output Monitor \[NICOM\], Cheetah Medical, Israel. The average change in TPRI from baseline during the specified time intervals is reported.
Average Change in Stroke Volume (SV)Baseline, 5 minutes, 10 minutes post inductionSV was recorded every minute for a total of 30 minutes after anesthesia was induced and results were captured via a Non-Invasive Cardiac Output Monitor \[NICOM\], Cheetah Medical, Israel. The average change in SV from baseline during the specified time intervals is reported. SV is the milliliters of blood ejected during each contraction of the heart.
Average Change in Stroke Volume Index (SVI)Baseline, 5 minutes, 10 minutes post inductionSVI was recorded every minute for a total of 30 minutes after anesthesia was induced and results were captured via a Non-Invasive Cardiac Output Monitor \[NICOM\], Cheetah Medical, Israel. The average change in SVI (as compared to baseline SVI) during the specified time intervals is reported. To determine SVI, stroke volume is divided by the body surface area in order to account for body size.
Average Change in Stroke Volume Variation (SVV)Baseline, 5 minutes, 10 minutes post inductionSVV was recorded every minute for a total of 30 minutes after anesthesia was induced and results were captured via a Non-Invasive Cardiac Output Monitor \[NICOM\], Cheetah Medical, Israel. SVV is a dynamic flow-based parameter and together with cardiac output provides an indication of fluid responsiveness. The average change in SVV (as compared to baseline SVV) during the specified time intervals is reported. SVV is calculated by taking the SVmax - SVmin /\*100/ SV mean.
Average Change in Mean Arterial Pressure (MAP)Baseline, 5 minutes, 10 minutes post inductionMAP was recorded every minute for a total of 30 minutes after anesthesia was induced and readings were captured via a Non-Invasive Cardiac Output Monitor \[NICOM\], Cheetah Medical, Israel. The average change in MAP from baseline during the specified time intervals is reported. MAP is a term used in medicine to describe an average blood pressure in an individual. It is defined as the average arterial pressure during a single cardiac cycle.

Countries

United States

Participant flow

Recruitment details

Patients requiring surgical procedures with general anesthesia were recruited and enrolled at Dartmouth-Hitchcock Medical Center in Lebanon, New Hampshire from December 2010 to March 2011.

Participants by arm

ArmCount
Propofol
As part of the induction, patients will be given 2 milligrams of propofol per kilogram (mg/kg) of body weight. The clinician will receive a 20 milliliter (mL) syringe of propofol. If the dose, 2 mg/kg, does not add up to a total of 20 mL, normal saline will be added to make up for the 20 mL.
43
Ketofol
As part of the induction, patients will be given 20 mL syringe of an admixture called ketofol, which combines ketamine and propofol in one syringe. The dose is weight-based such that ketamine will represent 0.75 mg/kg of the dose and propofol, 1.5 mg/kg of the dose. One subject in the ketofol group was excluded from analysis due to incorrect study drug assignment and outside the protocol-specified dose.
41
Total84

