Opportunistic diver-assisted eDNA sampling unpicks fine-scale ecological and conservation signals in tropical reef fishes
Coral reefs are emblematic ecosystems of astonishing biological diversity and significant economic value for many countries, yet they are increasingly vulnerable to direct and indirect human-related threats, such as heavy tourism and global warming. To assess the biodiversity status, track assemblage changes and forecast future trends of these megadiverse ecosystems, there is pressing need for accurate, rapid and comprehensive assessments of fish communities. Here, we employed a versatile low-tech passive environmental DNA collector, the metaprobe, in association with the recreational activity of scuba divers to collect eDNA data from reefs in the Seychelles archipelago and assess both the taxonomic and functional fish diversity of the area. Using a fish-specific 12S marker on eDNA metaprobe samples collected during 18 dives, we detected 174 fish taxa, eight elasmobranchs and 166 teleosts, corresponding to 112 unique functional entities and including iconic tropical reef taxa, endangered elasmobranchs and commercially valuable species. Despite the geographic proximity of dive sites, we identified ecological patterns of fish composition and community structure influenced by both the presence of marine protected areas (MPAs) and the type of predominant substrate (i.e., coral vs rocky). Ecological differences between MPA/non-MPA and coral/rocky habitats involved both taxonomic and functional community elements, which returned very similar patterns of significantly higher fish diversity in protected and coral areas. We argue that simple, inexpensive eDNA-based collection tools in association with recreational activities, such as scuba diving, provide a promising approach for upscaling ecological data collection and expanding biodiversity monitoring, while engaging and empowering the public.