跳至主要内容
临床试验/NCT00924833
NCT00924833已完成4 期

Comparison of the Cardiovascular, Metabolic and Respiratory Effects of Nebivolol and Carvedilol at High Altitude in Healthy Subjects.

Istituto Auxologico Italiano1 个研究点 分布在 1 个国家目标入组 27 人开始时间: 2006年5月最近更新:
适应症
干预措施
相关药物

试验速览

阶段
4 期
状态
已完成
入组人数
27
试验地点
1
主要终点
Peak Exercise Oxygen Consumption

研究概览

简要总结

Exposure of healthy subjects to high altitude hypoxia elicits changes in cardiovascular, respiratory and metabolic features as weel as in exercise performance similar, for some aspects, to those observed in chronic heart failure. Exposure to high altitude hypoxia represents a suitable model to assess different treatments proposed for this pathological condition. Our aim was to evaluate the impact of two different third-generation beta-blockers used in heart failure (carvedilol and nebivolol) on cardiovascular, respiratory, metabolic profile and on exercise performance at high altitude.

详细描述

Methods. Study Subjects. Adults, males and females, non smoking healthy volunteers, sea-level residents not engaged in regular endurance exercise training, taking no medications will be recruited. As there are no studies comparing the effects of beta-blockers on exercise performance at high altitude, the sample size set for each treatment arm was defined on the basis of the sample size of previous investigations showing significant changes in exercise performance in normal subjects taking no medications.

Study design. Time 0. Screening, enrollement and randomization. Subjects meeting the inclusion/exclusion criteria will undergo at sea-level, general laboratory investigations and physical examination. Eligible subjects will be double blindly randomized to either placebo (one tablet twice daily), carvedilol (one 25 mg tablets twice daily), or to nebivolol (one 5 mg tablet in the morning and one placebo tablet in the evening).

Time 1. Before starting the medications, at sea level after an overnight fast, subject will undergo: blood pressure and heart rate measurement, 24 hour ambulatory blood pressure monitoring, Doppler heart ultrasound, cardiopulmonary exercise test, resting energy expenditure measurement.

Time 2. After three weeks of allocated treatment, at sea-level, after an overnight fast, subjects will undergo: blood pressure and heart rate measurement, 24 hour ambulatory blood pressure monitoring, Doppler heart ultrasound, cardiopulmonary exercise test, resting energy expenditure measurement.

Time 3. Under treatment within the first two days of high altitude exposure (Regina Margherita hut, Monte Rosa, altitude 4559 m), subjects will undergo after an overnight fast to blood pressure and heart rate measurement, 24 hour ambulatory blood pressure monitoring, Doppler heart ultrasound, cardiopulmonary exercise test, resting energy expenditure measurement, acute mountain sickness quantification by the Lake Louise Score.

研究设计

研究类型
Interventional
分配方式
Randomized
干预模型
Parallel
主要目的
Treatment
盲法
Triple (Participant, Investigator, Outcomes Assessor)

入排标准

年龄范围
18 Years 至 65 Years(Adult, Older Adult)
性别
All
接受健康志愿者

入选标准

  • 未提供

排除标准

  • 未提供

研究组 & 干预措施

placebo

Placebo Comparator

Placebo tablets. One tablet twice daily.

干预措施: placebo (Drug)

2: Carvedilol

Active Comparator

Carvedilol 25 mg tablets. One tablet twice daily.

干预措施: Carvedilol (Drug)

3: Nebivolol

Active Comparator

Nebivolol 5 mg tablets. One nebivolo tablet daily. One placebo tablet daily.

干预措施: Nebivolol (Drug)

结局指标

主要结局

Peak Exercise Oxygen Consumption

时间窗: Time 1: sea level, baseline, no treatment. Time 2: sea level, after three weeks of allocated treatment. Time 3: within the first two days of high altitude exposure, under treatment.