Withdrawals & dropouts

PeriodReasonFG000FG001
Overall StudyReceived incorrect drug allocation01

Baseline characteristics

CharacteristicKetofolTotalPropofol
Age Continuous42 years
STANDARD_DEVIATION 12
42.68 years
STANDARD_DEVIATION 11.51
43 years
STANDARD_DEVIATION 11
American Society of Anesthesiology (ASA) Physical Status
ASA Status 1
14 Participants35 Participants21 Participants
American Society of Anesthesiology (ASA) Physical Status
ASA Status 2
27 Participants49 Participants22 Participants
Body Height168.9 centimeters
STANDARD_DEVIATION 9.2
169.40 centimeters
STANDARD_DEVIATION 9.03
169.9 centimeters
STANDARD_DEVIATION 9.1
Body Weight68.9 kilograms
STANDARD_DEVIATION 11.2
68.97 kilograms
STANDARD_DEVIATION 11.41
69.2 kilograms
STANDARD_DEVIATION 11.7
Diastolic Blood Pressure76 millimeters of mercury (mm Hg)
STANDARD_DEVIATION 10
76 millimeters of mercury (mm Hg)
STANDARD_DEVIATION 11
76 millimeters of mercury (mm Hg)
STANDARD_DEVIATION 12
Heart Rate73 beats per minute
STANDARD_DEVIATION 14
73 beats per minute
STANDARD_DEVIATION 15
72 beats per minute
STANDARD_DEVIATION 16
Region of Enrollment
United States
41 participants84 participants43 participants
Sex: Female, Male
Female
27 Participants55 Participants28 Participants
Sex: Female, Male
Male
14 Participants29 Participants15 Participants
Systolic Blood Pressure122 millimeters of mercury (mm Hg)
STANDARD_DEVIATION 15
124.19 millimeters of mercury (mm Hg)
STANDARD_DEVIATION 16.41
125 millimeters of mercury (mm Hg)
STANDARD_DEVIATION 17

Adverse events

Event typeEG000
affected / at risk
EG001
affected / at risk
deaths
Total, all-cause mortality
— / —— / —
other
Total, other adverse events
0 / 430 / 42
serious
Total, serious adverse events
0 / 430 / 42

Outcome results

Primary

Percent of Subjects With a Greater Than 20% Decrease in Systolic Blood Pressure (SBP) Following Induction of General Anesthesia

Blood pressure was recorded every minute for a total of 30 minutes after anesthesia was induced and readings were captured via a Non-Invasive Cardiac Output Monitor \[NICOM\], Cheetah Medical, Israel. The percentage of subjects experiencing decreases in SBP of greater than 20% during the specified time intervals is reported, as compared to the baseline systolic blood pressure reading. There are two numbers in a blood pressure reading, and they are expressed in millimeters of mercury (mm Hg). This tells how high in millimeters the pressure of your blood raises a column of mercury. The numbers usually are expressed in the form of a fraction; an example of a blood pressure reading is 120/80 mm Hg. The first, or top, number (120 in the example) is the systolic pressure. The systolic pressure is the measure of your blood pressure as the heart contracts and pumps blood.

Time frame: Baseline, 5 minutes, 10 minutes, 30 minutes post induction

Population: 85 patients were enrolled (43 Propofol/42 Ketofol). However, one subject randomized to the ketofol group received the wrong study drug and in a larger dose than indicated in protocol. This subject was excluded from the analysis and baseline measures.

ArmMeasureGroupValue (NUMBER)
PropofolPercent of Subjects With a Greater Than 20% Decrease in Systolic Blood Pressure (SBP) Following Induction of General AnesthesiaSBP baseline to 5 minutes48 Percentage of subjects
PropofolPercent of Subjects With a Greater Than 20% Decrease in Systolic Blood Pressure (SBP) Following Induction of General AnesthesiaSBP baseline to 10 minutes67 Percentage of subjects
PropofolPercent of Subjects With a Greater Than 20% Decrease in Systolic Blood Pressure (SBP) Following Induction of General AnesthesiaSBP baseline to 30 minutes76 Percentage of subjects
KetofolPercent of Subjects With a Greater Than 20% Decrease in Systolic Blood Pressure (SBP) Following Induction of General AnesthesiaSBP baseline to 5 minutes12 Percentage of subjects
KetofolPercent of Subjects With a Greater Than 20% Decrease in Systolic Blood Pressure (SBP) Following Induction of General AnesthesiaSBP baseline to 10 minutes39 Percentage of subjects
KetofolPercent of Subjects With a Greater Than 20% Decrease in Systolic Blood Pressure (SBP) Following Induction of General AnesthesiaSBP baseline to 30 minutes68 Percentage of subjects
Comparison: Systolic Blood Pressure (SBP) from baseline to 5 minutes post induction was compared between treatment groups.p-value: <0.00195% CI: [2.07, 26.15]Chi-squared
Comparison: Systolic Blood Pressure (SBP) from baseline to 10 minutes post induction was compared between treatment groups.p-value: <0.0195% CI: [1.21, 8.75]Chi-squared
Comparison: Systolic Blood Pressure (SBP) from baseline to 30 minutes post induction was compared between treatment groupsp-value: 0.3995% CI: [0.52, 4.55]Chi-squared
Secondary

