Rabies Surveillance and Dog Population Management: Insights from a Survey of Roaming Dogs in Qatar 2024

Authors

  • Dr Elmogiera Elawad Qatar university – SESRI 2
  • Muzzamil Atta Ministry of Municipality
  • Mohamed Agied Qatar university- SESRI
  • Mahmoud Mohamed Ministry of Municipality
  • Saleh Almari Ministry of Municipality
  • H. Alyahri Ministry of Municipality
  • A Alziarh Ministry of Municipality
  • John Lee Holmes Qatar university-SESRI

DOI:

https://doi.org/10.69980/jaz.v47i1.5441

Keywords:

Dog population, Rabies, Qatar and roaming dogs

Abstract

In 2024, a total of 1,333 roaming dogs were sampled across Qatar to estimate their population size and test for rabies. Surveyed areas were randomly selected to ensure representation across all municipalities and zones, encompassing 419 of 4,000 total blocks. A portable laboratory device analyzed biological samples directly in the field. The results showed that all tested dogs were free of rabies, with male and adult dogs being more prevalent. Most sampled dogs were in relatively good health, exhibited friendly behavior, and had strong appetites. This study prioritized animal welfare by vaccinating all examined dogs against rabies, following protocols approved by Qatar University’s Institutional Animal Care and Use Committee (IACUC). The absence of both rabies and leishmaniasis suggests the effectiveness of disease control measures, with significant implications for public health and policy-making. These findings support a high level of confidence that the prevalence of these diseases within Qatar’s canine population is low or nonexistent. The results underscore the importance of ongoing monitoring and preventive measures to sustain Qatar’s rabies-free status and highlight the need for sustainable population management of roaming dogs to minimize zoonotic risks, thereby enhancing public health and safety.

 

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References

Al-Shamahy, H. A., Whitaker, I. S., Al-Ahdal, M. N., Al-Habori, M. & Al-Moyed, K. A. Prevalence of rabies in various species in Yemen and risk factors contributing to the spread of the disease. Sultan Qaboos Univ. Med. J. 13, 404–410 Preprint at https://doi.org/10.12816/0003263 (2013).

2.Arias-Orozco, P., Bástida-González, F., Cruz, L. & others. Spatiotemporal analysis of canine rabies in El Salvador: Violence and poverty as social factors of canine rabies. PLoS ONE 13, e0201305 Preprint at https://doi.org/10.1371/journal.pone.0201305 (2018).

3.Artois, M., Osman, F., Kilani, M. & Wandeler, A. New contribution to the knowledge of the ecology of stray dogs in Tunisia. Comparative Immunology, Microbiology and Infectious Diseases 9, 4–5 Preprint at https://doi.org/10.2139/ssrn.3894290 (1986).

4.Baghi, H. B. et al. A perspective on rabies in the Middle East—Beyond neglect. Veterinary Sciences 5, 67 https://doi.org/10.3390/vetsci5030067 (2018).

5.Bhattarai, D. et al. Street dogs opt for proteins over carbs: An experimental inference from streets of Kathmandu. Dog Behavior 7, 1 https://doi.org/10.4454/db.v7i2.136 (2021).

6.Benavides, J. A., Rojas Paniagua, E. et al. Quantifying the burden of vampire bat rabies in Peruvian livestock. PLoS Neglected Tropical Diseases 11, e0006105 https://doi.org/10.1371/journal.pntd.0006105 (2017).

7.Brunker, K., Lemey, P., Marston, D. A. et al. Landscape attributes governing local transmission of an endemic zoonosis: Rabies virus in domestic dogs. Molecular Ecology 27, 773–788 https://doi.org/10.1111/mec.14470 (2018).

8.Bukowski, J. & Aiello, S. Description and physical characteristics of dogs. MSD Veterinary Manual (Pet Owner Version) https://www.msdvetmanual.com (2011, updated 2024).

9.Cleaveland, S., Thumbi, S. M., et al. Proof of concept of mass dog vaccination for the control and elimination of canine rabies. Revue Scientifique et Technique (International Office of Epizootics), 37, 559 https://doi.org/10.20506/rst.37.2.2824 (2018).

10.Conceição, P., & Abreu, C. Human rabies: Optimization of prevention and paths towards the cure. Acta Médica Portuguesa, 34, 767–773 https://doi.org/10.20344/amp.10657 (2021).

11.Darkaoui, S., Cliquet, F., Wasniewski, M., et al. A century spent combating rabies in Morocco (1911–2015): How much longer? Frontiers in Veterinary Science, 4, 78 https://doi.org/10.3389/fvets.2017.00078 (2017).

12.Delmas, O., Holmes, E. C., Talbi, C., et al. Genomic diversity and evolution of the lyssaviruses. PLoS ONE, 3, e2057 https://doi.org/10.1371/journal.pone.0002057 (2008).

13.El-Neweshy, M. S., Al Mayahi, N., Al Mamari, W., Al Rashdi, Z., & Al Mawly, J. H. Animal rabies situation in Sultanate of Oman (2017–2019). Tropical Animal Health and Production, 52, 3069–3076 https://doi.org/10.1007/s11250-020-02328-0 (2020).

