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American Journal of Physiology. Regulatory, Integrative and Comparative Physiology|August 29, 2014
Physiological impacts of elevated carbon dioxide and ocean acidification on fishRachael M Heuer, Martin Grosell
Scientific Reports|September 30, 2016
Elevated CO2 increases energetic cost and ion movement in the marine fish intestineRachael M Heuer, Martin Grosell
Physiological and Biochemical Zoology : PBZ|August 21, 2012
Ocean acidification leads to counterproductive intestinal base loss in the gulf toadfish (Opsanus beta)Rachael M Heuer, Andrew J Esbaugh, Martin Grosell
Physiological and Biochemical Zoology : PBZ|September 13, 2016
Changes to Intestinal Transport Physiology and Carbonate Production at Various CO2 Levels in a Marine Teleost, the Gulf Toadfish (Opsanus beta)Rachael M Heuer, Kathleen M Munley, Nafis Narsinghani, et al.
Comparative Biochemistry and Physiology. Part A, Molecular & Integrative Physiology|February 12, 2023
Effects of elevated CO2 on metabolic rate and nitrogenous waste handling in the early life stages of yellowfin tuna (Thunnus albacares)Rachael M Heuer, Yadong Wang, Christina Pasparakis, et al.
Journal of Comparative Physiology. B, Biochemical, Systemic, and Environmental Physiology|June 3, 2026
Plasma chemistry, erythrocyte, and spleen responses to fatigue and recovery in Ucrit versus chase protocols in mahi-mahi (Coryphaena hippurus), a high-performance pelagic teleostChris M Wood, Rachael M Heuer, John D Stieglitz, et al.
Journal of Comparative Physiology. B, Biochemical, Systemic, and Environmental Physiology|October 18, 2020
A marine teleost, Opsanus beta, compensates acidosis in hypersaline water by H+ excretion or reduced HCO3- excretion rather than HCO3- uptakeZongli Yao, Kevin L Schauer, Ilan M Ruhr, et al.
The Science of the Total Environment|January 20, 2024
The role of marine fish-produced carbonates in the oceanic carbon cycle is determined by size, specific gravity, and dissolution rateErik J Folkerts, Amanda M Oehlert, Rachael M Heuer, et al.
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