Average Change in Cardiac Index (CI)

CI was recorded every minute for a total of 30 minutes after anesthesia was induced and readings were captured via a Non-Invasive Cardiac Output Monitor \[NICOM\], Cheetah Medical, Israel. The average change in CI as compared to the baseline CI during the specified time intervals is reported. To determine CI, cardiac output is divided by the body surface area in order to account for body size.

Time frame: Baseline, 5 minutes, 10 minutes post induction

Population: The analysis population of 41/40 (vs. 43/41 at baseline) is due to the NICOM not functioning properly during certain aspects of the procedure and therefore, did not provide a number.

ArmMeasureGroupValue (MEAN)Dispersion
PropofolAverage Change in Cardiac Index (CI)5 minutes post induction-0.4 Liters per minute per m^2 of body areaStandard Deviation 0.4
PropofolAverage Change in Cardiac Index (CI)10 minutes post induction-0.6 Liters per minute per m^2 of body areaStandard Deviation 0.6
KetofolAverage Change in Cardiac Index (CI)5 minutes post induction-0.3 Liters per minute per m^2 of body areaStandard Deviation 0.4
KetofolAverage Change in Cardiac Index (CI)10 minutes post induction-0.5 Liters per minute per m^2 of body areaStandard Deviation 0.5
Comparison: Average change in Cardiac Index (CI) from baseline to 5 minutes post induction was compared between treatment groups.p-value: 0.2695% CI: [-0.1, 0.3]t-test, 2 sided
Comparison: Average change in Cardiac Index (CI) from baseline to 10 minutes post induction was compared between treatment groups.p-value: 0.7195% CI: [-0.2, 0.3]t-test, 2 sided
Secondary

Average Change in Cardiac Output (CO)

CO was recorded every minute for a total of 30 minutes after anesthesia was induced and readings were captured via a Non-Invasive Cardiac Output Monitor \[NICOM\], Cheetah Medical, Israel. The average change in CO as compared to baseline CO during the specified time intervals is reported. CO is defined as the quantity of blood ejected per minute by the heart into the systemic circulation. It is the product of the heart rate (HR) (beats per minute) times the stroke volume (SV) (milliliters of blood ejected during each contraction).

Time frame: Baseline, 5 minutes, 10 minutes post induction

Population: The analysis population of 41/40 (vs. 43/41 at baseline) is due to the NICOM not functioning properly during certain aspects of the procedure and therefore, did not provide a number.

ArmMeasureGroupValue (MEAN)Dispersion
PropofolAverage Change in Cardiac Output (CO)5 minutes post induction-0.8 Liters per minuteStandard Deviation 0.8
PropofolAverage Change in Cardiac Output (CO)10 minutes post induction-1.0 Liters per minuteStandard Deviation 1
KetofolAverage Change in Cardiac Output (CO)5 minutes post induction-0.6 Liters per minuteStandard Deviation 0.6
KetofolAverage Change in Cardiac Output (CO)10 minutes post induction-0.9 Liters per minuteStandard Deviation 0.8
Comparison: Average change in Cardiac Output (CO) from baseline to 5 minutes post induction was compared between treatment groups.p-value: 0.1995% CI: [-0.1, 0.5]t-test, 2 sided
Comparison: Average change in Cardiac Output (CO) from baseline to 10 minutes post induction was compared between treatment groups.p-value: 0.695% CI: [-0.3, 0.5]t-test, 2 sided
Secondary

Average Change in Diastolic Blood Pressure (DBP)

Blood pressure was recorded every minute for a total of 30 minutes after anesthesia was induced and readings were captured via a Non-Invasive Cardiac Output Monitor \[NICOM\], Cheetah Medical, Israel. The average change in DBP (as compared to baseline DBP) during the specified time intervals is reported.

