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1/2- Bangladesh Center for Global Environmental and Occupational Health- Bangladesh

Long Term Effects of Household Air Pollution (HAP) Reduction on Cardio-pulmonary and Immune Function Outcomes - a Household Level Randomized mHealth Intervention Trial

Status
Recruiting
Phases
NA
Study type
Interventional
Source
ClinicalTrials.gov
Registry ID
NCT05570552
Acronym
GEOHealth-II
Enrollment
1000
Registered
2022-10-06
Start date
2023-06-20
Completion date
2027-06-30
Last updated
2024-03-22

For informational purposes only — not medical advice. Sourced from public registries and may not reflect the latest updates. Terms

Conditions

Air Pollution, Cardiopulmonary Function, Immune Function, mHealth Intervention

Keywords

Mobile based Behavioral Change Communication intervention, Household air pollution reduction, Cardiopulmonary function, Immune function, Clean fuel LPG

Brief summary

Almost 3 billion people worldwide, including 89% people in Bangladesh, are exposed to harmful household air pollutants (HAP) emitted from combustion of biomass (wood, agricultural residue, cow dung, etc.) fuel use for cooking. While health risks associated with air-pollution have been reasonably well-studied in developed countries, there is little evidence on health benefits achievable by HAP reduction through clean fuel use, especially in low- and middle-income countries (LMICs). Earlier the investigators showed that Liquid Petroleum Gas (LPG) for 24 months, reduced personal PM2.5 exposure by 58.17 percent which induced novel changes in immune and inflammatory responses in the participants; however cardiopulmonary markers remained relatively stable in post-intervention assessment. In this study, the investigators aim to evaluate the effects of mobile phone based (mHealth) Behavioural Change Communication (BCC) intervention on adoption and exclusive use of LPG. The investigators also aimed to observe whether long-term effects of HAP reduction can impact the subclinical measures of cardio-vascular and pulmonary dysfunction and regulate innate and inflammatory immune function among women and children in semi-rural settings in Bangladesh. The investigators will also investigate the influence of exposure to HAP on antibody response to vaccines (adaptive immunity). The BCC intervention will be provided by conducting a large household level randomized controlled trial by educational intervention using mHealth based technology. In addition, the investigators will continue following the cohort and will conduct rigorous and repeated personalized (24 hours) and area (over 5 days) assessments of PM2.5 and black carbon (BC) exposure to examine the long-term effects of HAP reduction on subclinical measures of cardio-pulmonary and immune dysfunction including effect of HAP exposure on antibody response to vaccine.

Detailed description

Background: Almost 3 billion people worldwide, including 89% people in Bangladesh, are exposed to harmful household air pollutants (HAP) emitted from combustion of biomass fuel (wood, agricultural residue, cow dung, etc.) used for cooking. While health risks associated with air-pollution have been reasonably well-studied in developed countries, there is little evidence on health benefits achievable by HAP reduction through clean fuel use such as Liquid Petroleum Gas, especially in low- and middle-income countries (LMICs). Rationale: In the earlier GEOHealth (Round-I) study, the investigators have shown that LPG for 24 months, reduced personal PM2.5 exposure by 58.2 percent which induced novel changes in innate immune and inflammatory responses in women but the changes in chronic cardio-pulmonary markers were not prominent, most likely due to short duration of follow up and probably impact of ambient pollution. Moreover, sustained use of LPG could be challenging as earlier GEOHealth (Round-I) study provided the cook stove and supply of LPG free of cost. A post-completion screening showed \>70% households continued using LPG albeit not exclusively. It is plausible that an intervention using mobile phone-based application can improve the exclusive use of LPG in the communities. Hypothesis: 1. The mobile phone based (mHealth) Behavioural Change Communication (BCC) intervention can be easily incorporated in Government policy that can promote adoption, and increase exclusive use of LPG in the communities. The long-term effect of HAP reduction can be associated with- 2. subclinical measures of cardio-vascular and pulmonary dysfunction. 3. balanced changes in innate/ inflammatory and adaptive immune function (vaccine response). Objectives: To evaluate 1. The effects of a scalable educational intervention (using mHealth application) on adoption and exclusive use of LPG. 2. The long-term effects of HAP reduction on subclinical measures of cardio-vascular and pulmonary dysfunction. 3. The long-term effects of HAP reduction on innate/ inflammatory immune function among women and children and to investigate the influence of HAP exposure on antibody response to vaccines (adaptive immunity). Methods: The investigators will conduct a large household level randomized controlled trial by educational intervention using mobile phone (mHealth) based technology. In addition, the investigators will continue following the cohort and will conduct rigorous and repeated personalized (24 hours) and area-wise (over 5 days) assessments of PM2.5 and black carbon (BC) exposure to examine the long-term effects of HAP reduction on subclinical measures of cardio-pulmonary and immune dysfunction including effect of HAP exposure on antibody response to vaccine. Outcome measures/variables: Personal and surrounding area PM2.5 and BC level will be measured at pre- and post-intervention. Lung function and lung pathology will be assessed through spirometry, Chest X-ray, and High-resolution Computed tomography of the chest (HRCT). Preclinical makers of cardiovascular diseases (CVD) will include blood pressure and EKG. Markers of metabolic dysfunction will be assesses by measuring HbA1c and fasting lipid profile. Immune function will be assessed by phenotyping of Immune cells, functional cytotoxic killer cells, oxidative stress of lymphocytes.

