Different fishing vessel-gear combinations confirm resource-use overlap in small-scale fisheries of south coast Kenya
DOI:
https://doi.org/10.48039/mjtum.v4i2.96Keywords:
Small-scale fisheries, Vessel-gear combinations, Resource-overlap, South coast KenyaAbstract
Fish consumption globally has increased due to the rise in human population making fisheries resources vulnerable to overexploitation. The open access fisheries in Kenya coupled with the multi-fleet, multi-gear and multi-species nature of the fisheries make its management more difficult. A closer observation into the scenario proves the existence of resource use overlap among different vessel-gear combinations. This study assessed the resource use overlap among different vessel-gear combinations for the multi-gear and multi-fleet small-scale fishery in selected fishing areas in south coast Kenya. We conducted shore-based catch assessment from January 2019 to December 2021covering both the cool south east monsoon (SEM) season and the warm north east monsoon (NEM) season at Mkunguni fish landing site in Msambweni area and Shimoni fish landing site in Shimoni area. The data was analyzed for total fish landings and species composition by vessel-gear combinations, as well as analyzed for resource-use overlap. A total weight of 52.32 tons of fish was recorded over the study period, and this was higher in the NEM season (26.52 tons) than in SEM season (25.32 tons). An overall total of 321 species in 88 fish families were sampled. Mkunguni recorded more species (n = 253) than Shimoni (n = 186) and species richness was significantly higher in Mkunguni than Shimoni (p = < 0.0001). The most effective and preferred vessel-gear combinations overall were footfisher-speargun and dhows-handline. Seasonal species diversity also indicated an overlap in resource-use where different vessel-gear combinations landed multiple species with the highest number of species recorded by gears used in combination with canoe being handline (120 ± 8 species) and basket trap (87 ± 6 species). Fishing gears used with dhows being handlines which recorded the highest mean number of species caught (73 ± 4 species) and gillnet (58 ±5 species). The observation made in the presence of similar fish species in different vessel-gear combinations that had been used in different fishing grounds is a clear indication of resource-use overlap in the small-scale fishery.
References
Agardy, T., Giuseppe, N., & Patrick, C. (2011). Mind the gap: Addressing the shortcomings of marine protected areas through large scale marine spatial planning. Marine Policy, 35: 226–232
Aloo, P.A., Munga, C.N., Kimani, E.N., & Ndegwa, S. (2014). A review of the status and potential of the coastal and marine fisheries resources in Kenya. International Journal of Marine Science: 4(24)
Anam, R., & Mostrada, E. (2012). Field identification guide to the living marine resources of Kenya. FAO Species Identification Guide for Fishery Purposes.
Aura, C.M., Nyamweya, C.S., Odoli, C., Owiti, H., Njiru, J.M., Otuo, P. W., Waithaka, E., & Malala, J.O. (2020). Consequences of calamities and their management: The case of COVID-19 pandemic and flooding on inland capture fisheries in Kenya. Journal of Great Lakes Research, 46(6): 1767–1775 https://doi.org/10.1016/j.jglr.2020.09.007
Cinner, J.E. (2009, December). Poverty and the use of destructive fishing gear near east African marine protected areas. Environmental Conservation, 36(4): 321-326. Retrieved from https://www.jstor.org/stable/44520029
County Government of Kwale (2019). Annual fisheries statistics. Fisheries Division.
Everett, J. D., Kloser, R. J., Suthers, I. M., & Richardson, A. J. (2017). Modeling what we sample and sampling what we model: Challenges for zooplankton model assessment. Frontiers in Marine Science, 4, 77. https://doi.org/10.3389/fmars.2017.00077
FAO. (2022). The State of World Fisheries and Aquaculture 2022 – Towards blue transformation.
Fondo, N.E. (2004). Assessment of the Kenyan Marine Fisheries from Selected Fishing Areas. UNU Fisheries Training Programme
Government of Kenya. (2016). Fisheries Management and Development Act. Laws of Kenya, Nairobi.