Time frame: Baseline, 5 minutes, 10 minutes post induction

ArmMeasureGroupValue (MEAN)Dispersion
PropofolAverage Change in Diastolic Blood Pressure (DBP)5 minutes post induction-15.9 mmHgStandard Deviation 11.3
PropofolAverage Change in Diastolic Blood Pressure (DBP)10 minutes post induction-19.3 mmHgStandard Deviation 11.5
KetofolAverage Change in Diastolic Blood Pressure (DBP)5 minutes post induction-8.8 mmHgStandard Deviation 9.1
KetofolAverage Change in Diastolic Blood Pressure (DBP)10 minutes post induction-14.5 mmHgStandard Deviation 9.8
Comparison: Average change in Diastolic Blood Pressure from baseline to 5 minutes post induction was compared between treatment groups.p-value: <0.0195% CI: [2.7, 11.5]t-test, 2 sided
Comparison: Average change in Diastolic Blood Pressure from baseline to 10 minutes post induction was compared between treatment groups.p-value: 0.04295% CI: [0.2, 9.5]t-test, 2 sided
Secondary

Average Change in Heart Rate (HR)

HR was recorded every minute for a total of 30 minutes after anesthesia was induced and readings were captured via a Non-Invasive Cardiac Output Monitor \[NICOM\], Cheetah Medical, Israel. The average change in HR (as compared to baseline HR) during the specified time intervals is reported.

Time frame: Baseline, 5 minutes, 10 minutes post induction

ArmMeasureGroupValue (MEAN)Dispersion
PropofolAverage Change in Heart Rate (HR)10 minutes post induction-5.2 Beats per minuteStandard Deviation 5.2
PropofolAverage Change in Heart Rate (HR)5 minutes post induction-4.0 Beats per minuteStandard Deviation 4.5
KetofolAverage Change in Heart Rate (HR)5 minutes post induction-4.6 Beats per minuteStandard Deviation 6
KetofolAverage Change in Heart Rate (HR)10 minutes post induction-7.0 Beats per minuteStandard Deviation 8
Comparison: Average heart rate from baseline to 5 minutes post induction was compared between treatment groups.p-value: 0.6195% CI: [-2.9, 1.7]t-test, 2 sided
Comparison: Average heart rate from baseline to 10 minutes post induction was compared between treatment groups.p-value: 0.2295% CI: [-4.8, 1.1]t-test, 2 sided
Secondary

Average Change in Mean Arterial Pressure (MAP)

MAP was recorded every minute for a total of 30 minutes after anesthesia was induced and readings were captured via a Non-Invasive Cardiac Output Monitor \[NICOM\], Cheetah Medical, Israel. The average change in MAP from baseline during the specified time intervals is reported. MAP is a term used in medicine to describe an average blood pressure in an individual. It is defined as the average arterial pressure during a single cardiac cycle.

Time frame: Baseline, 5 minutes, 10 minutes post induction

Population: The analysis population of 43/40 (vs. 43/41 at baseline) is due to the NICOM not functioning properly during certain aspects of the procedure and therefore, did not provide a number.

ArmMeasureGroupValue (MEAN)Dispersion
PropofolAverage Change in Mean Arterial Pressure (MAP)5 minutes post induction-18.7 Millimeters of mercury (mmHg)Standard Deviation 11.5
PropofolAverage Change in Mean Arterial Pressure (MAP)10 minutes post induction-22.6 Millimeters of mercury (mmHg)Standard Deviation 11.7
KetofolAverage Change in Mean Arterial Pressure (MAP)5 minutes post induction-9.3 Millimeters of mercury (mmHg)Standard Deviation 9.4
KetofolAverage Change in Mean Arterial Pressure (MAP)10 minutes post induction-16.2 Millimeters of mercury (mmHg)Standard Deviation 11.1
Comparison: Average change in Mean Arterial Pressure (MAP) from baseline to 5 minutes post induction was compared between treatment groups.p-value: <0.00195% CI: [4.8, 13.9]t-test, 2 sided
Comparison: Average change in Mean Arterial Pressure from baseline to 10 minutes post induction was compared between treatment groups.p-value: 0.01395% CI: [1.4, 11.3]t-test, 2 sided
Secondary

