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The Effect of Different I:E Ratio on Gas Exchange of Patients Undergoing Gynecologic Laparoscopic Surgery With Trendelenburg Position

The Effect of Different I:E Ratio on Gas Exchange of Patients Undergoing Gynecologic Laparoscopic Surgery With Trendelenburg Position

Status
Completed
Phases
NA
Study type
Interventional
Source
ClinicalTrials.gov
Registry ID
NCT01379313
Enrollment
100
Registered
2011-06-23
Start date
2011-06-30
Completion date
2012-03-31
Last updated
2012-10-01

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

Conditions

Laparoscopic Gynecologic Surgery, Ovarian Cyst, Uterine Myoma

Keywords

laparoscopic gynecologic surgery, gas exchange, inspiratory time, expiratory time, I:E ratio

Brief summary

In patients undergoing gynecologic laparoscopic surgery with trendelenburg position, the disturbance of pulmonary gas exchange frequently occurs due to high intra-abdominal pressure. The investigators tried to evaluate the effect of various inspiratory to expiratory ratio on pulmonary gas exchange by randomized controlled trial.

Detailed description

In patients undergoing gynecologic laparoscopic surgery with trendelenburg position, the disturbance of pulmonary gas exchange frequently occurs due to high intra-abdominal pressure. During the laparoscopic surgery with abdominal gas insufflation, gas exchange disturbance such as CO2 retention, hypoxemia occurs in addition to high plateau airway pressure. The usual strategy against these kinds of problem is pressure-controlled ventilation. However, the gas exchange problem especially CO2 retention can not be solved in some cases. The inverse-ratio ventilation (IRV), which prolongs the inspiratory time greater than expiratory time, can be applied for adult respiratory distress syndrome. The efficacy of IRV is to improve gas-exchange status by increasing mean airway pressure and alveolar recruitment. There have been several clinical investigations which applied IRV during general anesthesia. However, there have been debates about the effect of IRV during general anesthesia. Therefore, we tried to apply the IRV for subjects undergoing laparoscopic surgery, and evaluate the effect of different I:E ratio on the pulmonary gas exchange and respiratory mechanics.

Interventions

conventional I:E ratio of 1:2 is applied.

PROCEDURE1:1 ratio

I:E ratio of 1:1 is applied.

PROCEDURE2:1 group

Inverse I:E ratio of 2:1 is applied.

PROCEDUREexternal PEEP

external positive end-expiratory pressure of 5 cmH2O is applied.

Sponsors

Samsung Medical Center
Lead SponsorOTHER

Study design

Allocation
RANDOMIZED
Intervention model
PARALLEL
Masking
SINGLE (Subject)

Eligibility

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

Inclusion criteria

* patients undergoing elective gynecologic laparoscopic surgery * the duration of pneumoperitoneum during laparoscopic surgery is more than 40 minutes

Exclusion criteria

* ASA (American society of anesthesiologists) classification of the subjects more than III. * Age under 20, or more than 65 years. * Past history of pneumothorax, COPD, asthma. * Patients with ischemic heart disease, valvular heart disease.

Design outcomes

Primary

MeasureTime frameDescription
arterial CO2 partial pressure10 minutes after induction of general anesthesiaarteial CO2 partial pressure

Secondary

MeasureTime frameDescription
arterial O2 partial pressure10 min after induction, 30 and 60 min after start of pneumoperitoneumarterial O2 partial pressure
Mean airway pressure10 min after induction, 30 and 60 min after start of pneumoperitoneumMean airway pressure
tidal volume (setting)10 min after induction, 30 and 60 min after start of pneumoperitoneumtidal volume (setting)
hemodynamic parameters10 min after induction, 30 and 60 min after start of pneumoperitoneumsystolic/ diastolic blood pressure, heart rate, mean blood pressure
end-tidal CO2 partial pressure10 min after induction, 30 and 60 min after start of pneumoperitoneumend-tidal CO2 partial pressure
respiratory compliance10 min after induction, 30 and 60 min after start of pneumoperitoneumDynamic compliance, Static compliance
Dead space10 min after induction, 30 and 60 min after start of pneumoperitoneumphysiologic dead space / tidal volume (VD/VT)
work of breathing10 min after induction, 30 and 60 min after start of pneumoperitoneumwork of breathing
peak inspiratory pressure10 min after induction, 30 and 60 min after start of pneumoperitoneumpeak inspiratory pressure
plateau pressure10 min after induction, 30 and 60 min after start of pneumoperitoneumplateau pressure
positive end-expiratory pressure10 min after induction, 30 and 60 min after start of pneumoperitoneumpositive end-expiratory pressure
tidal volume (exhaled)10 min after induction, 30 and 60 min after start of pneumoperitoneumtidal volume (exhaled)
minute ventilation10 min after induction, 30 and 60 min after start of pneumoperitoneumminute ventilation

Countries

South Korea

Outcome results

None listed

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