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Dexmedetomidine vs Midazolam on Resting Energy Expenditure in Critically Ill Patients

The Effect of Dexmedetomidine vs Midazolam on Resting Energy Expenditure in Critically Ill Patients: Randomized Controlled Study

Status
Completed
Phases
Phase 4
Study type
Interventional
Source
ClinicalTrials.gov
Registry ID
NCT03030911
Enrollment
30
Registered
2017-01-25
Start date
2017-01-01
Completion date
2018-03-15
Last updated
2018-03-27

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

Conditions

Dexmedetomidine, Mechanical Ventilation, Midazolam, Sedation

Brief summary

The aim of this study is to compare the effect of dexmedetomidine on resting energy expenditure in relation to the midazolam in critically ill patients using indirect calorimetry

Detailed description

Caloric needs in critically-ill patients fluctuate significantly over the course of the disease which might expose patients to either malnutrition or overfeeding. Malnutrition is associated with deterioration of lean body mass, poor wound healing, increased risk of nosocomial infection, and weakened respiratory muscles. On the other hand overfeeding in medically compromised patients can promote lipogenesis, hyperglycemia, and exacerbation of respiratory failure. Many factors may affect the resting energy expenditure (REE) through manipulation of oxygen consumption (VO2). Sedatives are important contributors to reduction of REE. The postulated mechanism of sedative-induced reduction of VO2 is inhibition of circulating catecholamine and pro-inflammatory cytokines. Dexmedetomidine is a highly selective α2-adrenoceptor agonist. Stimulation of the α2-adrenoceptor in the central nervous system causes a 60-80% reduction in sympathetic outflow and endogenous catecholamine levels. It was found that perioperative use of α2 agonists decreased sympathetic activity with subsequent reduction of VO2 and REE. Moreover, dexmedetomidine, has some anti-inflammatory effect by inhibiting the pro-inflammatory cytokines which may cause additional reduction of REE in critically ill patient. Midazolam is another important sedative that is frequently used in critically-ill patient. Terao et al. found that increasing the depth of sedation using midazolam, decreased oxygen consumption and REE. However, it remains unclear whether the effect of midazolam on REE is related to the drug itself or to the depth of sedation. There is no direct comparison in the literature between dexmedetomidine and midazolam on REE.

Interventions

DRUGDexmedetomidine

The drug will be administered for sedation and its effect on basal metabolic rate will be investigated

DRUGMidazolam

The drug will be administered for sedation and its effect on basal metabolic rate will be investigated

DRUGFentanyl

The drug will be administered in both groups

DEVICEIndirect calorimetry

The device will be used for measurement of basal metabolic rate

Sponsors

Cairo University
Lead SponsorOTHER

Study design

Allocation
RANDOMIZED
Intervention model
PARALLEL
Primary purpose
TREATMENT
Masking
TRIPLE (Subject, Investigator, Outcomes Assessor)

Eligibility

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

Inclusion criteria

* The study will be designed to recruit 30 critically-ill patients who will be admitted to the surgical ICU for ventilatory support and will be expected to continue for 2 days or longer.

Exclusion criteria

* Age \< 18 years old. * Pregnant patient. * Serious central nervous system pathologies (traumatic brain injury, acute stroke, uncontrolled seizures). * Patient who will require fraction of inspired oxygen more than 0.6. * Air leak from the chest tube. * Patient with body temperature \> 39 Celsius. * Acute hepatitis or severe liver disease (Child-Pugh class C). * Left ventricular ejection fraction less than 30%. * Heart rate less than 50 beats/min. * Second or third degree heart block. * Systolic pressure \< 90 mmHg despite of infusion of 2 vasopressors. * Patients with known endocrine dysfunction. * Patient with hypothermia * Patient on Positive end expiratory pressure more than 14 cmH2o

Design outcomes

Primary

MeasureTime frameDescription
Change in Resting energy expenditure after drug administrationThe first baseline measurement will be taken before drug administration. The second measurement will be taken 24 hours after drug infusion.Resting energy expenditure will be measured using indirect calorimetry via metabolic module on General Electric ventilator

Secondary

MeasureTime frameDescription
arterial blood pressure24 hoursarterial blood pressure measured in mmHg
Richmond agitation and sedation scale24 hoursrange from -5 (unarousable) to +4 (combative)
Plasma interleukin-1β level24 hoursdetermined by ELISA using a quantitative sandwich enzyme immunoassay technique
Tumor necrosis factor-α plasma concentration24 hoursEnzyme immunoassay
Heart rate24 hoursnumber of heart beats per minute
VO224 hoursthe oxygen consumption measured in mL/Kg/min
VCO224 hourscarbon dioxide production measured in mL/Kg/min
end-tidal co224 hoursthe pressure of carbon dioxide in expired air measured in mmHg
cardiac output24 hoursthe amount of blood pumped by the heart during one minute
partial pressure of oxygen in arterial blood24 hoursthe partial pressure of oxygen in arterial blood measured in mmHg

Countries

Egypt

Outcome results

None listed

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