The Impact of the Vasodilator, Sildenafil, on the Pulmonary Circulation During Exercise in Healthy Trained and Untrained Humans
试验速览
- 阶段
- 2 期
- 状态
- 已完成
- 入组人数
- 26
- 试验地点
- 1
- 主要终点
- Diffusion capacity of carbon monoxide (DLCO)
研究概览
简要总结
There is emerging evidence suggesting that the pulmonary vasculature and right heart may play a role in the limitation of exercise capacity in healthy individuals. It is well established that aerobic training improves cardiovascular function. While the pulmonary system is integral to the function of the cardiopulmonary system, it has been traditionally accepted that lung function does not respond to exercise training. However, recent research suggests pulmonary vascular function adaptations may occur with aerobic training, and this may contribute to enhanced exercise tolerance. Research has highlighted that increased capillary blood volume (Vc) and diffusion capacity for carbon monoxide (DLCO) are correlated with higher cardiorespiratory fitness at rest. Additionally, endurance trained participants have increased exercise DLCO concomitant to higher resting Vc when compared to untrained participants, and during exercise this difference seems to be driven by higher membrane diffusing capacity (Dm), independent of Vc or VA (alveolar volume). Of importance is also the evidence that highlights endurance trained participants having reduced pulmonary arterial pressures at rest and during exercise. Reduced pulmonary arterial pressure in endurance trained participants despite endurance trained participants consistently displaying increased diffusion capacity/pulmonary perfusion at rest and during exercise suggests a lower threshold pressure for pulmonary capillary recruitment. Together, this cross-sectional evidence suggests improvements in the pulmonary circulation due to exercise training in order to facilitate gas exchange. Whether this apparent improvement in pulmonary circulation is due to enhanced pulmonary vascular function via NO mediated vasodilation must be determined experimentally. If sildenafil administration improves DLCO, Vc, and Dm, this would provide evidence that the NO mediated vasodilatory pathway plays a role in the regulation of vascular tone, function, and perfusion across the pulmonary vasculature. Should a larger response to sildenafil be observed in untrained persons, this would suggest better baseline vascular function in trained participants compared to untrained. This would provide strong evidence that aerobic training improves pulmonary vasculature function which is contrary to the conventional understanding of aerobic training on the cardiopulmonary system.
详细描述
Background
There is emerging evidence suggesting that the pulmonary vasculature and right heart may play a role in the limitation of exercise capacity in healthy individuals. It is well established that aerobic training improves cardiovascular function. While the pulmonary system is integral to the function of the cardiopulmonary system, it has been traditionally accepted that lung function does not respond to exercise training. However, recent research suggests pulmonary vascular function adaptations may occur with aerobic training, and this may contribute to enhanced exercise tolerance.
Research has highlighted that increased capillary blood volume (Vc) and diffusion capacity for carbon monoxide (DLCO) are correlated with higher cardiorespiratory fitness at rest. Additionally, endurance trained participants have increased exercise DLCO concomitant to higher resting Vc when compared to untrained participants, and during exercise this difference seems to be driven by higher membrane diffusing capacity (Dm), independent of Vc or VA (alveolar volume). Of importance is also the evidence that highlights endurance trained participants having reduced pulmonary arterial pressures at rest and during exercise. Reduced pulmonary arterial pressure in endurance trained participants despite endurance trained participants consistently displaying increased diffusion capacity/pulmonary perfusion at rest and during exercise suggests a lower threshold pressure for pulmonary capillary recruitment. Together, this cross-sectional evidence suggests improvements in the pulmonary circulation due to exercise training in order to facilitate gas exchange. Whether this apparent improvement in pulmonary circulation is due to enhanced pulmonary vascular function via NO mediated vasodilation must be determined experimentally. If sildenafil administration improves DLCO, Vc, and Dm, this would provide evidence that the NO mediated vasodilatory pathway plays a role in the regulation of vascular tone, function, and perfusion across the pulmonary vasculature. Should a larger response to sildenafil be observed in untrained persons, this would suggest better baseline vascular function in trained participants compared to untrained. This would provide strong evidence that aerobic training improves pulmonary vasculature function which is contrary to the conventional understanding of aerobic training on the cardiopulmonary system.