Jiddawi, N.S., & Öhman, M C. (2002). Marine Fisheries in Tanzania. AMBIO: A Journal of the Human Environment, 31(7): 518-527
Kamau, J.N., Jacobs, Z.L., Jebri, F., Kelly, S., Kimani, E., Makori, A., Mwaluma, J., Mueni, E., Ong’anda, H., Palmer, M. R., Popova, E., Roberts, M.J., Taylor, S. F., Wihsgott, J.U., & Painter, S.C. (2021). Managing emerging fisheries of the North Kenya Banks in the context of environmental change. Ocean & Coastal Management, 209: 105671. https://doi.org/10.1016/j.ocecoaman.2021.105671
Kawaka, J., Murunga, M., Manyala, J., Obura, D., & Maina, G.W. (2017). Developing locally managed marine areas: Lessons learnt from Kenya. Ocean & Coastal Management, 135: 1–10. https://doi.org/10.1016/j.ocecoaman.2016.10.013
Kimani, E.N., Okemwa, G.M., & Kazungu, J.M. (2009). Fisheries in the Southwest Indian Ocean: Trends and governance challenges. The Henry L. Stimson Center
Lieske, E., & Myers, R.F. (1996). Coral reef fishes: Indo-Pacific and Caribbean including the Red Sea. Princeton University Press
MacRae, P.S., & Jackson, D.A. (2001). The influence of smallmouth bass (Micropterus dolomieu) predation and habitat complexity on the structure of littoral zone fish assemblages. Canadian Journal of Fisheries and Aquatic Sciences, 58: 342–351
McClanahan, T.R., & Mangi, S. (2004). Gear-based management of a tropical artisanal fishery based on species selectivity and capture size. Fisheries Management and Ecology 11: 51-60
McClanahan, T.R., & Mangi, S. (2000). Spillover of exploitable fishes from a marine park and its effects on the adjacent Fishery. Ecology Society of America, 10(6),1792-1805. doi:https://doi.org/10.1890/1051-0761(2000)010[1792:SOEFFA]2.0.CO;2
Ministry of Mining, Blue Economy & Maritime Affairs. (2022). Marine Spatial Planning Framework for Kenya. State Department for the Blue Economy and Fisheries. Nairobi, Kenya
Munga, C.N., Omukota, J.O., Kimani, E.N., & Vanreusel, A. (2014). Propulsion-gear-based characterization of artisanal fisheries in the Malindi-Ungwana Bay, Kenya and its use for fisheries management. Ocean & Coastal Management, 98: 130-139
Mwakaribu, A., Munga, C.N, & Njihia, P. (2023). Seasonal variation in concentrations of selected minerals in four of the most retained marine fish species by small scale fishers in Vanga and Msambweni on the south coast of Kenya. Western Indian Ocean Journal of Marine Science, 22(2): 125–133. https://doi.org/10.4314/wiojms.v22i2.9
Mwaluma, J., Ngisiang’e, N., Osore, M., Kamau, J., Ong’anda, H., Kilonzi, J., Roberts, M., Popova, E., & Painter, S.C. (2021). Assemblage structure and distribution of fish larvae on the North Kenya Banks during the Southeast Monsoon season. Ocean & Coastal Management, 212: 105800. https://doi.org/10.1016/j.ocecoaman.2021.105800
Ndarathi, J., Munga, C.N, Hugé, J., & Dahdouh-Guebas, F. (2021). A socio-ecological system perspective on trade interactions within artisanal fisheries in coastal Kenya. Western Indian Ocean Journal of Marine Science, 19(2): 29–43 https://doi.org/10.4314/wiojms.v19i2.3
Ochiewo, J., Munyi, F., Waiyaki, E., Kimanga, F., Karani, N.J., Kamau, J., & Mahongo, S.B. (2021). Livelihood impacts and adaptation in fishing practices as a response to recent climatic changes in the upwelling region of the East African Coastal Current. Western Indian Ocean Journal of Marine Science, 1/2020:105–125 https://doi.org/10.4314/wiojms.si2020.1.10.
Okemwa, G.M., Kimani, E.N., & Mwangi, G.N. (2009). Suitability of selected coral species for culture in the ornamental aquarium trade. Western Indian Ocean Journal of Marine Science, 8(2): 219–228
Oliveira, J., Silva, L. P., Malhado, A.C., Batista, V.S., Fabré, N.N., & Ladle, R.J. (2016). Artisanal Fisheries Research: A Need for Globalization? PLOS ONE, 11(3) doi:10.1371/journal.pone.0150689
Pfeiler, E., Hurtado, L.A., Knowles, L.L., Torre-Cosío, J., Bourillón-Moreno, L., Márquez-Farías, J.F., & Montemayor-López, G. (2005). Population genetics of the swimming crab Callinectes bellicosus (Brachyura: Portunidae) from the eastern Pacific Ocean. Marine Biology,146:559–569. https://doi.org/10.1007/s00227-004-1463-y.
Pillans, S., Ortiz, J.C., Pillans, R.D. & Possingham, H.P. (2007). The impact of marine reserves on nekton diversity and community composition in subtropical eastern Australia. Biological Conservation 136: 455-469
Rousseau, Y., Watson, R.A., Blanchard, J.L., & Fulton, E.A. (2019). Defining global artisanal fisheries. Marine Policy, 108. doi: https://doi.org/10.1016/j.marpol.2019.103634
Samoilys, M.A , Maina G.W, & Osuka, K. (2011). Artisanal fishing gears of the Kenyan coast. Mombasa: CORDIO/USAID
Samoilys M.A., Osuka, K., Maina, G.W., & Obura, D.O. (2017). Artisanal fisheries on Kenya’s coral reefs: Decadal trends reveal management needs. Fisheries Research, 186: 177–191
Smith, M.M., & Heemstra, P.C. (eds.). (1986). Smiths’ sea fishes. Springer-Verlag. https://doi.org/10.1007/978-3-642-82858-4.
Van der Elst, R. (2009). Fisheries and Marine Biodiversity in the WIO Region. In UNEP/Nairobi Convention Secretariat, Strategic Action Programme for the Protection of the Coastal and Marine Environment of the Western Indian Ocean from Land-based Sources and Activities. Nairobi, Kenya: United Nations Environment Programme
Wisz, M.S., Hijmans, R.J., Li, J., Peterson, A.T., Graham, C.H., Guisan, A., & NCEAS (2008). Predicting Species Distributions Working Group. Effects of sample size on the performance of species distribution models. Diversity and Distributions, 18: 763–773
Downloads
Published
Issue
Section
License
Copyright (c) 2025 Bandari Samuel , Munga Cosmas Nzaka, Dzoga Mumini

This work is licensed under a Creative Commons Attribution 4.0 International License.


