Spatial analysis and factors associated with leptospirosis in Santa Catarina, Brazil, 2001-2015

Detalhes bibliográficos
Autor(a) principal: Silva,Ana Elisa Pereira
Data de Publicação: 2020
Outros Autores: Conceição,Gleice Margarete de Souza, Chiaravalloti Neto,Francisco
Tipo de documento: Artigo
Idioma: eng
Título da fonte: Revista da Sociedade Brasileira de Medicina Tropical
Texto Completo: http://old.scielo.br/scielo.php?script=sci_arttext&pid=S0037-86822020000100390
Resumo: Abstract INTRODUCTION: Leptospirosis is an endemic disease in Brazil that can become an epidemic during the rainy season resulting from floods in areas susceptible to natural disasters. These areas are widespread in Santa Catarina, particularly in the coastal region. Therefore, the objective of this study was to identify environmental, climatic, and demographic factors associated with the incidence of leptospirosis in the municipalities of Santa Catarina from 2001 to 2015, taking into account possible spatial dependence. METHODS: This was an ecological study aggregated by municipality. To evaluate the association between the incidence of leptospirosis and the factors under study (temperature, altitude, occurrence of natural disasters, etc.) while taking into account spatial dependence, linear regression models and models with global spatial error were used. RESULTS: Lower altitudes, higher temperatures, and areas of natural disaster risk in the municipality contributed the most to explaining the variability in the incidence rate. After taking spatial dependence into account, only the minimum altitude variable remained significant. The regions of lower altitude, where the highest rates of leptospirosis were recorded, corresponded to the eastern portion of the state near the coastal region, where floods, urban floods, and overflows are common occurrences. No associations were found concerning demographic factors. CONCLUSIONS The incidence of leptospirosis in Santa Catarina was associated with environmental factors, particularly low altitude, even when considering the spatial dependence structure present in the data. The spatial error model allowed for adequate modeling of spatial autocorrelation.
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spelling Spatial analysis and factors associated with leptospirosis in Santa Catarina, Brazil, 2001-2015LeptospiraIncidenceNatural disastersLinear regressionSpatial distributionAbstract INTRODUCTION: Leptospirosis is an endemic disease in Brazil that can become an epidemic during the rainy season resulting from floods in areas susceptible to natural disasters. These areas are widespread in Santa Catarina, particularly in the coastal region. Therefore, the objective of this study was to identify environmental, climatic, and demographic factors associated with the incidence of leptospirosis in the municipalities of Santa Catarina from 2001 to 2015, taking into account possible spatial dependence. METHODS: This was an ecological study aggregated by municipality. To evaluate the association between the incidence of leptospirosis and the factors under study (temperature, altitude, occurrence of natural disasters, etc.) while taking into account spatial dependence, linear regression models and models with global spatial error were used. RESULTS: Lower altitudes, higher temperatures, and areas of natural disaster risk in the municipality contributed the most to explaining the variability in the incidence rate. After taking spatial dependence into account, only the minimum altitude variable remained significant. The regions of lower altitude, where the highest rates of leptospirosis were recorded, corresponded to the eastern portion of the state near the coastal region, where floods, urban floods, and overflows are common occurrences. No associations were found concerning demographic factors. CONCLUSIONS The incidence of leptospirosis in Santa Catarina was associated with environmental factors, particularly low altitude, even when considering the spatial dependence structure present in the data. The spatial error model allowed for adequate modeling of spatial autocorrelation.Sociedade Brasileira de Medicina Tropical - SBMT2020-01-01info:eu-repo/semantics/articleinfo:eu-repo/semantics/publishedVersiontext/htmlhttp://old.scielo.br/scielo.php?script=sci_arttext&pid=S0037-86822020000100390Revista da Sociedade Brasileira de Medicina Tropical v.53 2020reponame:Revista da Sociedade Brasileira de Medicina Tropicalinstname:Sociedade Brasileira de Medicina Tropical (SBMT)instacron:SBMT10.1590/0037-8682-0466-2020info:eu-repo/semantics/openAccessSilva,Ana Elisa PereiraConceição,Gleice Margarete de SouzaChiaravalloti Neto,Franciscoeng2020-12-08T00:00:00Zoai:scielo:S0037-86822020000100390Revistahttps://www.sbmt.org.br/portal/revista/ONGhttps://old.scielo.br/oai/scielo-oai.php||dalmo@rsbmt.uftm.edu.br|| rsbmt@rsbmt.uftm.edu.br1678-98490037-8682opendoar:2020-12-08T00:00Revista da Sociedade Brasileira de Medicina Tropical - Sociedade Brasileira de Medicina Tropical (SBMT)false