Some investigations on the pulmonary vasculature have been completed with the known pulmonary vasodilator, sildenafil. Sildenafil administration has been shown to reduce pulmonary artery pressure and improve exercise tolerance in normobaric hypoxic conditions in young healthy individuals. Further, one of these investigations determined sildenafil did not alter maximal oxygen consumption (V̇O2peak) in normoxia in moderately fit participants; however, this study was likely underpowered to detect a response. While some sildenafil interventional work has been conducted, no study to date has determined the effect of sildenafil on DLCO, Vc, and Dm during exercise in untrained vs. trained participants. If sildenafil administration improves DLCO, Vc, and Dm, this would provide evidence that the NO mediated vasodilatory pathway plays a role in the regulation of vascular tone, function, and perfusion across the pulmonary vasculature. Should a larger response to sildenafil be observed in untrained persons, this would suggest better baseline vascular function in trained participants compared to untrained. This would provide strong evidence that aerobic training improves pulmonary vasculature function which is contrary to the conventional understanding of aerobic training on the cardiopulmonary system.
Purpose
研究设计
- 研究类型
- Interventional
- 分配方式
- Randomized
- 干预模型
- Crossover
- 主要目的
- Basic Science
- 盲法
- Triple (Participant, Care Provider, Investigator)
盲法说明
Double-blind, placebo-controlled
入排标准
- 年龄范围
- 18 Years 至 40 Years(Adult)
- 性别
- All
- 接受健康志愿者
- 是
入选标准
- •Untrained participants will be defined as having a V̇O2peak of 30-45 ml.kg-1.min-
- •Trained participants will be defined as having a V̇O2peak above 55 ml.kg-1.min-1 (females) and 60 ml.kg-1.min-1 (males).
- •All participants will be between the ages of 18-40 years.
排除标准
- •Absolute contraindication to exercise testing or an orthopedic condition that may limit exercise testing as identified by standardized health screening tool (PAR-Q+).
- •Pre-existing cardiac conditions (heart failure, congenital heart defect, valvular disease) that may limit exercise testing.
- •A diagnosis of pulmonary hypertension.
- •Current prescription drug use (excluding oral contraception for females).
- •Pregnancy or lactation.
- •Women of childbearing potential must be willing to use an acceptable method of contraception to avoid pregnancy throughout the study. Acceptable methods of contraception include tubal ligation, oral contraceptive, barrier methods (intra-uterine device, diaphragm, female condom, male condom). Abstinence is an acceptable form of contraception, only insofar as patients agree to use another acceptable method of birth control, preferably a barrier method, if they become sexually active.
- •Postmenopausal female participants must be amenorrheic for ≥12 months.
研究组 & 干预措施
Healthy, Untrained
Untrained participants will be defined as having a V̇O2peak of 30-45 ml.kg-1.min-1 and will be between 18-40 years of age.
干预措施: Sildenafil 50 mg (Drug)
Healthy, Untrained
Untrained participants will be defined as having a V̇O2peak of 30-45 ml.kg-1.min-1 and will be between 18-40 years of age.
干预措施: Placebo (Drug)
Healthy, Trained
Trained participants will be defined as having a V̇O2peak above 55 ml.kg-1.min-1 (females) and 60 ml.kg-1.min-1 (males) and will be between 18-40 years of age.
干预措施: Sildenafil 50 mg (Drug)
Healthy, Trained
Trained participants will be defined as having a V̇O2peak above 55 ml.kg-1.min-1 (females) and 60 ml.kg-1.min-1 (males) and will be between 18-40 years of age.
干预措施: Placebo (Drug)
结局指标
主要结局
Diffusion capacity of carbon monoxide (DLCO)
时间窗: Minimum of 30 minutes post-dose.
Diffusion capacity of carbon monoxide (DLCO) in selected body positions and exercise intensities. DLCO is measured with the Roughton-Forster Multiple FIO2 single-breath DLCO procedure.
Capillary blood volume (Vc)
时间窗: Minimum of 30 minutes post-dose.
Capillary blood volume is a component of DLCO and is measured with the Roughton-Forster Multiple FIO2 single-breath DLCO procedure.
Membrane diffusing capacity (Dm)
时间窗: Minimum of 30 minutes post-dose.
Membrane diffusing capacity is a component of DLCO and is measured with the Roughton-Forster Multiple FIO2 single-breath DLCO procedure.
次要结局
- Pulmonary artery systolic pressure (PASP)(Minimum of 30 minutes post-dose.)
