Severe tissue damage in Atlantic cod larvae under increasing ocean acidification (original) (raw)
References
Caldeira, K. & Wickett, M. E. Anthropogenic carbon and ocean pH. Nature425, 365 (2003). ArticleCAS Google Scholar
IPCC Climate Change 2007: The Physical Science Basis (eds Solomon, S. et al.) (Cambridge Univ. Press, 2007).
Caldeira, K. & Wickett, M. E. Ocean model predictions of chemistry changes from carbon dioxide emissions to the atmosphere and ocean. J. Geophys. Res.110, C09S04 (2005). Article Google Scholar
Fabry, V. J., Seibel, B. A., Feely, R. A. & Orr, J. C. Impacts of ocean acidification on marine fauna and ecosystem processes. ICES J. Mar. Sci.65, 414–432 (2008). ArticleCAS Google Scholar
Pörtner, H. O., Langenbuch, M. & Reipschlaeger, A. Biological impact of elevated ocean CO2 concentration: Lessons from animal physiology and Earth history. J. Oceanogr.60, 705–718 (2004). Article Google Scholar
Morris, R. Acid Toxicity and Aquatic Animals (Cambridge Univ., 1989). Book Google Scholar
Sayer, M. D. J., Reader, J. P. & Dalziel, T. R. K. Fresh-water acidification—effects on the early-life stages of fish. Rev. Fish Biol. Fish.3, 95–132 (1993). Article Google Scholar
Munday, P. L. et al. Ocean acidification impairs olfactory discrimination and homing ability of a marine fish. Proc. Natl Acad. Sci. USA106, 1848–1852 (2009). ArticleCAS Google Scholar
Munday, P. L. et al. Replenishment of fish populations is threatened by ocean acidification. Proc. Natl Acad. Sci. USA107, 12930–12934 (2010). ArticleCAS Google Scholar
Munday, P. L., Hernaman, V., Dixson, D. L. & Thorrold, S. R. Effect of ocean acidification on otolith development in larvae of a tropical marine fish. Biogeosciences8, 1631–1641 (2011). ArticleCAS Google Scholar
Checkley, D. M. et al. Elevated CO2 enhances otolith growth in young fish. Science324, 1683 (2009). ArticleCAS Google Scholar
Siegenthaler, U. et al. Stable carbon cycle-climate relationship during the late Pleistocene. Science310, 1313–1317 (2005). ArticleCAS Google Scholar
Thomsen, J. et al. Calcifying invertebrates succeed in a naturally CO2-rich coastal habitat but are threatened by high levels of future acidification. Biogeosciences7, 3879–3891 (2010). ArticleCAS Google Scholar
Nordeide, J. T. Coastal cod and north-east Arctic cod — do they mingle at the spawning grounds in Lofoten? Sarsia83, 373–379 (1998). Article Google Scholar
Fabry, V. J., McClintock, J. B., Mathis, J. T. & Grebmeier, J. M. Ocean acidification at high latitudes: The bellweather. Oceanography22, 160–171 (2009). Article Google Scholar
Steinacher, M., Joos, F., Frolicher, T. L., Plattner, G. K. & Doney, S. C. Imminent ocean acidification in the Arctic projected with the NCAR global coupled carbon cycle-climate model. Biogeosciences6, 515–533 (2009). ArticleCAS Google Scholar
Bellerby, R. G. J., Olsen, A., Furevik, T. & Anderson, L. G. in The Nordic Seas: An Integrated Perspective Oceanography, Climatology, Biogeochemistry, and Modeling (eds Drange, H., Dokken, T., Furevik, T., Gerdes, R. & Berger, W.) 189–197 (Geophysical Monograph Series,Vol. 158, AGU, 2005). Book Google Scholar
Denman, K., Christian, J. R., Steiner, N., Pörtner, H. O. & Nojiri, Y. Potential impacts of future ocean acidification on marine ecosystems and fisheries: Current knowledge and recommendations for future research. ICES J. Mar. Sci.68, 1019–1029 (2011). Article Google Scholar
Biastoch, A. et al. Rising Arctic Ocean temperatures cause gas hydrate destabilization and ocean acidification. Geophys. Res. Lett.38, L08602 (2011). Article Google Scholar
Gilmour, K. M. & Perry, S. F. Carbonic anhydrase and acid-base regulation in fish. J. Exp. Biol.212, 1647–1661 (2009). ArticleCAS Google Scholar
Perry, S. F. & Gilmour, K. M. Acid-base balance and CO2 excretion in fish: Unanswered questions and emerging models. Respir. Physiol. Neurobiol.154, 199–215 (2006). ArticleCAS Google Scholar
Hunt von Herbing, I., Boutilier, R. G., Miyake, T. & Hall, B. K. Effects of temperature on morphological landmarks critical to growth and survival in larval Atlantic cod (Gadus morhua). Mar. Biol.124, 593–606 (1996). Article Google Scholar
Morrison, C. M. Histology of Atlantic cod, Gadus morhua: An atlas. Part Four. Eleutheroembryo and larva.. Can. Spec. Publ. Fish Aquat. Sci.119, 496 (1993). Google Scholar
Heisler, N. Acid Toxicity and Aquatic Animals. Acid-base Regulation in Fishes: 1. Mechanisms (Cambridge Univ. Press, 1989). Google Scholar
Michaelidis, B., Spring, A. & Pörtner, H. O. Effects of long-term acclimation to environmental hypercapnia on extracellular acid–base status and metabolic capacity in Mediterranean fish Sparus aurata. Mar. Biol.150, 1417–1429 (2007). Article Google Scholar
Langenbuch, M. & Pörtner, H. O. Energy budget of hepatocytes from Antarctic fish (Pachycara brachycephalum and Lepidonotothen kempi) as a function of ambient CO2: pH-dependent limitations of cellular protein biosynthesis? J. Exp. Biol.206, 3895–3903 (2003). ArticleCAS Google Scholar
Köhler, A. Lysosomal perturbations in fish liver as indicators of toxic environmental pollution. Comput. Biochem. Physiol. C100, 123–127 (2004). Article Google Scholar
Good, C., Davidson, J., Welsh, C., Snekvik, K. & Summerfelt, S. The effects of carbon dioxide on performance and histopathology of rainbow trout Oncorhynchus mykiss in water recirculation aquaculture systems. Aquacult. Eng.42, 51–56 (2010). Article Google Scholar
Bernet, D., Schmidt, H., Meier, W., Burkhardt-Holm, P. & Wahli, T. Histopathology in fish: Proposal for a protocol to assess aquatic pollution. J. Fish Dis.22, 25–34 (1999). Article Google Scholar
Munday, P. L., Donelson, J. M., Dixson, D. L. & Endo, G. G. K. Effects of ocean acidification on the early life history of a tropical marine fish. Proc. R. Soc. B276, 3275–3283 (2009). ArticleCAS Google Scholar