14.Embregts, C. W. E., Farag, E. A. B. A., et al. Rabies virus populations in humans and mice show minor inter-host variability within various CNS regions and peripheral tissues. Viruses, 14(12), 2661 https://doi.org/10.3390/v14122661 (2022).

15.FAO. In vivo conservation of animal genetic resources (FAO Animal Production and Health Guidelines, No. 14). FAO, http://www.fao.org/publications 2013.

16.Guo, D., Yin, W., et al. The role of socioeconomic and climatic factors in the spatio-temporal variation of human rabies in China. BMC Infectious Diseases, 18, 526. https://doi.org/10.1186/s12879-018-3427-8 (2018).

17.Hampson, K., Dushoff, J., et al. Transmission dynamics and prospects for the elimination of canine rabies. PLOS Biology 7(3), e1000053. https://doi.org/10.1371/journal.pbio.1000053 (2009).

18.Hampson, K., Coudeville, L., et al. Estimating the global burden of endemic canine rabies. PLOS Neglected Tropical Diseases 9, e0003786. https://doi.org/10.1371/journal.pntd.0003709 (2015).

19.Jackson, A. C. Human rabies: A 2016 update. Current Infectious Disease Reports 18, 38. https://doi.org/10.1007/s11908-016-0540-y (2016).

20.Kalthoum, S., Salah, C. B., Rzeigui, et al. Owned and free-roaming dogs in the North West of Tunisia: Estimation, characteristics and application for the control of dog rabies. Heliyon 7(11), e08347. https://doi.org/10.1016/j.heliyon.2021.e08347 (2021).

21.Kalthoum, S., Mzoughi, S., et al. Factors associated with the spatiotemporal distribution of dog rabies in Tunisia. PLOS Neglected Tropical Diseases 18(8), e0012296. https://doi.org/10.1371/journal.pntd.0012296 (2024).

22.Kasem, S., Hussein, R., Al-Doweriej, A., et al. Rabies among animals in Saudi Arabia. Journal of Infection and Public Health 12(3), 445–447. https://doi.org/10.1016/j.jiph.2018.10.005 (2019).

23.Khayli, M., Lhor, Y., Derkaoui, S., et al. Determinants of canine rabies in Morocco: How to make pertinent deductions for control? Epidemiology Open Journal 4(1), 1–11. https://doi.org/10.17140/EPOJ-4-113 (2019).

24.Ko, J. C. Small animal anesthesia and pain management. (third ed.) ,51-75 (2024).

25.Lachica, Z. P. T., Peralta, J. M., Diamante, E. O., Murao, L. A. E., Mata, M. A. E., & Alviola IV, P. A. A cointegration analysis of rabies cases and weather components in Davao City, Philippines from 2006 to 2017. PLOS ONE, 15(8), e0236278. https://doi.org/10.1371/journal.pone.0236278 (2020).

26.Liu, J. J., Duo, L., et al. Epidemiological characteristics of human rabies in China, 2017. Zhonghua Liu Xing Bing Xue Za Zhi 40, 526–530, https://doi.org/10.3760/cma.j.cn112338-20200116-00037 (2019).

27.Mbilo, C., Coetzer, A., et al. Dog rabies control in West and Central Africa: A review. Acta Tropica 224, 105459, https://doi.org/10.1016/j.actatropica.2020.105459 (2021).

28.Morters, M. K., Restif, O., et al. Evidence-based control of canine rabies: A critical review of population density reduction. Journal of Animal Ecology 82, 6–13 https://doi.org/10.1111/j.1365-2656.2012.02033 (2013).

29.Nadal, D., Beeching, S., et al. Rabies and the pandemic: Lessons for One Health. Transactions of the Royal Society of Tropical Medicine and Hygiene 116, 197–200, https://doi.org/10.1093/trstmh/trab123 (2022).

30.Nishizono, A., Khawplod, P., Ahmed, K., et al. A simple and rapid immunochromatographic test kit for rabies diagnosis. Microbiology and Immunology 52, 243–249,https://doi.org/10.1111/j.1348-0421.2008.00031 (2008).

31.Oude-Munnink, B. B., Farag, E. A. B. A., et al. First molecular analysis of rabies virus in Qatar. International Journal of Infectious Diseases 96, 323–326. https://doi.org/10.1016/j.ijid.2020.04.070 (2020).

32.Pal, S. K. Population ecology of free-ranging urban dogs in West Bengal, India. *Acta Theriologica* *46*(1), 69–78. https://doi.org/10.1007/BF03192418 ,(2001).

33.Subedi, D., Chandran, D., Subedi, S., & Acharya, K. P. Ecological and socioeconomic factors in the occurrence of rabies: A forgotten scenario. Infectious Disease Reports 14(6), 979–986 https://doi.org/10.3390/idr14060097, (2022).

34.Taylor, L. H., Wallace, R. M., Balaram, D., et al. The role of dog population management in rabies elimination—A review of current approaches and future opportunities. Frontiers in Veterinary Science 4, 109 https://doi.org/10.3389/fvets.2017.00109 (2017).

35.World Health Organization. Rabies Fact Sheet; Rabies in India (2022); Rabies in Africa (2023). World Health Organization https://www.who.int. (2018–2023).

36.World Organization for Animal Health (WOAH). [Online resource]. https://www.woah.org. (2018, updated 2024).

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2026-03-23

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