Average Change in Stroke Volume Index (SVI)

SVI was recorded every minute for a total of 30 minutes after anesthesia was induced and results were captured via a Non-Invasive Cardiac Output Monitor \[NICOM\], Cheetah Medical, Israel. The average change in SVI (as compared to baseline SVI) during the specified time intervals is reported. To determine SVI, stroke volume is divided by the body surface area in order to account for body size.

Time frame: Baseline, 5 minutes, 10 minutes post induction

Population: The analysis population of 41/40 (vs. 43/41 at baseline) is due to the NICOM not functioning properly during certain aspects of the procedure and therefore, did not provide a number.

ArmMeasureGroupValue (MEAN)Dispersion
PropofolAverage Change in Stroke Volume Index (SVI)5 minutes post induction-6.8 Milliters per beat per m^2 of body areaStandard Deviation 5.6
PropofolAverage Change in Stroke Volume Index (SVI)10 minutes post induction-9.2 Milliters per beat per m^2 of body areaStandard Deviation 6.8
KetofolAverage Change in Stroke Volume Index (SVI)5 minutes post induction-4.3 Milliters per beat per m^2 of body areaStandard Deviation 4.3
KetofolAverage Change in Stroke Volume Index (SVI)10 minutes post induction-6.6 Milliters per beat per m^2 of body areaStandard Deviation 4.9
Comparison: Average change in Stroke Volume Index (SVI) from baseline to 5 minutes post induction was compared between treatment groups.p-value: 0.02795% CI: [0.3, 4.7]t-test, 2 sided
Comparison: Average change in Stroke Volume Index (SVI) from baseline to 10 minutes post induction was compared between treatment groups.p-value: 0.05295% CI: [0, 5.2]t-test, 2 sided
Secondary

Average Change in Stroke Volume (SV)

SV was recorded every minute for a total of 30 minutes after anesthesia was induced and results were captured via a Non-Invasive Cardiac Output Monitor \[NICOM\], Cheetah Medical, Israel. The average change in SV from baseline during the specified time intervals is reported. SV is the milliliters of blood ejected during each contraction of the heart.

Time frame: Baseline, 5 minutes, 10 minutes post induction

Population: The analysis population of 41/40 (vs. 43/41 at baseline) is due to the NICOM not functioning properly during certain aspects of the procedure and therefore, did not provide a number.

ArmMeasureGroupValue (MEAN)Dispersion
PropofolAverage Change in Stroke Volume (SV)5 minutes post induction-12.2 Milliliters of blood per beatStandard Deviation 10
PropofolAverage Change in Stroke Volume (SV)10 minutes post induction-16.4 Milliliters of blood per beatStandard Deviation 12.8
KetofolAverage Change in Stroke Volume (SV)5 minutes post induction-7.8 Milliliters of blood per beatStandard Deviation 7.8
KetofolAverage Change in Stroke Volume (SV)10 minutes post induction-11.6 Milliliters of blood per beatStandard Deviation 8.7
Comparison: Average change in Stroke Volume (SV) from baseline to 5 minutes post induction was compared between treatment groups.p-value: 0.02995% CI: [0.5, 8.4]t-test, 2 sided
Comparison: Average change in Cardiac Index (CI) from baseline to 10 minutes post induction was compared between treatment groups.p-value: 0.05195% CI: [0, 9.7]t-test, 2 sided
Secondary

Average Change in Stroke Volume Variation (SVV)

SVV was recorded every minute for a total of 30 minutes after anesthesia was induced and results were captured via a Non-Invasive Cardiac Output Monitor \[NICOM\], Cheetah Medical, Israel. SVV is a dynamic flow-based parameter and together with cardiac output provides an indication of fluid responsiveness. The average change in SVV (as compared to baseline SVV) during the specified time intervals is reported. SVV is calculated by taking the SVmax - SVmin /\*100/ SV mean.

