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Infant mortality in South Africa - distribution, associations and policy implications, 2007: an ecological spatial analysis

BACKGROUND: Many sub-Saharan countries are confronted with persistently high levels of infant mortality because of the impact of a range of biological and social determinants. In particular, infant mortality has increased in sub-Saharan Africa in recent decades due to the HIV/AIDS epidemic. The geog...

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Autores principales: Sartorius, Benn KD, Sartorius, Kurt, Chirwa, Tobias F, Fonn, Sharon
Formato: Online Artículo Texto
Lenguaje:English
Publicado: BioMed Central 2011
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3250938/
https://www.ncbi.nlm.nih.gov/pubmed/22093084
http://dx.doi.org/10.1186/1476-072X-10-61
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author Sartorius, Benn KD
Sartorius, Kurt
Chirwa, Tobias F
Fonn, Sharon
author_facet Sartorius, Benn KD
Sartorius, Kurt
Chirwa, Tobias F
Fonn, Sharon
author_sort Sartorius, Benn KD
collection PubMed
description BACKGROUND: Many sub-Saharan countries are confronted with persistently high levels of infant mortality because of the impact of a range of biological and social determinants. In particular, infant mortality has increased in sub-Saharan Africa in recent decades due to the HIV/AIDS epidemic. The geographic distribution of health problems and their relationship to potential risk factors can be invaluable for cost effective intervention planning. The objective of this paper is to determine and map the spatial nature of infant mortality in South Africa at a sub district level in order to inform policy intervention. In particular, the paper identifies and maps high risk clusters of infant mortality, as well as examines the impact of a range of determinants on infant mortality. A Bayesian approach is used to quantify the spatial risk of infant mortality, as well as significant associations (given spatial correlation between neighbouring areas) between infant mortality and a range of determinants. The most attributable determinants in each sub-district are calculated based on a combination of prevalence and model risk factor coefficient estimates. This integrated small area approach can be adapted and applied in other high burden settings to assist intervention planning and targeting. RESULTS: Infant mortality remains high in South Africa with seemingly little reduction since previous estimates in the early 2000's. Results showed marked geographical differences in infant mortality risk between provinces as well as within provinces as well as significantly higher risk in specific sub-districts and provinces. A number of determinants were found to have a significant adverse influence on infant mortality at the sub-district level. Following multivariable adjustment increasing maternal mortality, antenatal HIV prevalence, previous sibling mortality and male infant gender remained significantly associated with increased infant mortality risk. Of these antenatal HIV sero-prevalence, previous sibling mortality and maternal mortality were found to be the most attributable respectively. CONCLUSIONS: This study demonstrates the usefulness of advanced spatial analysis to both quantify excess infant mortality risk at the lowest administrative unit, as well as the use of Bayesian modelling to quantify determinant significance given spatial correlation. The "novel" integration of determinant prevalence at the sub-district and coefficient estimates to estimate attributable fractions further elucidates the "high impact" factors in particular areas and has considerable potential to be applied in other locations. The usefulness of the paper, therefore, not only suggests where to intervene geographically, but also what specific interventions policy makers should prioritize in order to reduce the infant mortality burden in specific administration areas.
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spelling pubmed-32509382012-01-06 Infant mortality in South Africa - distribution, associations and policy implications, 2007: an ecological spatial analysis Sartorius, Benn KD Sartorius, Kurt Chirwa, Tobias F Fonn, Sharon Int J Health Geogr Research BACKGROUND: Many sub-Saharan countries are confronted with persistently high levels of infant mortality because of the impact of a range of biological and social determinants. In particular, infant mortality has increased in sub-Saharan Africa in recent decades due to the HIV/AIDS epidemic. The geographic distribution of health problems and their relationship to potential risk factors can be invaluable for cost effective intervention planning. The objective of this paper is to determine and map the spatial nature of infant mortality in South Africa at a sub district level in order to inform policy intervention. In particular, the paper identifies and maps high risk clusters of infant mortality, as well as examines the impact of a range of determinants on infant mortality. A Bayesian approach is used to quantify the spatial risk of infant mortality, as well as significant associations (given spatial correlation between neighbouring areas) between infant mortality and a range of determinants. The most attributable determinants in each sub-district are calculated based on a combination of prevalence and model risk factor coefficient estimates. This integrated small area approach can be adapted and applied in other high burden settings to assist intervention planning and targeting. RESULTS: Infant mortality remains high in South Africa with seemingly little reduction since previous estimates in the early 2000's. Results showed marked geographical differences in infant mortality risk between provinces as well as within provinces as well as significantly higher risk in specific sub-districts and provinces. A number of determinants were found to have a significant adverse influence on infant mortality at the sub-district level. Following multivariable adjustment increasing maternal mortality, antenatal HIV prevalence, previous sibling mortality and male infant gender remained significantly associated with increased infant mortality risk. Of these antenatal HIV sero-prevalence, previous sibling mortality and maternal mortality were found to be the most attributable respectively. CONCLUSIONS: This study demonstrates the usefulness of advanced spatial analysis to both quantify excess infant mortality risk at the lowest administrative unit, as well as the use of Bayesian modelling to quantify determinant significance given spatial correlation. The "novel" integration of determinant prevalence at the sub-district and coefficient estimates to estimate attributable fractions further elucidates the "high impact" factors in particular areas and has considerable potential to be applied in other locations. The usefulness of the paper, therefore, not only suggests where to intervene geographically, but also what specific interventions policy makers should prioritize in order to reduce the infant mortality burden in specific administration areas. BioMed Central 2011-11-18 /pmc/articles/PMC3250938/ /pubmed/22093084 http://dx.doi.org/10.1186/1476-072X-10-61 Text en Copyright ©2011 Sartorius et al; licensee BioMed Central Ltd. http://creativecommons.org/licenses/by/2.0 This is an Open Access article distributed under the terms of the Creative Commons Attribution License (http://creativecommons.org/licenses/by/2.0), which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Research
Sartorius, Benn KD
Sartorius, Kurt
Chirwa, Tobias F
Fonn, Sharon
Infant mortality in South Africa - distribution, associations and policy implications, 2007: an ecological spatial analysis
title Infant mortality in South Africa - distribution, associations and policy implications, 2007: an ecological spatial analysis
title_full Infant mortality in South Africa - distribution, associations and policy implications, 2007: an ecological spatial analysis
title_fullStr Infant mortality in South Africa - distribution, associations and policy implications, 2007: an ecological spatial analysis
title_full_unstemmed Infant mortality in South Africa - distribution, associations and policy implications, 2007: an ecological spatial analysis
title_short Infant mortality in South Africa - distribution, associations and policy implications, 2007: an ecological spatial analysis
title_sort infant mortality in south africa - distribution, associations and policy implications, 2007: an ecological spatial analysis
topic Research
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3250938/
https://www.ncbi.nlm.nih.gov/pubmed/22093084
http://dx.doi.org/10.1186/1476-072X-10-61
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