Interventions

BEHAVIORALmHealth based behavioral change communication intervention

We will implement a mHealth based communication system. The number of text messages and push notifications that a participant receives, will be variable and will occur at least weekly (based upon their responses) or the participant opts out of receiving messages. Participant change of behavior and use of improved stoves will be monitored by tracking clicks/views of educational materials and video vignettes.

Sponsors

University of Chicago
CollaboratorOTHER
Mailman School of Public Health
CollaboratorUNKNOWN
Marquette University
CollaboratorOTHER
International Centre for Diarrhoeal Disease Research, Bangladesh
Lead SponsorOTHER

Study design

Allocation
RANDOMIZED
Intervention model
PARALLEL
Primary purpose
PREVENTION
Masking
NONE

Eligibility

Sex/Gender
FEMALE
Age
25 Years to 70 Years
Healthy volunteers
Yes

Inclusion criteria

* Participants in the previous GEOHEALTH round-I study * Aged between 25 and 70 years * Live in biomass-using home with traditional stoves * Non-smoker and live with non-smokers * Exposed to \<10 µg/L of water arsenic

Exclusion criteria

* Known to have immune related illness or taking any prescription medication (particularly those that suppress or enhance immune function) * Known to have any clinical events of CVD or lung disease, including stroke or coronary heart disease.

Design outcomes

Primary

MeasureTime frameDescription
Personal air pollutionPre-interventionMeasurement of personal air pollution (PM2.5 and BC level) by personal air pollution monitoring device
Ambient air pollutionPre-interventionMeasurement of ambient air pollution (PM2.5) by ambient air monitoring device
Lung function assessment by spirometryPre-interventionLung function assessment by spirometry
Assessment lung pathology by chest X-ray and High-resolution Computed tomographyPre-interventionLung pathology will be assessed by chest X-ray for all participants and high-resolution Computed tomography of the chest (HRCT) will be performed in selected participants.
Evaluation of metabolic markers (CVD) in blood.Pre-interventionAssessment of metabolic dysfunction by measuring fasting lipid profile.
Measurement of cardiovascular disease (CVD) markers by measuring blood pressurePre-interventionPreclinical markers of CVD assessment by blood pressure
Measurement of cardiovascular disease (CVD) markers by performing EKGPre-interventionPreclinical markers of CVD assessment by EKG
Evaluation of metabolic markers (diabetes) in blood at baseline.Pre-interventionAssessment of metabolic dysfunction by measuring HbA1c
Evaluation of metabolic markers (diabetes) in blood after intervention.Two-year post interventionAssessment of metabolic dysfunction by measuring HbA1c
Assessment of immune function in blood cellsPre-interventionImmune function will be assessed by phenotyping using flowcytometry

Countries

Bangladesh

Contacts

Primary ContactRubhana Raqib, PhD
rubhana@icddrb.org+8802222277001-10
Backup ContactMohammad Yunus, MBBS, M.Sc.
myunus@icddrb.org+8802222277001-10

Outcome results

None listed

Source: ClinicalTrials.gov · Data processed: Feb 4, 2026