Acute Hemodynamic and Ventilatory Responses to Head-down 30° Postural Drainage Position in Critically Traumatic Patients
试验速览
- 阶段
- 不适用
- 状态
- 已完成
- 入组人数
- 11
- 试验地点
- 1
- 主要终点
- Change of mean arterial pressure (MAP) from baseline.
研究概览
简要总结
The purpose of this study is to explore acute hemodynamic and ventilatory responses to head-down 30 degree postural drainage position in patients with blunt chest and/or abdominal injury in the traumatic intensive care unit.
详细描述
Study Protocol The study protocol consisted of 2 conditions: treatment condition (A) and sham condition (B). The order of the conditions was randomly assigned to either the treatment or sham for the first round and vise versa in the second round in a balanced cross-over design (A-B-B-A) so there were four sets of measurements per patient.
For the treatment condition (A), the study consists of three consecutive periods 1) baseline period: 10 minutes rest in horizontal supine lying 2) intervention period: 10 minutes rest in head-down 30 degree supine lying 3) recovery period: return to horizontal supine lying and rest for 10 minutes . For the Sham condition (B), the study was performed with a similar procedure except the intervention period consisted of horizontal supine lying.
Hemodynamic and ventilatory parameter were recorded at the start of each period (0 min) and every 2 minute until end of each period for both conditions. Hemodynamic and ventilatory dependent variables were heart rate (HR), systolic blood pressure (SBP), diastolic blood pressure (DBP), mean arterial pressure (MAP), electrocardiography (ECG), central venous pressure (CVP), respiratory rate (RR), oxygen saturation (SpO2), tidal volume (VT), minute ventilation (VE), dynamic lung compliance (Cdyn) and end-tidal expiratory pressure of CO2 (PETCO2). Subjects were rested between each condition. Subjects were suctioned via endotracheal tube to clear airway at 10 minutes before study commencement of either A-B or B-A.
研究设计
- 研究类型
- Interventional
- 分配方式
- Randomized
- 干预模型
- Crossover
- 盲法
- None
入排标准
- 年龄范围
- 15 Years 至 50 Years(Child, Adult)
- 性别
- All
- 接受健康志愿者
- 否
入选标准
- •Mechanical ventilator dependence
- •Stable cardiopulmonary function at rest (HR 60-100 beats/min, systolic BP 90-140 mmHg and diastolic BP 60-90 mmHg and SpO2>95%. RR 10-20 breath/min
排除标准
- •Spine disorders such as spine fracture, HNP, spondylolisthesis, whiplash syndrome, stenosis and spondylosis
- •Fracture of upper and/or lower limbs
- •Underlying acute or chronic cardiopulmonary diseases
- •Craniotomy or craniectomy
- •Unstable intracranial pressure, ICP>12 cmH2O
- •Uncontrolled pain
研究组 & 干预措施
Treatment condition
In intervention period patients were received head-down 30 degree postural drainage position for 10 min.
干预措施: Head down 30 degree postural drainage position (Other)
Sham condition
In intervention period patients were received horizontal supine lying for 10 min.
干预措施: Horizontal supine lying (Other)
结局指标
主要结局
Change of mean arterial pressure (MAP) from baseline.
时间窗: measured every 2 minutes during each phase
Mean arterial pressure (MAP) was recorded 3 times every 2 minute in each phase, each phase will have 10 minutes and each condition will have 3 phases (baseline, intervention, and recovery).
Change of central venous pressure (CVP) from baseline.
时间窗: measures every 2 minutes in each phase
central venous pressure (CVP) was recorded 3 times every 2 minute in each phase, each phase will have 10 minutes and each condition will have 3 phases (baseline, intervention, and recovery).
Change of minute ventilation (VE) from baseline
时间窗: measured every 2 minutes during each phase
minute ventilation (VE) was recorded 3 times every 2 minute in each phase, each phase will have 10 minutes and each condition will have 3 phases (baseline, intervention, and recovery).
Change of dynamic lung compliance (Cdyn) from baseline.
时间窗: measured every 2 minutes during each phase
dynamic lung compliance (Cdyn) was recorded 3 times every 2 minute in each phase, each phase will have 10 minutes and each condition will have 3 phases (baseline, intervention, and recovery).
Change of systolic blood pressure (SBP) from baseline.
时间窗: measured every 2 minutes during each phase
Systolic blood pressure (SBP) was recorded 3 times every 2 minute in each phase, each phase will have 10 minutes and each condition will have 3 phases (baseline, intervention, and recovery).
Change of diastolic blood pressure (DBP) from baseline.
时间窗: measured every 2 minutes during each phase
Diastolic blood pressure (DBP) was recorded 3 times every 2 minute in each phase, each phase will have 10 minutes and each condition will have 3 phases (baseline, intervention, and recovery).
Change of respiratory rate (RR) from baseline.
时间窗: measures every 2 minutes in each phase
respiratory rate (RR) was recorded 3 times every 2 minute in each phase, each phase will have 10 minutes and each condition will have 3 phases (baseline, intervention, and recovery).
Change of heart rate (HR) from baseline.
时间窗: measured every 2 minutes during each phase
Heart rate (HR) was recorded 3 times every 2 minute in each phase, each phase will have 10 minutes and each condition will have 3 phases (baseline, intervention, and recovery).
Change of end-tidal expiratory pressure of carbon dioxide (PETCO2) from baseline
时间窗: measured every 2 minutes during each phase
end-tidal expiratory pressure of carbon dioxide (PETCO2) was recorded 3 times every 2 minute in each phase, each phase will have 10 minutes and each condition will have 3 phases (baseline, intervention, and recovery).
Change of tidal volume (VT) from baseline
时间窗: measured every 2 minutes during each phase
tidal volume (VT) was recorded 3 times every 2 minute in each phase, each phase will have 10 minutes and each condition will have 3 phases (baseline, intervention, and recovery).
Change of oxygen saturation (SpO2) from baseline
时间窗: measured every 2 minutes during each phase
oxygen saturation (SpO2) was recorded 3 times every 2 minute in each phase, each phase will have 10 minutes and each condition will have 3 phases (baseline, intervention, and recovery).
次要结局
未报告次要终点
研究者
Kantharakorn Hongrattana
Principal vinvestigator
Khon Kaen University
