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Corley, A.

Publications and source records attributed to Corley, A..

2 recordsLinked to original sources

Autonomous Reef Monitoring Structures (ARMS) Reveal Human-Induced Biodiversity Shifts in Urban Coastal Ecosystems

Biodiversity thrives in coastal marine habitats which host foundational species such as corals, mangroves, and seagrasses. However, coastal development and the growth of megacities along shorelines impose an array of stressors on the marine environment. These stressors inevitably impact biodiversity which dictates ecosystem functions and services. Despite extensive research on biodiversity responses to anthropogenic stressors, phylum-specific resistance and resilience dynamics - particularly in coastal marine ecosystems - remain poorly understood. Considering the global scale of coastal development, it is imperative to develop a more comprehensive understanding of how biodiversity, in terms of richness and community composition, is influenced by various anthropogenic stressors. Here, we present the first application of standardized Autonomous Reef Monitoring Structures (ARMS) as an experimental unit - using a common garden experimental design - to examine community responses to stress within an urbanized seascape. ARMS were seeded within two marine reserves for one year and then transplanted to sites of stress, including domestic sewage, and mariculture. We hypothesized that 1) human impacts reduce richness and alter composition of established communities; and 2) increasing intensity of these impacts reduces community resistance and resilience to stress. Using metabarcoding, we quantified richness and taxonomic composition and assessed their changes along an impact gradient. Our results showed that nutrient pollution, particularly inorganic nitrogen, significantly reduced species richness and restructured communities. Communities exhibited low resistance, yet high resilience - suggesting that urbanized seascapes have high recovery potential when stress is mitigated.

ecology↗

Assessing the Effectiveness of 3D-Printed Ceramic Structures for Coral Restoration: Growth, Survivorship, and Biodiversity Using Visual Surveys and eDNA

Coral reef degradation has spurred the development of artificial structures to mitigate losses in coral cover. These structures serve as substrates for coral transplantation, with the expectation that growing corals will attract reef-associated taxa -- while the substrates ability to directly support biodiversity is often neglected. We evaluated a novel 3D-printed modular tile made of porous terra cotta, designed with complex surface structures to enhance micro- and cryptic biodiversity, through a restoration project in Hong Kong. Over four years, we monitored 378 outplanted coral fragments using diver assessments and photography, while biodiversity changes were assessed through visual surveys and eDNA metabarcoding. Coral survivorship was high, with 88% of transplants surviving by the studys end. The restoration site exhibited greater fish and macroinvertebrate abundance compared to a nearby unrestored area. eDNA analyses revealed 23.5% higher eukaryote ASV richness at the restoration site than the unrestored site and a 13.3% increase relative to a natural reference coral community. This study highlights the tiles dual functionality: (1) supporting coral growth and (2) enhancing cryptic biodiversity, an aspect often neglected in traditional reef restoration efforts. Our findings underscore the potential of 3D-printed ceramic structures to improve both coral restoration outcomes and broader reef ecosystem recovery.

ecology↗