Threat of Fast-Growing Corallimopharian to Health of Corals Reef at Bawe and Changuu Islands, Zanzibar

Authors

Salum Nassor Simba

Department of Natural Science, the State University of Zanzibar, Tanzania. P.O. Box 146, Zanzibar (Tanzania)

Mohammed Suleiman Mohammed

Department of Natural Science, the State University of Zanzibar, Tanzania. P.O. Box 146, Zanzibar (Tanzania)

Article Information

DOI: 10.47772/IJRISS.2026.100300520

Subject Category: Sustainability

Volume/Issue: 10/3 | Page No: 7107-7117

Publication Timeline

Submitted: 2026-03-28

Accepted: 2026-04-03

Published: 2026-04-15

Abstract

Coral reefs globally face degradation from anthropogenic stressors, often shifting toward dominance by non-reef building organisms like Corallimorpharia. This study investigated 0distribution and competitive dynamics on the reefs of Bawe and Changuu Islands, Zanzibar, which experience differing human pressures. Benthic surveys using line intercept transects were conducted across reef zones in December 2023 and January 2024. Results showed hard coral dominance at both sites (Bawe: 62.1%; Changuu: 58.3%), with Porites as the predominant genus. Corallimorpharia cover was statistically similar between sites (Bawe: 12.4%; Changuu: 12.1%; p=0.45), with four species recorded: Discosoma rhodostoma, D. nummiforme, D. unguja, and Ricordea yuma. Spatial adjacency modeling revealed Corallimorpharia as disproportionately aggressive competitors, engaging in 34-37% of competitive encounters despite moderate cover. Direct contact with Corallimorpharia caused visible coral tissue mortality and bleaching. Correlation analysis identified Physogyra and Plerogyra as particularly vulnerable genera. Changuu exhibited significantly higher macroalgae cover (p = 0.0109), adding competitive pressure absent at Bawe. Although Corallimorpharia do not currently dominate these reefs, their persistent presence and competitive impacts on scleractinian corals suggest increasing pressure on reef-building communities. Management of land-based pollution and long-term monitoring are essential to prevent potential coral–Corallimorpharia phase shifts.

Keywords

Corallimorpharia, coral competition, reef health

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References

1. Bruno, J.F., Sweatman, H., Precht, W.F., Selig, E.R. and Schutte, V.G., 2009. Assessing evidence of phase shifts from coral to macroalgal dominance on coral reefs. Ecology, 90(6), pp.1478-1484 .doi: 10.1890/08-1781.1. [Google Scholar] [Crossref]

2. Chadwick, N. E., & Adams, C. (1991). Locomotion, asexual reproduction, and killing of corals by the Corallimorpharia Corynactis californica. Hydrobiologia, 216(1), 263-269. [Google Scholar] [Crossref]

3. Chadwick, N.E. and Morrow, K.M., 2010. Competition among sessile organisms on coral reefs. In Coral reefs: an ecosystem in transition (pp. 347-371). Dordrecht: Springer Netherlands. doi: 10.1007/978-94-007-0114-4. [Google Scholar] [Crossref]

4. Elliff, C. I., & Silva, I. R. (2017). Coral reefs as the first line of defense: Shoreline protection in face of climate change. Marine environmental research, 127, 148-154 [Google Scholar] [Crossref]

5. Fautin, D. G., Guinotte, J. M., & Orr, J. C. (2009). Comparative depth distribution of Corallimorpharia and scleractinians (Cnidaria: Anthozoa). Marine Ecology Progress Series, 397, 63-70 [Google Scholar] [Crossref]

6. Kuguru, B. L., Mgaya, Y. D., Öhman, M. C., & Wagner, G. M. (2004). The reef environment and competitive success in the Corallimorpharia. Marine Biology, 145(5), 875-884 [Google Scholar] [Crossref]

7. Kuguru, B., Winters, G., Beer, S., Santos, S.R. and Chadwick, N.E., 2007. Adaptation strategies of the Corallimorpharia Rhodactis rhodostoma to irradiance and temperature. Marine Biology, 151(4), pp.1287-1298. doi: 10.1007/s00227-006-0589-5. [Google Scholar] [Crossref]

