A Non-Living, Microbe-Based Surface Coating Promotes Tubeworm and Coral Settlement

A major barrier to scaling marine restoration and aquaculture is the lack of reliable tools to induce invertebrate larvae to settle and metamorphose when and where needed. Although microbial cues are known to induce metamorphosis in many invertebrates, existing methods rely on natural biofilms that are variable, difficult to standardize, and unsuitable for large-scale deployment. Here we introduce ReefTiles, a non-living bacterial coating that preserves inductive activity from metamorphosis-stimulating marine bacteria in a stable, reproducible format. Using both tubeworm and coral larvae, we show that dried and inactivated bacterial films retain full settlement-inducing capacity, matching or exceeding live biofilms while eliminating concerns associated with releasing viable microbes into the environment. Viability assays confirm inactivation, and the coating adheres reliably to common substrate materials. Because ReefTiles can be manufactured and stored at scale and tailored to different inductive strains, they provide a practical microbe-based biotechnology for enhancing larval settlement in reef restoration, sustainable aquaculture, and engineered marine infrastructure.

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Publication Details

Journal
Marine Biotechnology
Published
2026-09-10
DOI
https://doi.org/10.1007/s10126-026-10703-5
Primary Topic
Marine Biology and Environmental Chemistry
Type
article
Field-Weighted Citation Impact
0.00

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article

A Non-Living, Microbe-Based Surface Coating Promotes Tubeworm and Coral Settlement

Morgan V. Farrell, Felicity Kuek, Tiffany L. Dunbar, Paul A. O’Brien et al.
Marine Biotechnology
Marine Biology and Environmental Chemistry
article

A Non-Living, Microbe-Based Surface Coating Promotes Tubeworm and Coral Settlement

Morgan V. Farrell, Felicity Kuek, Tiffany L. Dunbar, Paul A. O’Brien, Laura Rix, Nicholas J. Shikuma, Shivani Mahesh
article en

Abstract

A major barrier to scaling marine restoration and aquaculture is the lack of reliable tools to induce invertebrate larvae to settle and metamorphose when and where needed. Although microbial cues are known to induce metamorphosis in many invertebrates, existing methods rely on natural biofilms that are variable, difficult to standardize, and unsuitable for large-scale deployment. Here we introduce ReefTiles, a non-living bacterial coating that preserves inductive activity from metamorphosis-stimulating marine bacteria in a stable, reproducible format. Using both tubeworm and coral larvae, we show that dried and inactivated bacterial films retain full settlement-inducing capacity, matching or exceeding live biofilms while eliminating concerns associated with releasing viable microbes into the environment. Viability assays confirm inactivation, and the coating adheres reliably to common substrate materials. Because ReefTiles can be manufactured and stored at scale and tailored to different inductive strains, they provide a practical microbe-based biotechnology for enhancing larval settlement in reef restoration, sustainable aquaculture, and engineered marine infrastructure.

Marine BiotechnologyVol. 28(5)
Australian Institute of Marine Science (AU), The University of Queensland (AU), San Diego State University (US)
National Science Foundation, Alfred P. Sloan Foundation, Gordon and Betty Moore Foundation, Achievement Rewards for College Scientists Foundation, Australian Government, National Institutes of Health, Council on Ocean Affairs Science and Technology, California State University, Office of Naval Research, National Institute of General Medical Sciences
Openalex Percentile: Top 28%
Marine Biology and Environmental Chemistry
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