Every reference with a DOI in the deposited reference list resolved to a known
work in Crossref or DataCite at the dated check, and none carried a retraction,
withdrawal, or removal notice.
The 73 checked references that resolve
resolves10.5194/bg-6-1747-2009Effect of CO
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-related acidification on aspects of the larval development of the European lobster,
<i>Homarus gammarus</i>
(L.)
resolves10.1111/gcb.12105Interacting effects of ocean acidification and warming on growth and <scp>DMS</scp>‐production in the haptophyte coccolithophore <i><scp>E</scp>miliania huxleyi</i>
resolves10.1007/s12526-014-0201-zIntertidal mussels as ecosystem engineers: their associated invertebrate biodiversity under contrasting wave exposures
resolves10.1111/gcb.12453Evidence for multiple stressor interactions and effects on coral reefs
resolves10.1029/2004JC002671Ocean model predictions of chemistry changes from carbon dioxide emissions to the atmosphere and ocean
resolves10.3354/meps07800Near-future level of CO2-driven ocean acidification radically affects larval survival and development in the brittlestar Ophiothrix fragilis
resolves10.1111/mec.12188Transcriptomic responses to ocean acidification in larval sea urchins from a naturally variable <scp>pH</scp> environment
resolves10.1098/rspb.2013.2479Ecological effects of ocean acidification and habitat complexity on reef-associated macroinvertebrate communities
resolves10.1126/science.1097329Impact of Anthropogenic CO
<sub>2</sub>
on the CaCO
<sub>3</sub>
System in the Oceans
resolves10.1016/j.ecss.2010.05.004The combined effects of ocean acidification, mixing, and respiration on pH and carbonate saturation in an urbanized estuary
resolves10.3354/meps10043Responses of marine primary producers to interactions between ocean acidification, solar radiation, and warming
resolves10.1016/S0022-0981(01)00264-7Use of prey resources by the seastars Leptasterias polaris and Asterias vulgaris: a comparison between field observations and laboratory experiments
resolves10.1073/pnas.0811143106Elevated water temperature and carbon dioxide concentration increase the growth of a keystone echinoderm
resolves10.1017/S0025315411001020Factors controlling juvenile growth and population structure of the starfish<i>Asterias rubens</i>in intertidal habitats: field and experimental approaches
resolves10.1111/j.1600-0706.2010.19469.xPredicted levels of future ocean acidification and temperature rise could alter community structure and biodiversity in marine benthic communities
resolves10.1002/ece3.516Meta‐analysis reveals complex marine biological responses to the interactive effects of ocean acidification and warming
resolves10.1890/04-0922EFFECTS OF BIODIVERSITY ON ECOSYSTEM FUNCTIONING: A CONSENSUS OF CURRENT KNOWLEDGE
resolves10.3354/cr00819Effects of local and global change on an inland sea: the Strait of Georgia, British Columbia, Canada
resolves10.2960/J.v44.m683Ocean Acidification Decreases Growth and Development in American Lobster (<i>Homarus americanus</i>) Larvae
resolves10.1007/s10533-012-9707-2Effect of elevated pCO2 on the production of dimethylsulphoniopropionate (DMSP) and dimethylsulphide (DMS) in two species of Ulva (Chlorophyceae)
resolves10.1111/gcb.12179Impacts of ocean acidification on marine organisms: quantifying sensitivities and interaction with warming
resolves10.3354/meps07802Effects of CO2-driven ocean acidification on the early developmental stages of invertebrates
resolves10.3354/meps274161Effects of increased atmospheric CO2 on sea urchin early development
resolves10.2307/2937360Community Development and Persistence in a Low Rocky Intertidal Zone
resolves10.3354/meps07949Effects of changes in number, identity and abundance of habitat-forming species on assemblages of rocky seashores
resolves10.1371/journal.pone.0024223Food Supply and Seawater pCO2 Impact Calcification and Internal Shell Dissolution in the Blue Mussel Mytilus edulis
resolves10.1016/j.jembe.2007.04.006The effects of temperature on producers, consumers, and plant–herbivore interactions in an intertidal community
resolves10.1242/jeb.074765Impact of global warming and rising CO2 levels on coral reef fishes: what hope for the future?
