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Assessing the Population Parameters of Karumballichirus karumba (Poore and Griffin, 1979) from Intertidal Zone of Madura Strait
Corresponding Author(s) : Abdul Qadir Jailani
Jurnal Ilmiah Perikanan dan Kelautan, 2025: IN PRESS ISSUE (JUST ACCEPTED MANUSCRIPT, 2025)
Abstract
Graphical Abstract
Highlight Research
- The Linf CL value in male karumba was 44.21 mm and female was 42.8 mm, with negative allometric growth.
- The theoretical maximum lifespan (Tmax) of individual karumba, estimated using the VBGF, was 4 to 6 years. The growth coefficient (K) K. karumba is considered quite slow between 0.5-0.9 per year.
- The exploitation value of karumba is considered vulnerable at this time so that there is a need for management in terms of capture.
- The results show that recruitment occurs almost every month. Estimated peak recruitment of karumba is around November and January.
Abstract
This study provides the first information on the population parameters of Karumballichirus karumba. A total of 902 K. karumba samples were collected, consisted of 412 males and 490 females. The von Bertalanffy parameters were estimated to have asymptotic length L∞ (mm): male = 44.21, female = 42.8, and pooled = 44, negative allometric condition factor, growth rate K (/years): male = 0.58, female = 0.67, and pooled = 0.9. Growth performance index (ϕ') : male = 3.05, female = 3.08, and pooled = 3.24. The natural mortality rate M (/years): male =0.7, female = 0.8, and pooled = 1, and shrimp mortality rate F (/years): male = 1.57, female = 2.89, and pooled = 3.12. The current exploitation rate is slightly higher than optimal exploitation rate = 0.5, indicating that there is a need to regulate fishing so that it is sustainable. The size of the first time caught is still below (1/2 Linf); thus, the reproductive opportunities of K. karumba are guaranteed, and in terms of utilization, fall into the category of sustainable fishing. The estimated life span of K. karumba is 4 to 6 years. Reproduction occurs continuously every month, indicated by the discovery of ovigerous females. The highest recruitment occurs in January and November. YPR (yield-per-recruitment) shows that the value of Fcur = 3.12 years⁻¹ in the estimated population is lower than Fmax = 5 years⁻¹ and above F05 = 1.99 years⁻¹ and F01 = 1.8 years⁻¹.
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References
Anato, C. B. (1999). Les Sparidae des côtes béninoises: Milieu de vie, pêche, présentation des espèces et biologie de Dentex angolensis Poll et Maul, 1953. Thèse de Doctorat d’Etat es Sciences. Tunisie: Faculté des Sciences de Tunis.
Asrial, E., Rosadi, E., Hamid, Ichsan, M., Khasanah, R. I., Sulystyaningsih, N. D., Sumiwi, A. D., & Khalisah, N. (2020). Growth and population parameters of Panulirus penicillatus and Panulirus homarusin Labangka Tidal Waters, Indonesia. Jurnal Ilmiah Perikanan dan Kelautan, 12(2):214-223.
Asson, D., Chapman, J., & Dumbauld, B. (2017). No evidence that the introduced parasite Orthione griffenis Markham, 2004 causes sex change or differential mortality in the native mud shrimp, Upogebia pugettensis (Dana, 1852). Aquatic Invasions, 12(2):213-224.
Baldwin, A. P., & Bauer, R. T. (2002). Growth, survivorship, life-span, and sex change in the hermaphroditic shrimp Lysmata wurdemanni (Decapoda: Caridea: Hippolytidae). Marine Biology, 143(1):157-166.
Calbet, A. (2024). The wonders of marine plankton. Springer Cham. ISBN 978-3-031-50765-6. ISBN 978-3-031-50766-3 (eBook).
Carlton, J. T., Geller, J. B., Reaka-Kudla, M. L., & Norse, E. A. (1999). Historical extinctions in the sea. Annual Review of Ecology and Systematics, 30(1):515-538.
Clovis, H. I. A., & Simon, A. M. (2024). Understanding overfishing: A literature review. Asian Journal of Fisheries and Aquatic Research, 26(1):61-71.
Crona, B. I., Wassenius, E., Jonell, M., Koehn, J. Z., Short, R., Tigchelaar, M., Daw, T. M., Golden, C. D., Gephart, J. A., Allison, E. H., Bush, S. R., Cao, L., Cheung, W. W. L, DeClerck, F., Fanzo, J., Gelcich, S., Kishore, A., Halpern, B. S., Hicks, C. C., Leape, J. P., Little, D. C., Micheli, F., Naylor, R. L., Phillips, M., Selig, E. R., Springmann, M., Sumaila, U. R., Troell, M., Thilsted, S. H., & Wabnitz, C. C. C. (2023). Four ways blue foods can help achieve food system ambitions across nations. Nature, 616(1):104-112.
Delgado, L. C., Wada, N., Rosegrant, W. M., Meijer, S. & Ahmed, M. (2003). Fish to 2020: Supply and demand in changing global markets. Washington, DC: International Food Policy Research Institute and Penang, Malaysia: WorldFish Center.