dc.title.none.fl_str_mv Spatial analysis and factors associated with leptospirosis in Santa Catarina, Brazil, 2001-2015
title Spatial analysis and factors associated with leptospirosis in Santa Catarina, Brazil, 2001-2015
spellingShingle Spatial analysis and factors associated with leptospirosis in Santa Catarina, Brazil, 2001-2015
Silva,Ana Elisa Pereira
Leptospira
Incidence
Natural disasters
Linear regression
Spatial distribution
title_short Spatial analysis and factors associated with leptospirosis in Santa Catarina, Brazil, 2001-2015
title_full Spatial analysis and factors associated with leptospirosis in Santa Catarina, Brazil, 2001-2015
title_fullStr Spatial analysis and factors associated with leptospirosis in Santa Catarina, Brazil, 2001-2015
title_full_unstemmed Spatial analysis and factors associated with leptospirosis in Santa Catarina, Brazil, 2001-2015
title_sort Spatial analysis and factors associated with leptospirosis in Santa Catarina, Brazil, 2001-2015
author Silva,Ana Elisa Pereira
author_facet Silva,Ana Elisa Pereira
Conceição,Gleice Margarete de Souza
Chiaravalloti Neto,Francisco
author_role author
author2 Conceição,Gleice Margarete de Souza
Chiaravalloti Neto,Francisco
author2_role author
author
dc.contributor.author.fl_str_mv Silva,Ana Elisa Pereira
Conceição,Gleice Margarete de Souza
Chiaravalloti Neto,Francisco
dc.subject.por.fl_str_mv Leptospira
Incidence
Natural disasters
Linear regression
Spatial distribution
topic Leptospira
Incidence
Natural disasters
Linear regression
Spatial distribution
description Abstract INTRODUCTION: Leptospirosis is an endemic disease in Brazil that can become an epidemic during the rainy season resulting from floods in areas susceptible to natural disasters. These areas are widespread in Santa Catarina, particularly in the coastal region. Therefore, the objective of this study was to identify environmental, climatic, and demographic factors associated with the incidence of leptospirosis in the municipalities of Santa Catarina from 2001 to 2015, taking into account possible spatial dependence. METHODS: This was an ecological study aggregated by municipality. To evaluate the association between the incidence of leptospirosis and the factors under study (temperature, altitude, occurrence of natural disasters, etc.) while taking into account spatial dependence, linear regression models and models with global spatial error were used. RESULTS: Lower altitudes, higher temperatures, and areas of natural disaster risk in the municipality contributed the most to explaining the variability in the incidence rate. After taking spatial dependence into account, only the minimum altitude variable remained significant. The regions of lower altitude, where the highest rates of leptospirosis were recorded, corresponded to the eastern portion of the state near the coastal region, where floods, urban floods, and overflows are common occurrences. No associations were found concerning demographic factors. CONCLUSIONS The incidence of leptospirosis in Santa Catarina was associated with environmental factors, particularly low altitude, even when considering the spatial dependence structure present in the data. The spatial error model allowed for adequate modeling of spatial autocorrelation.
publishDate 2020
dc.date.none.fl_str_mv 2020-01-01
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dc.language.iso.fl_str_mv eng
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dc.relation.none.fl_str_mv 10.1590/0037-8682-0466-2020
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dc.publisher.none.fl_str_mv Sociedade Brasileira de Medicina Tropical - SBMT
publisher.none.fl_str_mv Sociedade Brasileira de Medicina Tropical - SBMT
dc.source.none.fl_str_mv Revista da Sociedade Brasileira de Medicina Tropical v.53 2020
reponame:Revista da Sociedade Brasileira de Medicina Tropical
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