Oxygen consumption at peak of exercise

Delta Peak Exercise Oxygen Consumption Time 1 Versus Time 3

时间窗: Time 1: sea level, baseline, no treatment. Time 3: within the first two days of high altitude exposure, under treatment.

Difference in peak exercise oxygen consumption between Time 1 and Time 3 (Time 3 - Time 1)

Peak Exercise Minute Ventilation

时间窗: Time 1: sea level, baseline, no treatment. Time 2: sea level, after three weeks of allocated treatment. Time 3: within the first two days of high altitude exposure, under treatment.

Minute ventilation at peak of exercise. Minute ventilation = tidal volume (ml) multiplied by the respiratory rate (breaths/min)

Delta Peak Exercise Minute Ventilation Time 1 Versus Time 3.

时间窗: Time 1: sea level, baseline, no treatment. Time 3: within the first two days of high altitude exposure, under treatment.

Difference in peak exercise minute ventilation between Time 1 and Time 3 (Time 3 - Time 1. Minute ventilation = tidal volume (ml) multiplied by the respiratory rate (breaths/min).

次要结局

  • Peak Exercise Oxygen Saturation(Time 1: sea level, baseline, no treatment. Time 2: sea level, after three weeks of allocated treatment. Time 3: within the first two days of high altitude exposure, under treatment.)
  • Systolic Pulmonary Artery Pressure.(Time 1: sea level, baseline, no treatment. Time 2: sea level, after three weeks of allocated treatment. Time 3: within the first two days of high altitude exposure, under treatment.)
  • Resting Energy Expenditure(Time 1: sea level, baseline, no treatment. Time 2: sea level, after three weeks of allocated treatment. Time 3: within the first two days of high altitude exposure, under treatment.)
  • Sitting Blood Pressure and Heart Rate(Time 1: sea level, baseline, no treatment. Time 2: sea level, after three weeks of allocated treatment. Time 3: within the first two days of high altitude exposure, under treatment.)
  • Mean 24 Hour/Daytime/Night-time Blood Pressure and Heart Rate(Time 1: sea level, baseline, no treatment. Time 2: sea level, after three weeks of allocated treatment. Time 3: within the first two days of high altitude exposure, under treatment.)

研究者

申办方类型
Other

研究点 (1)

Loading locations...

相似试验

已完成
不适用
Oxidative Stress in Hypobaric HypoxiaHypobaric HypoxiaMetabolomicsOxidative StressAcute Mountain Sickness
NCT01436383Insel Gruppe AG, University Hospital Bern36
已完成
1 期
Rapid Acclimatization to Hypoxia at AltitudePhysiological Function in Low Oxygen Environment
NCT01702025Colorado State University41
Unknown
不适用
Effects of Expiratory Pressure on Arterial Oxygenation During HypoxiaHypoxia
NCT01260428AGIR à Dom20
已完成
不适用
Pik Lenin High Altitude Research Expedition 2009Oxidative StressCell-derived Microparticles
NCT01571687Insel Gruppe AG, University Hospital Bern30
已完成
不适用
Physical and Mental Health in High Altitude ExposureObsessive-compulsive disorderF40F41F31F32F43F20F51F10F11F12F13F14F15F16F18F19F45F50F60F42Phobic anxiety disordersOther anxiety disordersBipolar affective disorderDepressive episodeReaction to severe stress, and adjustment disordersMental and behavioural disorders due to use of alcoholNonorganic sleep disordersMental and behavioural disorders due to use of opioidsMental and behavioural disorders due to use of cannabinoidsMental and behavioural disorders due to use of sedatives or hypnoticsMental and behavioural disorders due to use of cocaineMental and behavioural disorders due to use of other stimulants, including caffeineMental and behavioural disorders due to use of hallucinogensMental and behavioural disorders due to use of volatile solventsMental and behavioural disorders due to multiple drug use and use of other psychoactive substancesSomatoform disordersEating disordersSpecific personality disordersSchizophrenia
DRKS00024949Medizinische Universität Innsbruck475
Effects of Nebivolol Versus Carvedilol on... | 临床试验