Full Length Article

Assessment of the impact of climate change on the occurrences of malaria, pneumonia, meningitis, and cholera in Lokoja City, Nigeria

  • Isaac Ayo OLUWATIMILEHIN ,
  • Joseph Omojesu AKERELE ,
  • Tolulope Adedoyin OLADEJI ,
  • Mojisola Hannah OMOGBEHIN ,
  • Godwin ATAI
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  • aDepartment of Geography, Obafemi Awolowo University, Ile Ife, 220101, Nigeria
    bDepartment of Geography, Modibbo Adama University of Technology, Yola, 640001, Nigeria
    cInstitute of Ecology and Environmental Studies, Obafemi Awolowo University, Ile Ife, 220101, Nigeria

Received date: 2022-08-09

  Revised date: 2022-11-01

  Accepted date: 2022-11-29

  Online published: 2023-01-31

Abstract

This study examined the impact of climate change on the occurrence of malaria, pneumonia, meningitis, and cholera in Lokoja City, Nigeria, with the aim of investigating the spatial distribution and prevalence of the four kinds of diseases as well as the coping strategies of people in the area. We collected the rainfall and temperature data of Lokoja City during 2000-2020 from the National Aeronautics and Space Administration (NASA), and the medical records data of the four kinds of diseases from the Kogi State Ministry of Health. We also conducted a semi-structured questionnaire of 250 residents, who have experienced one of these diseases, to investigate their coping strategies with these diseases. The Pearson correlation and multiple regression analysis were used to research the relationship between the climate parameters and cases of diseases. The result showed annual variations in climatic parameters with R2 values of 0.0557, 0.0009, and 0.4915 for rainfall, maximum temperature, and minimum temperature, respectively. A positive and significant relationship were observed between maximum temperature and malaria (r=0.80), rainfall and malaria (r=0.54), minimum temperature and meningitis (r=0.64), as well as rainfall and cholera (r=0.66) at P<0.05 level. For the regression analysis R2= 0.71, 0.50, and 0.52 for malaria, cholera, and meningitis, respectively at P<0.05 level. During 2000-2020, cases of malaria were highest in Ward A with 15,422, while 715 cases of pneumonia were highest in Kupa North Ward. In Ward A, 3787 cases of cholera were recorded to be the highest, while cases of meningitis were highest in Kupa North Ward with 2383 cases. Investigation revealed that malaria is more common in the wet season, while cholera and meningitis cases were highest in the dry season. The study revealed that the most practiced coping strategy is the use of medications by about 90% of the respondents. More studies are recommended in the study area to establish a causal link between climate change and disease occurrence, and intervention from government in form of prevention and control programmes should be vigorously implemented.

Cite this article

Isaac Ayo OLUWATIMILEHIN , Joseph Omojesu AKERELE , Tolulope Adedoyin OLADEJI , Mojisola Hannah OMOGBEHIN , Godwin ATAI . Assessment of the impact of climate change on the occurrences of malaria, pneumonia, meningitis, and cholera in Lokoja City, Nigeria[J]. Regional Sustainability, 2022 , 3(4) : 309 -318 . DOI: 10.1016/j.regsus.2022.11.007