Duarte, C. M., Agustí, S., Barbier, E., Britten, G. L., Castilla, J. C., Gattuso, J. P., Fulweiler, R. W., Hughes, T. P., Knowlton, N., Lovelock, C. E., Lotze, H. K., Predragovic, M., Poloczanska, E., Roberts, C., & Worm, B. (2020). Rebuilding marine life. Nature, 580(1):39-51.
Dumbauld, B. R., Chapman, J. W., & Torchin, M. E. (2011). Is the collapse of mud shrimp (Upogebia pugettensis) populations along the Pacific Coast of North America caused by outbreaks of a previously unknown bopyrid isopod parasite (Orthione griffenis)? Estuaries and Coasts, 34(1):336-350.
Dworschak, P. C. (2008). Neocallichirus kempi Sakai, 1999, a junior synonym of Callianassa karumba Poore & Griffin, 1979 (Decapoda: Callianassidae). The Raffles Bulletin of Zoology, 56(1):75-84.
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Hidayah, Z., Nuzula, N. I., & Wiyanto, D. B. (2020). Analysis of the sustainability of fisheries resource management in the waters of the Madura Strait, East Java. Jurnal Perikanan, 22(2):101-111.
Kim, S. T., Cheol, Y., Chae-Lin, L., Sukhyun N., & Jae-Sang, H. (2023). Population characteristics of the mud shrimp Upogebia major (De Haan, 1841) (Decapoda: Gebiidea: Upogebiidae) on Korean Tidal Flats in the Eastern Yellow Sea. Journal of Marine Science and Engineering, 11(12):1-26.
Kinoshita, K. (2009). Burrow structure and life-history characteristics of the mud shrimp, Upogebia major (Decapoda: Thallasinidea: Upogebiidea). Journal of Crustacean Biology, 22:474-480. Nagasaki University: Nagasaki, Japan,; Volume 24, pp. 7–13.
Kinoshita, K., Nakayama, S., & Furota, T. (2003). Life cycle characteristics of the deep-burrowing mud shrimp Upogebia major (Thalassinidea: Upogebiidae) on a tidal flat along the Northern Coast of Tokyo Bay. Journal of Crustacean. Biology, 23(2):318-327.
Kennelly, S. J., & Broadhurst, M. K. (2021). A review of bycatch reduction in demersal fish trawls. Reviews Fish Biology and Fisheries 31(1):289-18.
Kristiani, Herawati E. Y, & Yahuhar U. (2016). The analysis of hepatopancreas histologycal damage in Neocallichirus karumba (Poore and Griffin) shrimp caused by heavy metal Pb exposure in Madura Strait. The Journal of Experimental Life Science, 6(1):1-6.
Melnychuk, M. C., Kurota, H., Mace, P. M., Pons, M., Minto, C., Osio, G. C., Jensen, O. P., de Moor, C. L., Parma, A. M., Little, L. R., Hively, D. Ashbrook, C. E., Baker, N., Amoroso, R. O., Branch, T. A., Anderson, C. M., Szuwalski, C. S., Baum, J. K., McClanahan, T. R., Ye, Y., Ligas, A., Bensbai, J., Thompson, G. G., Devore, J., Magnusson, A., Bogstad, B., Wort, E., Rice, J., & Hilborn, R. (2021). Identifying management actions that promote sustainable fisheries. Nature Sustainability, 4(1):440-449.
Mora-Lara, C. O. (1973). Biology and fishery of the 'Titi' shrimp Xiphopenaeus Riveti on the Pacific Coast of Colombia, South America (Doctoral dissertation) Memorial University of Newfoundland.
Pauly, D. (1979). Theory and management of tropical multi-species stocks. A review, with emphasis on the Southeast Asian demersal fisheries. Manila, Philippines: ICLARM, International Center for Living Aquatic Resources Management.
Pauly, D. (1984). Some simple methods for the assessment of tropical fish stock, Rome: FAO.
Pauly, D. (1987). A review of the ELEFAN system for analysis of length-frequency data in fish and aquatic invertebrates. In D. Pauly, and G. R. Morgan (Eds.), Length-based methods in fisheries research. (pp. 7-34). Manila, Philippines: ICLARM Conference Proceedings 13, International Center for Living Aquatic Resources Management.
Pauly, D., & David, W. (1981). ELEFAN 1, Basic program for the objective extraction of growth parameters from length- frequency data. Report on Marine Science, 28(4):205-211.
Pauly, D., & Munro, J. L. (1984). Once more on the comparison of growth in fish and invertebrates. ICLARM Fishbyte, 2(1):1-21.
Poore, G. C. B., Dworschak, P. C., Robles, R., Mantelatto, F., & Felder, D. L. (2019). A new classification of Callianassidae and related families (Crustacea: Decapoda: Axiidea) derived from a molecular phylogeny with morphological support. Memoirs of Museum Victoria, 78(1):73-146.
Poore, G. C. B. & Griffin, D. J. G. (1979). The thalassinidea (Crustacea: Decapoda) of Australia. Records of the Australian Museum, 32(6):217-321.
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