Evaluating Biodiversity for Coral Reef Reformation and Monitoring on Complex 3D Structures Using Environmental DNA (eDNA) Metabarcoding
Overview
Authors
Affiliations
Quantifying coral reef biodiversity is challenging for cryptofauna and organisms in early life stages. We demonstrate the utility of eDNA metabarcoding as a tool for comprehensively evaluating invertebrate communities on complex 3D structures for reef reformation, and the role these structures play in provisioning habitat for organisms. 3D design and printing were used to create 18 complex tiles, which were used to form artificial reef structures. eDNA was collected from scraping tile surfaces for organismal biomass and from seawater samples around the artificial reefs in the Gulf of Eilat/Aqaba, Red Sea. Metabarcoding targeted the mitochondrial COI gene with specific primers for marine biodiversity. We provide the first eDNA biodiversity baseline for the Gulf of Eilat/Aqaba, capturing extensive information on species abundance, richness, and diversity. Tile tops had higher phylogenetic diversity and richness, despite a higher abundance of organisms on tile bottoms, highlighting the detection of cryptic organisms with eDNA. We recommend eDNA metabarcoding for reef restoration initiatives, especially for complex marine structures, to improve success and evaluation of biodiversity.
Ecosystem transplant from a healthy reef boosts coral health at a degraded reef.
Levy N, Marques J, Simon-Blecher N, Bourne D, Doniger T, Benichou J Nat Commun. 2024; 15(1):10033.
PMID: 39562544 PMC: 11577037. DOI: 10.1038/s41467-024-54149-6.
North Atlantic deep-sea benthic biodiversity unveiled through sponge natural sampler DNA.
Gallego R, Arias M, Corral-Lou A, Diez-Vives C, Neave E, Wang C Commun Biol. 2024; 7(1):1015.
PMID: 39160260 PMC: 11333605. DOI: 10.1038/s42003-024-06695-4.
Ecosystem restoration, regeneration and rewilding.
Shackelford N, McDougall C BMC Ecol Evol. 2023; 23(1):52.
PMID: 37710145 PMC: 10500817. DOI: 10.1186/s12862-023-02165-3.