Abstract
AbstractUnderstanding the drivers of food web community structure is a fundamental goal in ecology. While studies indicate that many coral reef predators depend on pelagic subsidies, the mechanism through which this occurs remains elusive. As many of these species are important fishery targets, a better understanding of their trophodynamics is needed. To address these gaps, we employed a comprehensive structural equation modelling approach using extensive surveys of the reef community to explore relationships between groupers and snappers, their prey, and the surrounding habitat in an oceanic coral reef system. There were significant positive relationships between site-attached and transient planktivores and grouper and snapper biomass, respectively, indicating that pelagic subsidies are transferred to upper trophic levels through planktivores. Contrary to previous studies, habitat complexity and depth were not important for predators or prey. Instead, corallivores and site-attached and transient planktivores were primarily associated with live habitat and coral cover. This indicates that a decline in coral cover could have severe direct and indirect impacts on the structure and functioning of multiple levels of the reef food web. While pelagic reliance may suggest that predators are resilient to bleaching-related habitat loss, the associations of their planktivorous prey with live coral suggest that both benthic and pelagic pathways should be preserved for continued resilience of these food webs and their fisheries. By considering direct and indirect relationships, our study generated insights not only on the complex dynamics of coral reef ecosystems, but also on how they may respond to environmental change.
Funder
Faculty of Science, Agriculture and Engineering, Newcastle University
Banyan Tree Global Holdings
The University of Queensland
Publisher
Springer Science and Business Media LLC
Reference108 articles.
1. Ali MKH, Belluscio A, Ventura D, Ardizzone G (2016) Feeding ecology of some fish species occurring in artisanal fishery of Socotra Island (Yemen). Mar Pollut Bull 105:613–628
2. Allain V, Fernandez E, Hoyle S, Caillot S, Jurado-Molina J, Andrefouet S, Nicol S (2012) Interaction between coastal and oceanic ecosystems of the western and central Pacific Ocean through predator- prey relationship studies. PLoS ONE 7:e36701
3. Anderson RC (1997) The Maldivian tuna livebait fishery–status and trends. In: Nickerson DJ, Maniku MH (eds) Report and Proceedings of the Maldives/FAO National Workshop on Integrated Reef Resources Management in the Maldives March 1996 BOBP/REP/76; , Malé, Maldives: BOBP/REP/76 p. 69–92.
4. Asher J, Williams ID, Harvey ES (2017) An assessment of mobile predator populations along shallow and mesophotic depth gradients in the Hawaiian Archipelago. Sci Rep 7:3905
5. Bacheler NM, Shertzer KW, Runde BJ, Rudershausen PJ, Buckel JA (2021) Environmental conditions, diel period, and fish size influence the horizontal and vertical movements of red snapper. Sci Rep 11:9580