Author:
Alvarez-Hernandez Gerardo,Yera-Grillo Daraysi,Robles-Morúa Agustín,Navarro-Estupiñán Javier,Reyes-Castro Pablo Alejandro,Encinas-Cárdenas Angélica Aracely,Duarte-Tagles Héctor Francisco,Candia-Plata Maria del Carmen
Abstract
Objective. To characterize the geographic distribution of dengue and to evaluate the spatial autocorrelation with social and climatic determinants at the census-tract level in two medium sized cities in northwestern Mexico. Methods. In this work we apply spatial analysis ecological tools, such as the Moran’s Index and the Local Indicator of Spatial Association (LISA) method, to examine global and local spatial correlation between incidence of dengue, and socioeconomic and climatic factors at the census tract-level. For the analysis of the spatial clustering, the Getis-Ord method was used to find statistically significant hot spots in each city. Results. Overall, a global spatial autocorrelation could not be identified, although local clusters of a high dengue incidence, soil surface temperature ≤ 31 °C and high degree of social marginalization coincide. Discussion. We found that at the census-tract level in urban settings, socially disadvantaged populations showed higher clusters of dengue when compared to areas with better socioeconomic conditions. In the two study sites, a similar spatial pattern was observed when considering public health conditions and its aggregation with physical attributes using spatial analysis techniques, supporting the application of this technique for a better understanding about the dengue distribution in urban areas.
Reference37 articles.
1. Álvarez G, Lara F, Harlow SD, Denman CA. 2009. Mortalidad infantil y marginación urbana: análisis espacial de su relación en una ciudad de tamaño medio del noroeste mexicano. Rev Panam Salud Pública. 26(1):31-38.
2. Álvarez-Hernández G, Lara-Valencia F, Reyes-Castro P, Rascón-Pacheco RA. 2010. An analysis of spa-tial and socioeconomic determinants of tuberculosis in Hermosillo, Sonora. 2000-2006. Int J Tub Lung Dis 14 (6): 708-713
3. Benedum CM, Seidahmed OME, Eltahir EAB, Markuzon N. 2018. Statistical modeling of the effect of rainfall flushing on dengue transmission in Singapore. PLoS Negl Trop Dis 12 (12):e0006935 https://doi.org/10.1371/pntd.0006935
4. Bhatt S, Gething PW, Brady OJ, Messina JP, Farlow AW, Moyes CL et al. 2013. The global distribution and burden of dengue. Nature 496: 504–7. https://doi.org/10.1038/nature12060
5. Brady OJ, Gething PW, Bhatt S, Messina JP, Brownstein JS, Hoen AG et al. 2012. Refining the Global spatial limits of dengue virus transmission by evidence-based consensus. PLoS Negl Trop Dis 6, 1–15 https://doi.org/10.1371/journal.pntd.0001760