resolves10.1007/s00227-012-2111-6Elevated CO2 affects the behavior of an ecologically and economically important coral reef fish
resolves10.1111/ele.12185Predicting evolutionary responses to climate change in the sea
resolves10.1038/nature04095Anthropogenic ocean acidification over the twenty-first century and its impact on calcifying organisms
resolves10.1007/s001140100216Climate change and temperature-dependent biogeography: oxygen limitation of thermal tolerance in animals
resolves10.3354/meps07768Ecosystem effects of ocean acidification in times of ocean warming: a physiologist’s view
resolves10.1007/s10872-004-5763-0Biological Impact of Elevated Ocean CO2 Concentrations: Lessons from Animal Physiology and Earth History
resolves10.1029/2004JC002561Synergistic effects of temperature extremes, hypoxia, and increases in CO<sub>2</sub>on marine animals: From Earth history to global change
resolves10.1130/G30210A.1Marine calcifiers exhibit mixed responses to CO2-induced ocean acidification
resolves10.3354/meps342001Spatial trends in community richness, diversity, and evenness across rocky intertidal environmental stress gradients in eastern Canada
resolves10.1371/journal.pone.0011372Impact of Ocean Warming and Ocean Acidification on Larval Development and Calcification in the Sea Urchin Tripneustes gratilla
resolves10.1016/j.aquatox.2011.12.020Resource allocation and extracellular acid–base status in the sea urchin Strongylocentrotus droebachiensis in response to CO2 induced seawater acidification
resolves10.1111/j.1365-2699.2011.02498.xMussel and dogwhelk distribution along the north-west Atlantic coast: testing predictions derived from the abundant-centre model
resolves10.1080/17451000.2013.793809Distribution of cryptic mussel species (<i>Mytilus edulis</i>and<i>M. trossulus</i>) along wave exposure gradients on northwest Atlantic rocky shores
resolves10.5194/bg-7-3879-2010Calcifying invertebrates succeed in a naturally CO
<sub>2</sub>
-rich coastal habitat but are threatened by high levels of future acidification
resolves10.1111/gcb.12109Food availability outweighs ocean acidification effects in juvenile <i><scp>M</scp>ytilus edulis</i>: laboratory and field experiments
resolves10.5194/bg-6-2207-2009Impact of anthropogenic ocean acidification on thermal tolerance of the spider crab
<i>Hyas araneus</i>
resolves10.1007/s00227-010-1469-6Interaction of ocean acidification and temperature; the high cost of survival in the brittlestar Ophiura ophiura
resolves10.1016/j.jembe.2005.05.018Prey selection and the functional response of sea stars (Asterias vulgaris Verrill) and rock crabs (Cancer irroratus Say) preying on juvenile sea scallops (Placopecten magellanicus (Gmelin)) and blue mussels (Mytilus edulis Linnaeus)
The 9 references without a DOI — listed, not checked
no DOI — not checkedcit0001
no DOI — not checkedOcean Acidification
no DOI — not checkedClimate Change 2013: The Physical Science Basis
no DOI — not checkedcit0015
no DOI — not checkedBiodiversity Loss in a Changing Planet
no DOI — not checkedClimate Change 2007: The Physical Science Basis
no DOI — not checkedPollock LW. 1998. A Practical Guide to the Marine Animals of Northeastern North America. New Brunswick, NJ: Rutgers University Press. 367 pages.
no DOI — not checkedRaven JA, Caldeira K, Elderfield H. 2005. Ocean Acidification due to Increasing Atmospheric Carbon Dioxide. Policy document 12/05. London: The Royal Society. 68 pages.
no DOI — not checkedRiebesell U, Fabry VJ, Hansson L, Gattuso JP. 2010. Guide to Best Practices for Ocean Acidification Research and Data Reporting. Luxembourg: Publications Office of the European Union. 260 pages.
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