References

[1] Abaje, I.B., Abdullahi, N., Jeje, O.G., 2016. Climate change and infectious diseases in funtua local government area of Katsina State, Nigeria. AFRREV STECH An International Journal of Science and Technology. 5(1), 47-58.
[2] Abdussalam, A.F., 2017. Potential future risk of cholera due to climate change in northern Nigeria. African Research Review. 11(1), 205-218.
[3] Adejuwon, J.O., 2005. Food crop production in Nigeria. I. present effects of climate variability. Clim. Res. 30(1), 53-60.
[4] Adejuwon, J.O., 2012. An assessment of the effect of climate variability on selected agricultural practices and yields in Sokoto-Rima River Basin, Nigeria. Phd Dissertation. Ile Ife: Obafemi Awolowo University, 46-47.
[5] Adeoye, N.O., 2012. Spatio-temporal analysis of land use/cover change of Lokoja-a confluence town. Journal of Geography and Geology. 4(4), 40, doi: 10.5539/jgg.v4n4p40.
[6] Adepoju, K., Adelabu, S., Fashae, O., 2019. Vegetation response to recent trends in climate and landuse dynamics in a typical humid and dry tropical region under global change. Adv. Meteorol. 4946127, doi: 10.1155/2019/4946127.
[7] Adojoh, O., Dada, S., 2015. Geomorphic resources and tourism potentials of the Niger-Benue confluence area, central Nigeria. Journal of Geosciences and Geomatics. 3(2), 44-49.
[8] Altizer, S., Dobson, A., Hosseini, P., et al., 2006. Seasonality and the dynamics of infectious diseases. Ecol. Lett. 9(4), 467-484.
[9] Animashaun, I.M., Adeoye, P.A., Otache, M.Y., 2020. Rainfall variability and trend analysis over Lokoja, Nigeria. Covenant Journal of Engineering Technology. 4(2), 32-42.
[10] Ayoade, J.O., 2003. Climate Change: A Synopsis of Its Nature, Causes, Effects and Management. Ibadan: Vantage Publishers, 124.
[11] Bouchard, C., Dibernardo, A., Koffi, J., et al., 2019. Increased risk of tick-borne diseases with climate and environmental changes. Canada Communicable Disease Report. 45(4), 83-89.
[12] Buba, L.F., Ibrahim, A.M., 2017. Temperature variations as evidence of climate change in northern Nigeria. Bayero Journal of Pure and Applied Sciences. 10(2), 99-106.
[13] Burrows, K., Kinney, P.L., 2016. Exploring the climate change, migration and conflict nexus. Int. J. Environ. Res. Public Health. 13(4), 443, doi: 10.3390/ijerph13040443.
[14] Caminade, C., Mclntyre, K.M., Jones, A.E., 2019. Impact of recent and future climate change on vector-borne diseases. Ann. N. Y. Acad. Sci. 1436(1), 157-173.
[15] Dantas-Torres, F., 2015. Climate change, biodiversity, ticks and tick-borne diseases: The butterfly effect. Int. J. Parasitol. Parasites Wildl. 4(3), 452-461.
[16] Deen, J., Mengel, M.A., Clemens, J.D., 2020. Epidemiology of cholera. Vaccine. 38(Suppl 1), A31-A40.
[17] Ebi, K.L., Vanos, J., Baldwin, J.W., et al., 2021. Extreme weather and climate change: population health and health system implications. Annu. Rev. Public Health. 42, 293-315.
[18] Fouque, F., Reeder, J.C., 2019. Impact of past and on-going changes on climate and weather on vector-borne diseases transmission: a look at the evidence. Infect. Dis. Poverty. 8(1), 51, doi: 10.1016/j.vaccine.2019.07.078.
[19] Iannella, H.A., Luna, C.M., 2016. Community-acquired pneumonia in Latin America. Seminars in Respiratory and Critical Care Medicine. 37(6), 868-875.
[20] Ike, F., Mbonu, C., 2019. Effects of weather and climatic elements on the incidence of pneumonia in Kaduna south local government area, North Western Nigeria. Earth Sciences. 8(3), 126-131.
[21] McIver, L., Kim, R., Woodward, A., et al., 2016. Health impacts of climate change in Pacific island countries: A regional assessment of vulnerabilities and adaptation priorities. Environ. Health Perspect. 124(11), 1707-1714.
[22] Miyayo, S.F., Owili, P.O., Muga, M.A., et al., 2021. Analysis of pneumonia occurrence in relation to climate change in Tanga, Tanzania. Int. J. Environ. Res. Public Health. 18(9), 4731, doi: 10.3390/ijerph18094731.
[23] Nikolaev, B., Salahodjaev, R., 2017. Historical prevalence of infectious diseases, cultural values, and the origins of economic institutions. Kyklos. 70(1), 97-128.
[24] Paaijmans, K.P., Read, A.R., Thomas, M.B., 2009. Understanding the link between malaria risk and climate. Proc. Natl. Acad. Sci. USA. 106(33), 13844-13849.
[25] Pfavayi, L.T., Denning, D.W., Baker, S., et al., 2021. Determining the burden of fungal infections in Zimbabwe. Sci. Rep. 11(1), 13240, doi: 10.1038/s41598-021-92605-1.
[26] Raimi, M.O., Vivien, O.T., O, O.A., et al., 2018. Environmental Health and Climate Change in Nigeria. SSRN. https://ssrn.com/abstract=3382888.
[27] Rodó, X., Pascual, M., Fuchs, G., et al., 2002. Enso and cholera: A nonstationary link related to climate change? Proc. Natl. Acad. Sci. USA. 99(20), 12901-12906.
[28] Rockl?v, J., Dubrow, R., 2020. Climate change: an enduring challenge for vector-borne disease prevention and control. Nat. Immunol. 21(5), 479-483.
[29] Schwerdtle, P., Bowen, K., McMichael, C., 2018. The health impacts of climate-related migration. BMC Med. 16(1), 1, doi: 10.1186/s12916-017-0981-7.
[30] Semenza, J.C., Paz, S., 2021. Climate change and infectious disease in Europe: Impact, projection and adaptation. Lancet Reg. Health-Eu. 9, 100230, doi: 10.1016/j.lanepe.2021.100230.
[31] Tol, R.S.J., Ebi, K.L., Yohe, G.W., 2007. Infectious disease, development, and climate change: a scenario analysis. Environ Dev Econ. 12(5), 687-706.
[32] Turner, B., Devisscher, T., Chabaneix, N., 2022. The role of nature-based solutions in supporting social-ecological resilience for climate change adaptation. Annu. Rev. Env. Resour. 47, 123-148.
[33] Wang, C., Deser, C., Yu, J.Y., et al., 2017. El Ni?o and southern oscillation (ENSO):A review. In: PGlynn., DManzello., IEnochs., (eds.). Coral Reefs of the Eastern Tropical Pacific. Coral Reefs of the World. Dordrecht: Springer, 85-106.
[34] Webber, M., Joubert, J., Fendt-Newlin, M., 2020. Towards the development of an intervention to address social determinants of non-communicable disease in Kerala, India: a mixed methods study. Int. J. Environ. Res. Public Health. 17(22), 8636, doi: 10.3390/ijerph17228636.
[35] WHO (World Health Organization), 2017. Inheriting A Sustainable World: Atlas on Children’s Health and The Environment. Geneva: World Health Organization, 44-51.
[36] WHO, 2021. World Malaria Report 2021. Geneva: WHO, 21-34.
[37] Wu, X.X., Lu, Y.M., Zhou, S., et al., 2016. Impact of climate change on human infectious diseases: Empirical evidence and human adaptation. Environ. Int. 86, 14-23.
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