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The Journal of Experimental Biology|November 2, 2018
Can variation among hypoxic environments explain why different fish species use different hypoxic survival strategies?Milica Mandic, Matthew D Regan
The Journal of Experimental Biology|May 7, 2017
Rates of hypoxia induction alter mechanisms of O<sub>2</sub> uptake and the critical O<sub>2</sub> tension of goldfishMatthew D Regan, Jeffrey G Richards
Journal of Comparative Physiology. B, Biochemical, Systemic, and Environmental Physiology|March 10, 2010
The evolution of Root effect hemoglobins in the absence of intracellular pH protection of the red blood cell: insights from primitive fishesMatthew D Regan, Colin J Brauner
The Journal of Experimental Biology|November 15, 2019
The utility and determination of <i>P</i><sub>crit</sub> in fishesGordon R Ultsch, Matthew D Regan
The Journal of Experimental Biology|July 16, 2025
The ins and outs of integrative digestive biologyCarol Bucking, John S Terblanche, Matthew D Regan
The Journal of Experimental Biology|March 8, 2022
Linking environmental salinity to respiratory phenotypes and metabolic rate in fishes: a data mining and modelling approachTill S Harter, Christian Damsgaard, Matthew D Regan
The Journal of Experimental Biology|December 4, 2016
Calorespirometry reveals that goldfish prioritize aerobic metabolism over metabolic rate depression in all but near-anoxic environmentsMatthew D Regan, Ivan S Gill, Jeffrey G Richards
Biology Letters|November 3, 2017
Metabolic depression and the evolution of hypoxia tolerance in threespine stickleback, <i>Gasterosteus aculeatus</i>Matthew D Regan, Ivan S Gill, Jeffrey G Richards
Comparative Biochemistry and Physiology. Part A, Molecular & Integrative Physiology|December 21, 2020
How the gut and liver hibernateCourtney C Kurtz, Jessica P Otis, Matthew D Regan, et al.
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