Time frame: Baseline, 5 minutes, 10 minutes post induction

Population: The analysis population of 38/35 (vs. 43/41 at baseline) is due to the NICOM not functioning properly during certain aspects of the procedure and therefore, did not provide a number.

ArmMeasureGroupValue (MEAN)Dispersion
PropofolAverage Change in Stroke Volume Variation (SVV)5 minutes post induction-2.2 Percentage of mean stroke volumeStandard Deviation 2
PropofolAverage Change in Stroke Volume Variation (SVV)10 minutes post induction-2.6 Percentage of mean stroke volumeStandard Deviation 2.1
KetofolAverage Change in Stroke Volume Variation (SVV)5 minutes post induction-2.6 Percentage of mean stroke volumeStandard Deviation 2.2
KetofolAverage Change in Stroke Volume Variation (SVV)10 minutes post induction-3.1 Percentage of mean stroke volumeStandard Deviation 2.4
Comparison: Average change in Stroke Volume Variation (SVV) from baseline to 5 minutes post induction was compared between treatment groups.p-value: 0.4495% CI: [-1.4, 0.6]t-test, 2 sided
Comparison: Average change in Stroke Volume Variation (SVV) from baseline to 10 minutes post induction was compared between treatment groups.p-value: 0.3795% CI: [-1.6, 0.6]t-test, 2 sided
Secondary

Average Change in Systolic Blood Pressure (SBP)

Blood pressure was recorded every minute for a total of 30 minutes after anesthesia was induced and readings were captured via a Non-Invasive Cardiac Output Monitor \[NICOM\], Cheetah Medical, Israel. The average change in SBP (as compared to baseline SBP) during the specified time intervals is reported.

Time frame: Baseline, 5 minutes, 10 minutes post induction

ArmMeasureGroupValue (MEAN)Dispersion
PropofolAverage Change in Systolic Blood Pressure (SBP)5 minutes post induction-26.3 mmHgStandard Deviation 16.2
PropofolAverage Change in Systolic Blood Pressure (SBP)10 minutes post induction-30.6 mmHgStandard Deviation 16.6
KetofolAverage Change in Systolic Blood Pressure (SBP)5 minutes post induction-12.5 mmHgStandard Deviation 12.4
KetofolAverage Change in Systolic Blood Pressure (SBP)10 minutes post induction-21.8 mmHgStandard Deviation 16.8
Comparison: Average change in Systolic Blood Pressure from baseline to 5 minutes post induction was compared between treatment groups.p-value: <0.00195% CI: [7.5, 20]t-test, 2 sided
Comparison: Average change in Systolic Blood Pressure from baseline to 10 minutes post induction was compared between treatment groups.p-value: 0.01795% CI: [0.2, 9.5]t-test, 2 sided
Secondary

Average Change in Total Peripheral Resistance Index (TPRI)

TPRI was recorded every minute for a total of 30 minutes after anesthesia was induced and results were captured via a Non-Invasive Cardiac Output Monitor \[NICOM\], Cheetah Medical, Israel. The average change in TPRI from baseline during the specified time intervals is reported.

Time frame: Baseline, 5 minutes, 10 minutes post induction

Population: The analysis population of 39/39 (vs. 43/41 at baseline) is due to the NICOM not functioning properly during certain aspects of the procedure and therefore, did not provide a number.

