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Clinical Trials/NCT02100865
NCT02100865CompletedPhase 2

Solar Powered Oxygen Delivery: An Open-label Non-inferiority Comparison to Standard Oxygen Delivery Using Oxygen Cylinders

University of Alberta1 site in 1 country130 target enrollmentStarted: February 1, 2014Last updated:
Conditions
Interventions

Trial Snapshot

Phase
Phase 2
Status
Completed
Enrollment
130
Locations
1
Primary Endpoint
Length of hospital stay

Study Overview

Brief Summary

Globally, approximately 2.1 million children die of pneumonia each year. Most deaths occur in resource-poor settings in Africa and Asia. Oxygen (O2) therapy is essential to support life in these patients. Large gaps remain in the case management of children presenting to African hospitals with respiratory distress, including essential supportive therapies such as supplemental oxygen. We hypothesize that a novel strategy for oxygen delivery, solar-powered oxygen, can be implemented in remote locations and will be non-inferior to standard oxygen delivery by compressed gas cylinders.

Detailed Description

Arterial hypoxemia in pneumonia results from several mechanisms: pulmonary arterial blood flow to consolidated lung resulting in an intrapulmonary shunt, intrapulmonary oxygen consumption, and ventilation-perfusion mismatch. Hypoxemia is a risk factor for mortality in pediatric pneumonia, and was associated with a 5-fold increased risk of death in studies from Kenya and Gambia.

In one report from Nepal, the prevalence of hypoxemia (SpO2 < 90%) in 150 children with pneumonia was 39% overall, with increasing rates of hypoxemia across strata of pneumonia severity (100% of very severe, 80% of severe and 17% of pneumonia patients). General features of respiratory distress were associated with hypoxemia in this study, including chest indrawing, lethargy, grunting, nasal flaring, cyanosis, inability to breastfeed or drink.

Few studies have reported on the use of solar powered oxygen (SPO2) delivery. One online report describes the use of a battery-powered oxygenator in the Gambia that could be adapted to use solar power (http://www.dulas.org.uk). Otherwise, our intervention is to our knowledge the first example of SPO2 delivery.

New ways to deliver oxygen for children with pneumonia in Africa could improve outcomes and save numerous lives. If this study documents the non-inferiority of SPO2 relative to standard oxygen delivery, this novel method of providing life-saving oxygen could be rolled out across centres in sub-Saharan Africa where oxygen cylinders are not widely available and electrical power is not reliable. The potential energy efficiency, low cost and ease of use make solar power an attractive avenue of investigation for use in resource-constrained settings. Proof-of-concept that the sun can be used to drive oxygen delivery could stimulate commercial interest in this technology. The SPO2 system could thus achieve rapid penetration into the most remote or rural settings in sub-Saharan Africa.

Study Design

Study Type
Interventional
Allocation
Randomized
Intervention Model
Parallel
Primary Purpose
Treatment
Masking
None

Eligibility Criteria

Ages
— to 13 Years (Child)
Sex
All
Accepts Healthy Volunteers
No

Inclusion Criteria

  • •Age <13 years
  • •IMCI defined pneumonia, severe pneumonia or very severe disease
  • •Hypoxemia (SpO2<90%) based on non-invasive pulse oximetry
  • •Hospital admission warranted based on clinician judgment
  • •Consent to blood sampling and data collection

Exclusion Criteria

  • •SpO2 ≥90%
  • •Suspected pulmonary tuberculosis
  • •Outpatient management
  • •Denial of consent to participate in study

Arms & Interventions

Solar powered oxygen

Experimental

Solar panels used to drive an oxygen concentrator to deliver at stream of oxygen at approximately 90% FiO2 and a rate of 1-5L/min.

Intervention: Solar powered oxygen (Device)

Oxygen from cylinders

Active Comparator

Conventional oxygen delivery from compressed gas cylinders

Intervention: Oxygen from cylinders (Device)

Outcomes

Primary Outcomes

Length of hospital stay

Time Frame: Until end of hospitalization (usually 3 to 7 days)

The number of days from admission to discharge. Criteria for discharge are standardized and are assessed daily.

Secondary Outcomes

  • Duration of supplemental oxygen therapy(Until hospital discharge (usually 3 to 7 days))
  • Cost(Until hospital discharge (usually 3 to 7 days))
  • Lambaréné Organ Dysfunction Score (LODS)(Until hospital discharge (usually 3 to 7 days))
  • Mortality(At hospital discharge (usually 3 to 7 days))
  • Proportion of patients successfully oxygenated(6 hours)
  • Oxygen delivery system failure(During hospitalization (usually 3 to 7 days))

Investigators

Sponsor Class
Other
Responsible Party
Sponsor

Study Sites (1)

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