Publications
Goodrich, H. R., Amoroso, G., Jim, N., Canepa, M., Clark, T. D., Rands, L., & Carter, C. G. (2026). Gut phenotype is associated with superior growth performance in Atlantic salmon (Salmo salar) following exposure and recovery from warming and hypoxia. Aquaculture, 612, 743135. https://doi.org/10.1016/j.aquaculture.2025.743135
Goodrich, H. R., Rossiter-Hill, F., Audzijonyte, A., Wolfe, B. W., Breslin, R., & Tracey, S. R. (2026). Phenotypic divergence of sand flathead (Platycephalus bassensis) between heavily and lightly fished regions in Tasmania, Australia. Conservation Physiology, 14(1), coag001. https://doi.org/10.1093/conphys/coag001
Willis, C., Thompson, I., Goodrich, H. R., Graba-Landry, A., Semmens, J. M., Wolfe, B. W., & Tracey, S. R. (2026). Thermocline-associated habitat use and fight dynamics of swordfish during recreational angling events. ICES Journal of Marine Science, 83(6). https://doi.org/10.1093/icesjms/fsag101
Goodrich, H. R. (2025). Fish gut plasticity and its role as a potential mechanism for coping with warming and hypoxia. Journal of Experimental Biology, 228(14), jeb249672. https://doi.org/10.1242/jeb.249672
Goodrich, H. R. (2024). ECR Spotlight, Harriet Goodrich. Journal of Experimental Biology, 227(7), jeb247554. https://doi.org/10.1242/jeb.247554
Goodrich, H. R., Wood, C. M., Wilson, R. W., Clark, T. D., Last, K. B., & Wang, T. (2024). Specific dynamic action: The energy cost of digestion or growth? Journal of Experimental Biology, 227(7), jeb246722. https://doi.org/10.1242/jeb.246722
Goodrich, H. R., & Clark, T. D. (2023). Why do some fish grow faster than others? Fish and Fisheries, 24(5), 796–811. https://doi.org/10.1111/faf.12770
Goodrich, H. R., Berry, A. A., Montgomery, D. W., Davison, W. G., & Wilson, R. W. (2022). Fish feeds supplemented with calcium-based buffering minerals decrease stomach acidity, increase the blood alkaline tide and cost more to digest. Scientific Reports, 12, 18468. https://doi.org/10.1038/s41598-022-22496-3
Goodrich, H. R., Wilson, R. W., Smullen, R., Barnes, A. C., & Franklin, C. E. (2022). Acidified fish feeds reduce the energetic and physiological costs of digestion in juvenile barramundi (Lates calcarifer). Aquaculture, 546, 737400. https://doi.org/10.1016/j.aquaculture.2021.737400
Montgomery, D. W., Simpson, S. D., Davison, W., Goodrich, H. R., Engelhard, G. H., Birchenough, S. N. R., & Wilson, R. W. (2021). Temperature and O2, but not CO2, interact to affect aerobic performance of European sea bass (Dicentrarchus labrax). bioRxiv. https://doi.org/10.1101/2021.03.12.435078
Goodrich, H. R., Bayley, M., Birgersson, L., Davison, W. G., Johannsson, O. E., Kim, A. B., Le My, P., Tinh, T. H., Thanh, P. N., Thanh, H. D. T., & Wood, C. M. (2020). Understanding the gastrointestinal physiology and responses to feeding in air-breathing Anabantiform fishes. Journal of Fish Biology, 96(4), 986–1003. https://doi.org/10.1111/jfb.14288
Watson, J. R., Goodrich, H. R., Cramp, R. L., Gordos, M. A., & Franklin, C. E. (2019b). Assessment of the effects of microPIT tags on the swimming performance of small-bodied and juvenile fish. Fisheries Research, 218, 22–28. https://doi.org/10.1016/j.fishres.2019.04.019
Watson, J. R., Goodrich, H. R., Cramp, R. L., Gordos, M. A., & Franklin, C. E. (2019a). Breaking down barriers to fish passage (p. 5) [Science for Saving Species research findings factsheet]. Threatened Species Recovery Hub.
Watson, J. R., Goodrich, H. R., Cramp, R. L., Gordos, M. A., Yan, Y., Ward, P. J., & Franklin, C. E. (2019). Swimming performance traits of twenty-one Australian fish species. A fish passage management tool for use in modified freshwater systems. bioRxiv. https://doi.org/10.1101/861898
Goodrich, H. R., Watson, J. R., Cramp, R. L., Gordos, M. A., & Franklin, C. E. (2018). Making culverts great again. Efficacy of a common culvert remediation strategy across sympatric fish species. Ecological Engineering, 116, 143–153. https://doi.org/10.1016/j.ecoleng.2018.03.006
Watson, J. R., Goodrich, H. R., Cramp, R. L., Gordos, M. A., & Franklin, C. E. (2018). Utilising the boundary layer to help restore the connectivity of fish habitats and populations. Ecological Engineering, 122, 286–294. https://doi.org/10.1016/j.ecoleng.2018.08.008