
Want to see for yourself? Our findings are linked in the publications below.
Algal supplements in formulated feeds: Effects on sea urchin gonad quality.
Warren-Myers, F., Swearer, S. E., Francis, D. S., Turchini, G. M., Overton, K., Dempster, T. (2022). Aquaculture.
The balancing act: Protein, lipid and seaweed dietary levels to maximize gonad quantity in a wild-caught sea urchin.
Warren-Myers, F., Turchini, G. M., Swearer, S. E., Francis, D. and Dempster, T. (2021). Aquaculture Nutrition.
Boosting the productivity of sea urchin aquaculture using advanced culture protocols and dietary interventions.
Mos, B., & Dworjanyn, S. A. (2020). AgriFutures Australia Project Report.
Effects of low and high pH on sea urchin settlement, implications for the use of alkali to counter the impacts of acidification.
Mos, B., Byrne, M., & Dworjanyn, S. A. (2020). Aquaculture.
Stocking density and rearing environment affect external condition, gonad quantity and gonad grade in onshore sea urchin roe enhancement aquaculture.
Warren-Myers, F., Swearer, S. E., Overton, K., & Dempster, T. (2020). Aquaculture.
Solving key industry bottlenecks for sea urchin roe enhancement.
Warren-Myers, F., Swearer, S. E., Francis, D. S., Turchini, G. M., & Dempster, T. (2019). AgriFutures Australia Project Report.
Harvest method does not affect survival and condition during gonad enhancement of an overabundant sea urchin.
Warren-Myers, F., Swearer, S. E., Francis, D. S., Turchini, G. M., & Dempster, T. (2019). Aquaculture Environment Interactions.
Ready to harvest? Spine colour predicts gonad index and gonad colour rating of a commercially important sea urchin.
Mos, B., & Dworjanyn, S. A. (2019). Aquaculture.
Barrens of gold: gonad conditioning of an overabundant sea urchin.
Pert, C., Swearer, S., Dworjanyn, S., Turchini, G., Francis, D., & Dempster, T. (2018). Aquaculture Environment Interactions.
Aquaculture-derived trophic subsidy boosts populations of an ecosystem engineer.
White, C. A., Bannister, R. J., Dworjanyn, S. A., Husa, V., Nichols, P. D., & Dempster, T. (2018). Aquaculture Environment Interactions.
Consumption of aquaculture waste affects the fatty acid metabolism of a benthic invertebrate.
White, C. A., Bannister, R. J., Dworjanyn, S. A., Husa, V., Nichols, P. D., Kutti, T., & Dempster, T. (2017). Science of The Total Environment.
Biogenic acidification reduces sea urchin gonad growth and increases susceptibility of aquaculture to ocean acidification.
Mos, B., Byrne, M., & Dworjanyn, S. A. (2016). Marine Environmental Research.
Future aquafeeds may compromise reproductive fitness in a marine invertebrate.
White, C. A., Dworjanyn, S. A., Nichols, P. D., Mos, B., & Dempster, T. (2016). Marine Environmental Research.
Early metamorphosis is costly and avoided by young, but physiologically competent, marine larvae.
Mos, B., & Dworjanyn, S. A. (2016). Marine Ecology Progress Series.
Biogenic acidification drives density-dependent growth of a calcifying invertebrate in culture.
Mos, B., Byrne, M., Cowden, K. L., & Dworjanyn, S. A. (2015). Marine Biology.
Feeding preference and performance in the tropical sea urchin Tripneustes gratilla.
Seymour, S., Paul, N. A., Dworjanyn, S. A., & de Nys, R. (2013). Aquaculture.
Potential for the commercial culture of the tropical sea urchin Tripneustes gratilla in Australia.
Mos, B., Cowden, K., & Dworjanyn, S. A. (2012). RIRDC Report.
Do cues matter? Highly inductive settlement cues don’t ensure high post-settlement survival in sea urchin aquaculture.
Mos, B., Cowden, K. L., Nielsen, S. J., & Dworjanyn, S. A. (2011). PLoS One.
Induction of settlement in the sea urchin Tripneustes gratilla by macroalgae, biofilms and conspecifics: A role for bacteria?
Dworjanyn, S. A., & Pirozzi, I. (2008). Aquaculture.
The effect of the addition of algae feeding stimulants to artificial diets for the sea urchin Tripneustes gratilla.
Dworjanyn, S. A., Pirozzi, I., & Liu, W. (2007). Aquaculture.
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