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Biology subjects

Badder, L.

Publications and source records attributed to Badder, L..

2 recordsLinked to original sources

Coral Guard substrates accelerate growth and fragment fusion for coral restoration

Coral reefs are declining globally, creating an urgent need for scalable technologies that improve the efficiency and effectiveness of active reef restoration. Coral reef restoration is increasingly constrained by algal overgrowth, which suppresses coral growth, survival, and restoration efficiency. Building on the recently developed Coral Guard platform, we evaluate its restoration performance under long-term in situ coral nursery conditions and introduce Fusion Guard Tiles, a geometry-optimized Coral Guard design that accelerates microfragment fusion. We evaluated Coral Guard Plugs using the branching coral Stylophora pistillata under complementary ex situ conditions and Fusion Guard Tiles using the massive reef-building coral Porites evermanni in in situ coral nurseries. In P. evermanni, Fusion Guard Tiles increased lateral tissue growth 2.6-fold and three-dimensional tissue surface area growth by >2.7-fold after 6 months compared with conventional substrates. After 12 months, colony height and volume were approximately 4.0-fold and 2.2-fold greater, respectively, while complete fragment fusion occurred only on Fusion Guard Tiles. In S. pistillata, Coral Guard Plugs increased lateral tissue growth by [~]1.7-fold. Microcomputed tomography revealed 10-13% higher skeletal density in both species. In P. evermanni, Fusion Guard Tiles also increased symbiont density by 70% and tissue protein content by [~]2.5-fold relative to controls. Together, these findings demonstrate that Coral Guard substrates suppress algal competition while accelerating coral growth, skeletal development, and microfragment fusion, providing a scalable, low-maintenance technology to enhance coral nursery productivity and reef restoration.

bioengineering↗

Advancing coral micropropagation for coral restoration and reef engineering

In the face of escalating threats posed by human-induced climate change, urgent attention to coral reef restoration is imperative due to ongoing reef degradation. Here, we explored the potential of generating coral micropropagates as a tool to rapidly generate coral tissue for reef restoration and reef engineering. We developed a hypersalinity-induced polyp bailout protocol and a simple attachment device to support the growth of micropropagates on commonly used restoration substrates. We found that hypersalinity induction, at a rate of < 1 ppt hr-1, produced healthy micropropagates of the coral Stylophora pistillata. The highest attachment success ([~]74%) was achieved in CaCO3 substrate devices, which outperformed PVC ([~]5%) and Portland cement ([~]48%). Settled micropropagates displayed rapid growth rates on both CaCO3 (0.037 mm2/day {+/-} 0.002 SE) and PVC (0.057 mm2/day {+/-} 0.008 SE) substrates, while Portland cement induced tissue degradation. Our study provides a detailed methodology for reliably generating, attaching, and growing coral micropropagates and underscores the potential of polyp bailout as a viable technique supporting coral restoration and reef engineering efforts.

physiology↗