Skip to main content
Clinical Trials/NCT02360865
NCT02360865CompletedNot Applicable

Mechanisms of Exercise Intolerance in Chronic Obstructive Pulmonary Disease

Rigshospitalet, Denmark1 site in 1 country18 target enrollmentStarted: February 1, 2015Last updated:
Conditions
Interventions

Trial Snapshot

Phase
Not Applicable
Status
Completed
Enrollment
18
Locations
1
Primary Endpoint
Endothelium function during acute exercise (one legged kicking) by Flow doppler

Study Overview

Brief Summary

1: Is endothelium function impaired in COPD? Other chronic cardiovascular diseases are associated with endothelial dysfunction, and the endothelium plays an important role in regulating vascular tone, tissue blood flow, coagulation and the inflammation process. Although the specific causes of endothelial dysfunction remain unclear, physical inactivity, chronic systemic inflammation and smoking are all known to be associated with endothelial abnormality.

2. Is Muscular Sympathetic Nerve Activity (MSNA) increased in COPD? A balanced regulation of blood flow to skeletal muscles may be disturbed by pathophysiology and may therefore contribute to the exercise intolerance and skeletal muscle depletion seen in patients with COPD.Skeletal muscle blood flow is tightly regulated to match tissue oxygen demands and is thus adapted to meet energy requirements. During physical activity, the sympathetic nervous system is activated ("exercise pressor reflex"), resulting in increased ventilation, heart rate and a redistribution of cardiac output from inactive to active tissues. The redistribution of cardiac output to the body organs is heterogeneous. Blood flow to skeletal, respiratory and cardiac muscle increases as exercise intensity increases, whereas blood flow to gastrointestinal, renal and reproductive tissues decreases. As blood pressure during exercise remains largely unchanged, the redistribution of blood flow is caused by changes in vascular conductance. These conductance changes are caused by an overall vasoconstriction induced by the increased sympathetic outflow of noradrenaline (NA), and a vasodilation of vascular beds supplying the working skeletal -, cardiac- and respiratory muscle.

Study Design

Study Type
Interventional
Allocation
Non Randomized
Intervention Model
Parallel
Primary Purpose
Basic Science
Masking
None

Eligibility Criteria

Ages
40 Years to 80 Years (Adult, Older Adult)
Sex
All
Accepts Healthy Volunteers
Yes

Inclusion Criteria

  • •Forced Expiratory Volume at on second/ Forced Vital Capacity fixed ratio <0.70, - Forced Expiratory Volume at one second <60% of predicted and Medical
  • •Research Council scale > or equal to 3
  • •Arterial oxygen saturation at rest> 90%,
  • •Body Mass Index >18,
  • •Left Ventricle Ejection Fraction> 45.

Exclusion Criteria

  • •Unstable ischemic heart disease,
  • •severe heart valve failure,
  • •pulmonary emboli,
  • •severe heart failure,
  • •severe infections,
  • •musculoskeletal disorders,
  • •malignant disease,
  • •contraindicated medicine as anticoagulants.

Arms & Interventions

COPD

Experimental

Acute exercise bouts

Intervention: Exercise (Other)

Healthy

Active Comparator

Acute exercise bouts

Intervention: Exercise (Other)

Outcomes

Primary Outcomes

Endothelium function during acute exercise (one legged kicking) by Flow doppler

Time Frame: On one experimental day during acute exercise (one legged knicking) and change from baseline

Flow doppler

Muscular Sympathetic Nerve Activity During acute exercise (handgrip and leg isometric leg extension) by Peroneal microneurography

Time Frame: On one experimental day during acute exercise (handgrib and leg isometric leg extension) and change from baseline

Secondary Outcomes

No secondary outcomes reported

Investigators

Sponsor Class
Other
Responsible Party
Principal Investigator
Principal Investigator

Anders Rasmussen Rinnov

MD, PhD

Rigshospitalet, Denmark

Study Sites (1)

Loading locations...

Similar Trials