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1.
Int J Health Geogr ; 17(1): 21, 2018 06 18.
Artigo em Inglês | MEDLINE | ID: mdl-29914506

RESUMO

BACKGROUND: Identifying fine-scale spatial patterns of disease is essential for effective disease control and elimination programmes. In low resource areas without formal addresses, novel strategies are needed to locate residences of individuals attending health facilities in order to efficiently map disease patterns. We aimed to assess the use of Android tablet-based applications containing high resolution maps to geolocate individual residences, whilst comparing the functionality, usability and cost of three software packages designed to collect spatial information. RESULTS: Using Open Data Kit GeoODK, we designed and piloted an electronic questionnaire for rolling cross sectional surveys of health facility attendees as part of a malaria elimination campaign in two predominantly rural sites in the Rizal, Palawan, the Philippines and Kulon Progo Regency, Yogyakarta, Indonesia. The majority of health workers were able to use the tablets effectively, including locating participant households on electronic maps. For all households sampled (n = 603), health facility workers were able to retrospectively find the participant household using the Global Positioning System (GPS) coordinates and data collected by tablet computers. Median distance between actual house locations and points collected on the tablet was 116 m (IQR 42-368) in Rizal and 493 m (IQR 258-886) in Kulon Progo Regency. Accuracy varied between health facilities and decreased in less populated areas with fewer prominent landmarks. CONCLUSIONS: Results demonstrate the utility of this approach to develop real-time high-resolution maps of disease in resource-poor environments. This method provides an attractive approach for quickly obtaining spatial information on individuals presenting at health facilities in resource poor areas where formal addresses are unavailable and internet connectivity is limited. Further research is needed on how to integrate these with other health data management systems and implement in a wider operational context.


Assuntos
Computadores de Mão , Sistemas de Informação Geográfica , Mapeamento Geográfico , Recursos em Saúde , Telemedicina/métodos , Sistemas de Informação Geográfica/estatística & dados numéricos , Instalações de Saúde/estatística & dados numéricos , Recursos em Saúde/estatística & dados numéricos , Humanos , Indonésia/epidemiologia , Filipinas/epidemiologia , População Rural/estatística & dados numéricos , Telemedicina/instrumentação , Telemedicina/estatística & dados numéricos
2.
Emerg Infect Dis ; 22(2): 201-8, 2016 Feb.
Artigo em Inglês | MEDLINE | ID: mdl-26812373

RESUMO

The zoonotic malaria species Plasmodium knowlesi has become the main cause of human malaria in Malaysian Borneo. Deforestation and associated environmental and population changes have been hypothesized as main drivers of this apparent emergence. We gathered village-level data for P. knowlesi incidence for the districts of Kudat and Kota Marudu in Sabah state, Malaysia, for 2008-2012. We adjusted malaria records from routine reporting systems to reflect the diagnostic uncertainty of microscopy for P. knowlesi. We also developed negative binomial spatial autoregressive models to assess potential associations between P. knowlesi incidence and environmental variables derived from satellite-based remote-sensing data. Marked spatial heterogeneity in P. knowlesi incidence was observed, and village-level numbers of P. knowlesi cases were positively associated with forest cover and historical forest loss in surrounding areas. These results suggest the likelihood that deforestation and associated environmental changes are key drivers in P. knowlesi transmission in these areas.


Assuntos
Meio Ambiente , Malária/epidemiologia , Malária/parasitologia , Plasmodium knowlesi , Análise Espacial , Florestas , Geografia , Humanos , Malásia/epidemiologia , Plasmodium knowlesi/classificação , Plasmodium knowlesi/genética
3.
Ecohealth ; 16(4): 638-646, 2019 12.
Artigo em Inglês | MEDLINE | ID: mdl-30927165

RESUMO

Land-use changes can impact infectious disease transmission by increasing spatial overlap between people and wildlife disease reservoirs. In Malaysian Borneo, increases in human infections by the zoonotic malaria Plasmodium knowlesi are hypothesised to be due to increasing contact between people and macaques due to deforestation. To explore how macaque responses to environmental change impact disease risks, we analysed movement of a GPS-collared long-tailed macaque in a knowlesi-endemic area in Sabah, Malaysia, during a deforestation event. Land-cover maps were derived from satellite-based and aerial remote sensing data and models of macaque occurrence were developed to evaluate how macaque habitat use was influenced by land-use change. During deforestation, changes were observed in macaque troop home range size, movement speeds and use of different habitat types. Results of models were consistent with the hypothesis that macaque ranging behaviour is disturbed by deforestation events but begins to equilibrate after seeking and occupying a new habitat, potentially impacting human disease risks. Further research is required to explore how these changes in macaque movement affect knowlesi epidemiology on a wider spatial scale.


Assuntos
Conservação dos Recursos Naturais , Ecossistema , Macaca fascicularis/parasitologia , Malária/epidemiologia , Plasmodium knowlesi/isolamento & purificação , Zoonoses/epidemiologia , Animais , Animais Selvagens , Doenças Endêmicas , Malásia/epidemiologia
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