8. Kuguru, B., Chadwick, N.E., Achituv, Y., Zandbank, K. and Tchernov, D., 2008. Mechanisms of habitat segregation between Corallimorpharia: photosynthetic parameters and Symbiodinium types. Marine Ecology Progress Series, 369, pp.115-129. doi: 10.3354/meps07651. [Google Scholar] [Crossref]

9. Kuguru, B., Fine, M. and Tchernov, D.,2012. The Photo-Physiological Response of Symbionts to Combined Effects of Temperature and pH in a Non-Calcifying Corallimorpharia, Rhodactis Rhodostoma [Google Scholar] [Crossref]

10. Harrison, P. L., & Booth, D. J. (2007). Coral reefs: naturally dynamic and increasingly disturbed ecosystems. Marine ecology, 316-377 [Google Scholar] [Crossref]

11. Hoegh-Guldberg, O. (2011). Coral reef ecosystems and anthropogenic climate change. Regional Environmental Change, 11(Suppl 1), 215-227. [Google Scholar] [Crossref]

12. Imran, M., Butt, M. A., Batool, I., Kanwal, S., Zeb, H., & Majeed, A. (2025). Ecological and socioeconomic consequences of coral reef degradation. Kashf Journal of Multidisciplinary Research, 2(12), 1-42 [Google Scholar] [Crossref]

13. Levenbach, S., 2008. Behavioral mechanism for an associational refuge for macroalgae on temperate reefs. Marine Ecology Progress Series, 370, pp.45-52. doi: 10.3354/meps07568. [Google Scholar] [Crossref]

14. Muhando, C. A., Kuguru, B. L., Wagner, G. M., Mbije, N. E., & Öhman, M. C. (2002). Environmental effects on the distribution of Corallimorpharia in Tanzania. AMBIO: A Journal of the Human Environment, 31(7), 558-561 [Google Scholar] [Crossref]

15. Muhando, C. A., Kuguru, B. L., Wagner, G.M. , Mbije, N. E. and Ohman, M.C. 2021. “Environmental Effects on the Distribution of Corallimorpharia in Tanzania Environmental Effects on the Distribution of Corallimorpharia in Tanzania.”31:558–61 [Google Scholar] [Crossref]

16. Parr, N. D. (2019). Environmental tolerance and reproduction of Florida false corals Ricordea florida (Anthozoa: Corallimorpharia): Implications for ornamental fisheries management (Doctoral dissertation, Auburn University). [Google Scholar] [Crossref]

17. Reverter, M., Helber, S. B., Rohde, S., de Goeij, J. M., & Schupp, P. J. (2024). Drivers of coral reef benthic changes and implications on ecosystem functioning and services. In Oceanography and Marine Biology (pp. 215-247). CRC Press. [Google Scholar] [Crossref]

18. Sebens, K. P. (1994). Biodiversity of coral reefs: what are we losing and why?. American zoologist, 34(1), 115-133. [Google Scholar] [Crossref]

19. Simba, S. N. (2026) Nutrient-driven macroalgae proliferation on coral reefs: Assessing the resilience of coral communities at Bawe and Changuu Islands, Zanzibar. International Journal For Multidisciplinary Research, 8(1), 1–9. doi.org/10.36948/ijfmr.2026.v08i01.68618 [Google Scholar] [Crossref]

20. Vroom, P. (2016). Regeneration in Corallimorpharia (Doctoral dissertation, University of Guelph). [Google Scholar] [Crossref]

21. Wall, M., Putchim, L., Schmidt, G.M., Jantzen, C., Khokiattiwong, S. and Richter, C., 2015. Large-amplitude internal waves benefit corals during thermal stress. Proceedings of the Royal Society B: Biological Sciences, 282(1799), p.20140650 [Google Scholar] [Crossref]

22. Work, T.M., Aeby, G.S. and Maragos, J.E., 2008. Phase shift from a coral to a corallimorph-dominated reef associated with a shipwreck on Palmyra Atoll. PLoS one, 3(8), p.e2989. doi: 10.1371/journal.pone.0002989. [Google Scholar] [Crossref]

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