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Published on: August 22, 2012
Geo-spatial factors associated with infection risk among young children in rural Ghana: a secondary spatial analysis
Ashley M Aimone1, Patrick E Brown2, Stanley H Zlotkin3
1Division of Epidemiology, Dalla Lana School of Public Health, University of Toronto, 155 College Street, Toronto, ON, M5T 3M7, Canada.
Insights
Spatial patterns of infection in young children in malaria-endemic areas are predictable. Factors like elevation and distance to health facilities influence infection risk, guiding targeted interventions.
Area of Science:
- Spatial epidemiology
- Public health
- Malariology
Background:
- Identifying spatial infection patterns in young children in malaria-endemic regions is crucial for resource allocation and healthcare access.
- This study analyzes baseline data from a cluster-randomized trial involving 1943 Ghanaian children aged 6-35 months.
Purpose of the Study:
- To determine the geo-spatial factors associated with malaria and non-malaria infection status in young children.
- To identify high-risk populations for targeted interventions.
Main Methods:
- Spatial analyses employed a generalized linear geostatistical model with Matern spatial correlation.
- Infection status was defined using combinations of inflammation (C-reactive protein > 5 mg/L) and malaria parasitaemia.
- Models incorporated individual, household, and satellite-derived spatial variables.
Main Results:
- Infection (inflammation and/or parasitaemia) was linked to younger age, stunting, wasting, distance from health facilities, lower elevation, maternal education, and ferritin levels.
- Clinical malaria or parasitaemia with fever showed similar associations.
- Significant interactions between vegetation index and land cover were observed when parasitaemia was included; predicted infection probabilities revealed distinct high- and low-risk areas.
Conclusions:
- Infection risk in young children in malaria-endemic areas exhibits predictable spatial patterns.
- Geographical characteristics like elevation and proximity to health facilities are key associated factors.
- Findings support targeted public health strategies based on spatial risk assessment.
Background:
Determining the spatial patterns of infection among young children living in a malaria-endemic area may provide a means of locating high-risk populations who could benefit from additional resources for treatment and improved access to healthcare. The objective of this secondary analysis of baseline data from a cluster-randomized trial among 1943 young Ghanaian children (6-35 months of age) was to determine the geo-spatial factors associated with malaria and non-malaria infection status.
Methods:
Spatial analyses were conducted using a generalized linear geostatistical model with a Matern spatial correlation function and four definitions of infection status using different combinations of inflammation (C-reactive protein, CRP > 5 mg/L) and malaria parasitaemia (with or without fever). Potentially informative variables were included in a final model through a series of modelling steps, including: individual-level variables (Model 1); household-level variables (Model 2); and, satellite-derived spatial variables (Model 3). A final (Model 4) and maximal model (Model 5) included a set of selected covariates from Models 1 to 3.
Results:
The final models indicated that children with inflammation (CRP > 5 mg/L) and/or any evidence of malaria parasitaemia at baseline were more likely to be under 2 years of age, stunted, wasted, live further from a health facility, live at a lower elevation, have less educated mothers, and higher ferritin concentrations (corrected for inflammation) compared to children without inflammation or parasitaemia. Similar results were found when infection was defined as clinical malaria or parasitaemia with/without fever (definitions 3 and 4). Conversely, when infection was defined using CRP only, all covariates were non-significant with the exception of baseline ferritin concentration. In Model 5, all infection definitions that included parasitaemia demonstrated a significant interaction between normalized difference vegetation index and land cover type. Maps of the predicted infection probabilities and spatial random effect showed defined high- and low-risk areas that tended to coincide with elevation and cluster around villages.
Conclusions:
The risk of infection among young children in a malaria-endemic area may have a predictable spatial pattern which is associated with geographical characteristics, such as elevation and distance to a health facility. Original trial registration clinicaltrials.gov (NCT01001871).
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