Prevalence of Strongyloides stercoralis and other helminths in four districts of Madagascar
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Published:2024-07-29
Issue:1
Volume:52
Page:
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ISSN:1349-4147
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Container-title:Tropical Medicine and Health
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language:en
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Short-container-title:Trop Med Health
Author:
Scarso Salvatore, Rakotoarivelo Rivo Andry, Hey Jana Christina, Rasamoelina Tahinamandranto, Razafindrakoto Anjarasoa Ravo, Rasolojaona Zaraniaina Tahiry, Razafindralava Nantenaina Mathieu, Remkes Aaron, Rakotozandrindrainy Njary, Rasoamanamihaja Clara Fabienne, Schwarz Norbert Georg, May Jürgen, Rakotozandrindrainy Raphael, Marchese Valentina, Formenti Fabio, Perandin Francesca, Tamarozzi Francesca, Mazzi Cristina, Fusco Daniela, Buonfrate DoraORCID
Abstract
Abstract
Background
Estimation of prevalence of Strongyloides stercoralis infection is required in endemic areas, in order to identify areas in need of control programmes. Data on prevalence of strongyloidiasis in Madagascar are scant. Aim of this work was to estimate prevalence of S. stercoralis in four districts of Madagascar.
Methods
Fecal and serum samples collected in the context of a previous study on schistosomiasis were tested with S. stercoralis real-time PCR and serology, respectively. A multiplex real-time PCR for Ascaris lumbricoides, Ancylostoma duodenalis, Necator americanus, and Trichuris trichiura was done on fecal samples collected in the areas demonstrating higher prevalence of strongyloidiasis. Comparisons between proportions were made using Fisher exact test, with false discovery rate correction used for post-hoc comparisons. A multivariable Firth logistic regression model was used to assess potential risk factors for S. stercoralis infection.
Results
Overall, 1775 serum samples were tested, of which 102 of 487 (20.9%) and 104 of 296 (35.2%) were serological-positive in Marovoay and in Vatomandry districts (both coastal areas), respectively, compared to 28 of 496 (5.6%) and 30 of 496 (6.1%) in Tsiroanomandidy and in Ambositra districts (both highlands), respectively (adj. p < 0.001). PCR for S. stercoralis was positive in 15 of 210 (7.1%) and in 11 of 296 (3.7%) samples from Marovoay from Vatomandry, respectively, while was negative for all samples tested in the other two districts. High prevalence of A. lumbricoides (45.9%), hookworm (44.6%) and T. trichiura (32.1%) was found in Vatomandry. In the multivariable analysis, strongyloidiasis was associated with hookworm infection. Hookworm infection was also associated with male sex and lower education level.
Conclusions
S. stercoralis prevalence proved higher in coastal areas compared to highlands. Different climatic conditions may explain this distribution, along with previous rounds of anthelminthics distributed in the country, which may have reduced the parasite load in the population. The high prevalence of the other soil-transmitted helminths (STH) in Vatomandry was unexpected, given the good coverage with benzimidazole in control campaigns. Further studies are needed to explore the risk factors for STH and S. stercoralis infections in Madagascar, in order to align with the WHO recommendations.
Funder
Ministero della Salute BMBF Deutsches Zentrum für Infektionsforschung
Publisher
Springer Science and Business Media LLC
Reference35 articles.
1. Buonfrate D, Bradbury RS, Watts MR, Bisoffi Z. Human strongyloidiasis: complexities and pathways forward. Clin Microbiol Rev. 2023;36(4): e0003323. 2. WHO. 2030 targets for soil-transmitted helminthiases control programmes Geneva: Licence: CC BY-NC-SA 3.0 IGO; 2019. 3. Hotez PJ, Bundy DAP, Beegle K, Brooker S, Drake L, de Silva N, et al. Helminth Infections: Soil-transmitted Helminth Infections and Schistosomiasis. In: Jamison DT, Breman JG, Measham AR, Alleyne G, Claeson M, Evans DB, et al., editors. Disease Control Priorities in Developing Countries. Washington DC New York: © The International Bank for Reconstruction and Development/The World Bank Group.; 2006. 4. Fleitas PE, Kehl SD, Lopez W, Travacio M, Nieves E, Gil JF, et al. Mapping the global distribution of Strongyloides stercoralis and hookworms by ecological niche modeling. Parasit Vectors. 2022;15(1):197. 5. Buonfrate D, Tamarozzi F, Paradies P, Watts MR, Bradbury RS, Bisoffi Z. The diagnosis of human and companion animal Strongyloides stercoralis infection: challenges and solutions. A scoping review. Adv Parasitol. 2022;118:1–84.
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