ArmMeasureGroupValue (MEAN)Dispersion
PropofolAverage Change in Total Peripheral Resistance Index (TPRI)5 minutes post induction-457.6 dynes * sec/cm^-5/m^2Standard Deviation 362.4
PropofolAverage Change in Total Peripheral Resistance Index (TPRI)10 minutes post induction-559.3 dynes * sec/cm^-5/m^2Standard Deviation 421
KetofolAverage Change in Total Peripheral Resistance Index (TPRI)5 minutes post induction-275.0 dynes * sec/cm^-5/m^2Standard Deviation 293.2
KetofolAverage Change in Total Peripheral Resistance Index (TPRI)10 minutes post induction-430.6 dynes * sec/cm^-5/m^2Standard Deviation 407.5
Comparison: Average change in Total Peripheral Resistance Index (TPRI) from baseline to 5 minutes post induction was compared between treatment groups.p-value: 0.01795% CI: [33.8, 331.3]t-test, 2 sided
Comparison: Average change in Total Peripheral Resistance Index (TPRI) from baseline to 10 minutes post induction was compared between treatment groups.p-value: 0.1795% CI: [-58.1, 315.5]t-test, 2 sided
Secondary

Average Change in Total Peripheral Resistance (TPR)

TPR was recorded every minute for a total of 30 minutes after anesthesia was induced and readings were captured via a Non-Invasive Cardiac Output Monitor \[NICOM\], Cheetah Medical, Israel. The average change in TPR from baseline during the specified time intervals is reported. TPR is the overall resistance to blood flow through the systemic blood vessels.

Time frame: Baseline, 5 minutes, 10 minutes post induction

Population: The analysis population of 39/38 (vs. 43/41 at baseline) is due to the NICOM not functioning properly during certain aspects of the procedure and therefore, did not provide a number.

ArmMeasureGroupValue (MEAN)Dispersion
PropofolAverage Change in Total Peripheral Resistance (TPR)5 minutes post induction-261.2 dynes * sec/cm^-5Standard Deviation 211.9
PropofolAverage Change in Total Peripheral Resistance (TPR)10 minutes post induction-321.7 dynes * sec/cm^-5Standard Deviation 251.3
KetofolAverage Change in Total Peripheral Resistance (TPR)5 minutes post induction-147.6 dynes * sec/cm^-5Standard Deviation 161.8
KetofolAverage Change in Total Peripheral Resistance (TPR)10 minutes post induction-235.0 dynes * sec/cm^-5Standard Deviation 226.5
Comparison: Average change in Total Peripheral Resistance (TPR) from baseline to 5 minutes post induction was compared between treatment groups.p-value: <0.0195% CI: [28.1, 199.1]t-test, 2 sided
Comparison: Average change in Total Peripheral Resistance (TPR) from baseline to 10 minutes post induction was compared between treatment groups.p-value: 0.1295% CI: [-21.7, 195.3]t-test, 2 sided
Secondary

Percent of Subjects With a Greater Than 20% Decrease in Diastolic Blood Pressure (DBP) Following Induction of General Anesthesia

Blood pressure was recorded every minute for a total of 30 minutes after anesthesia was induced and readings were captured via a Non-Invasive Cardiac Output Monitor \[NICOM\], Cheetah Medical, Israel. The percentage of subjects experiencing decreases in DBP of greater than 20% during the specified time intervals is reported, as compared to the baseline DBP reading. The second or lower number of a blood pressure reading is the DBP and is the measure taken when your heart is at rest.

Time frame: Baseline, 5 minutes, 10 minutes, 30 minutes post induction

Population: 85 patients were enrolled (43 Propofol/42 Ketofol). However, one subject randomized to the ketofol group received the wrong study drug and in a larger dose than indicated in protocol. This subject was excluded from the analysis and baseline measures.

ArmMeasureGroupValue (NUMBER)
PropofolPercent of Subjects With a Greater Than 20% Decrease in Diastolic Blood Pressure (DBP) Following Induction of General AnesthesiaDBP baseline to 5 minutes48 Percentage of subjects
PropofolPercent of Subjects With a Greater Than 20% Decrease in Diastolic Blood Pressure (DBP) Following Induction of General AnesthesiaDBP baseline to 10 minutes62 Percentage of subjects
PropofolPercent of Subjects With a Greater Than 20% Decrease in Diastolic Blood Pressure (DBP) Following Induction of General AnesthesiaDBP baseline to 30 minutes90 Percentage of subjects
KetofolPercent of Subjects With a Greater Than 20% Decrease in Diastolic Blood Pressure (DBP) Following Induction of General AnesthesiaDBP baseline to 5 minutes17 Percentage of subjects
KetofolPercent of Subjects With a Greater Than 20% Decrease in Diastolic Blood Pressure (DBP) Following Induction of General AnesthesiaDBP baseline to 10 minutes41 Percentage of subjects
KetofolPercent of Subjects With a Greater Than 20% Decrease in Diastolic Blood Pressure (DBP) Following Induction of General AnesthesiaDBP baseline to 30 minutes78 Percentage of subjects
Comparison: Diastolic Blood Pressure (DBP) from baseline to 5 minutes post induction was compared between treatment groups.p-value: <0.0195% CI: [1.54, 14.92]Chi-squared
Comparison: Diastolic Blood Pressure (DBP) from baseline to 10 minutes post induction was compared between treatment groups.p-value: 0.0595% CI: [0.91, 6.29]Chi-squared
Comparison: Diastolic Blood Pressure (DBP) from baseline to 30 minutes post induction was compared between treatment groups.p-value: 0.1195% CI: [0.68, 13.19]Chi-squared
Secondary

Percent of Subjects With a Greater Than 20% Decrease in Mean Arterial Pressure (MAP) Following Induction of General Anesthesia

MAP was recorded every minute for a total of 30 minutes after anesthesia was induced and readings were captured via a Non-Invasive Cardiac Output Monitor \[NICOM\], Cheetah Medical, Israel. The percentage of subjects experiencing decreases in MAP of greater than 20% during the specified time intervals is reported, as compared to the baseline MAP reading.

Time frame: Baseline, 5 minutes, 10 minutes, 30 minutes post induction

Population: 85 patients were enrolled (43 Propofol/42 Ketofol). However, one subject randomized to the ketofol group received the wrong study drug and in a larger dose than indicated in protocol. This subject was excluded from the analysis and baseline measures.

ArmMeasureGroupValue (NUMBER)
PropofolPercent of Subjects With a Greater Than 20% Decrease in Mean Arterial Pressure (MAP) Following Induction of General AnesthesiaMAP baseline to 5 minutes44 Percentage of subjects
PropofolPercent of Subjects With a Greater Than 20% Decrease in Mean Arterial Pressure (MAP) Following Induction of General AnesthesiaMAP baseline to 10 minutes60 Percentage of subjects
PropofolPercent of Subjects With a Greater Than 20% Decrease in Mean Arterial Pressure (MAP) Following Induction of General AnesthesiaMAP baseline to 30 minutes83 Percentage of subjects
KetofolPercent of Subjects With a Greater Than 20% Decrease in Mean Arterial Pressure (MAP) Following Induction of General AnesthesiaMAP baseline to 5 minutes10 Percentage of subjects
KetofolPercent of Subjects With a Greater Than 20% Decrease in Mean Arterial Pressure (MAP) Following Induction of General AnesthesiaMAP baseline to 10 minutes35 Percentage of subjects
KetofolPercent of Subjects With a Greater Than 20% Decrease in Mean Arterial Pressure (MAP) Following Induction of General AnesthesiaMAP baseline to 30 minutes75 Percentage of subjects
Comparison: Mean Arterial Pressure (MAP) from baseline to 5 minutes post induction was compared between treatment groups.p-value: <0.00195% CI: [1.98, 31.64]Chi-squared
Comparison: Mean Arterial Pressure (MAP) from baseline to 10 minutes post induction was compared between treatment groups.p-value: 0.0295% CI: [1.07, 7.65]Chi-squared
Comparison: Mean Arterial Pressure (MAP) from baseline to 30 minutes post induction was compared between treatment groups.p-value: 0.3395% CI: [0.51, 5.97]Chi-squared

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