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Madin JS, Hoogenboom MO, Connolly SR, Darling ES, Falster DS, Huang D, Keith SA, Mizerek T,
Pandolfi JM, Putnam HM, Baird AH (2016) A trait-based approach to advance coral reef science.
Trends Ecol Evol 31(6). http://dx.doi.org/10.1016/j.tree.2016.02.012
Marangoni LFB, Pinto MMdA, Marques JA, Bianchini A (2019) Copper exposure and seawater
acidification interaction: Antagonistic effects on biomarkers in the zooxanthellate scleractinian
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a reef calcifier exposed to copper, acidification and warming: A multiple biomarker approach.
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McCulloch M, Fallon S, Wyndham T, Hendy E, Lough J, Barnes D (2003) Coral record of increased
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Millero FJ, Woosley R, DiTrolio BR, Waters J (2009) Effects of the ocean acidification on the
speciation of metals in seawater. Oceanography 22:72–85
Mollica NR, Guo W, Cohen AL, Huang KF, Foster GL, Donald HK, Solow AR (2018) Ocean
acidification affects coral growth by reducing skeletal density. Proc Natl Acad Sci U SA
115(8):1754–1759. www.pnas.org/cgi/doi/10.1073/pnas.1712806115
Monserrat JM, Martínez PE, Geracitano LA, Amado LL, Martins CM, Pinho GL, Chaves IS,
Ferreira-Cravo M, Ventura-Lima J, Bianchini A (2007) Pollution biomarkers in estuarine animals:
critical review and perspectives. Comp Biochem Physiol C 146:221–234
Muller-Parker G, D’Elia CF, Cook CB (2015) Interactions between corals and their symbiotic algae.
In Birkeland C (Ed) Coral reefs in the anthropocene. Springer, Dordrecht. https://doi.org/10.1007/
978-94-017-7249-5_5
Muscatine L (1990) The role of symbiotic algae in carbon and energy flux in reef corals. In: Dubinsky
Z (ed) Ecosystems of the world: coral reefs. Elsevier, Amsterdam, pp 75–87
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environments. Bioscience 27:454–460
Muscatine L, Mccloskey LR, Marian RE (1981) Estimating the daily contribution of carbon from
zooxanthellae to coral animal respiration. Limnol Oceanogr 26:601–611
Muscatine L, Falkowski PG, Dubinsky Z (1983) Carbon budgets in symbiotic associations. In:
Schenk HEA, Schwemmler W (eds) Endocytobiology II, intracellular space as oligogenetic
ecosystem. Walter DeGruyter, Berlin, pp 649–658
Negri AP, Hoogenboom MO (2011) Water contamination reduces the tolerance of coral larvae to
thermal stress. PLoS ONE 6: https://doi.org/10.1371/journal.pone.0019703
Negri AP, Harford AJ, Parry DL, van Dam RA (2011) Effects of alumina refinery wastewater and
signature metal constituents at the upper thermal tolerance of: 2. The early life stages of the coral
Acropora tenius. Mar Pollut Bull 62:474–482
Nishiguchi MK, Somero GN (1992) Temperature and concentration dependence of compatibility
of the organic osmolyte B-dimethylsulfoniopropionate. Cryobiology 129:118–124
49
Luschak VI (2011) Environmentally induced oxidative stress in aquatic animals. Aquat Toxicol
101:13–30
Madin JS, Hoogenboom MO, Connolly SR, Darling ES, Falster DS, Huang D, Keith SA, Mizerek T,
Pandolfi JM, Putnam HM, Baird AH (2016) A trait-based approach to advance coral reef science.
Trends Ecol Evol 31(6). http://dx.doi.org/10.1016/j.tree.2016.02.012
Marangoni LFB, Pinto MMdA, Marques JA, Bianchini A (2019) Copper exposure and seawater
acidification interaction: Antagonistic effects on biomarkers in the zooxanthellate scleractinian
coral Mussismilia harttii. Aquat Toxicol 206:123–133. https://doi.org/10.1016/j.aquatox.2018.
11.005
Marques JA, Abrantes DP, Marangoni LFB, Bianchini A (2019) Ecotoxicological responses of
a reef calcifier exposed to copper, acidification and warming: A multiple biomarker approach.
Environ Pollut. https://doi.org/10.1016/j.envpol.2019.113572
Maximillian J, Brusseau ML, Glenn EP, Matthias AD (2019) Pollution and environmental perturbations in the global system. In: Brusseau ML, Pepper IL, Gerba CP (eds) Environmental and
pollution science, Chap 25, 3rd edn, pp 457–476. https://doi.org/10.1016/B978-0-12-814719-1.
00025-2
McCulloch M, Fallon S, Wyndham T, Hendy E, Lough J, Barnes D (2003) Coral record of increased
sediment flux to the inner Great Barrier Reef since European settlement. Nature 421(6924):727–
730
McGregor HV, Fischer MJ, Gagan MK, Fink D, Phipps SJ, Wong H, Woodroffe CD (2013) A weak
El Nino/Southern Oscillation ~ with delayed seasonal growth around 4,300 years ago. Nat Geosci
6:949–953. https://doi.org/10.1038/ngeo1936
Mieog JC, Olsen JL, Berkelmans R, Bleuler-Martinez SA, Willis BL, van Oppen MJH (2009) The
Roles and interactions of symbiont, host and environment in defining coral fitness. PLoS ONE
4(7): https://doi.org/10.1371/journal.pone.0006364
Millero FJ, Woosley R, DiTrolio BR, Waters J (2009) Effects of the ocean acidification on the
speciation of metals in seawater. Oceanography 22:72–85
Mollica NR, Guo W, Cohen AL, Huang KF, Foster GL, Donald HK, Solow AR (2018) Ocean
acidification affects coral growth by reducing skeletal density. Proc Natl Acad Sci U SA
115(8):1754–1759. www.pnas.org/cgi/doi/10.1073/pnas.1712806115
Monserrat JM, Martínez PE, Geracitano LA, Amado LL, Martins CM, Pinho GL, Chaves IS,
Ferreira-Cravo M, Ventura-Lima J, Bianchini A (2007) Pollution biomarkers in estuarine animals:
critical review and perspectives. Comp Biochem Physiol C 146:221–234
Muller-Parker G, D’Elia CF, Cook CB (2015) Interactions between corals and their symbiotic algae.
In Birkeland C (Ed) Coral reefs in the anthropocene. Springer, Dordrecht. https://doi.org/10.1007/
978-94-017-7249-5_5
Muscatine L (1990) The role of symbiotic algae in carbon and energy flux in reef corals. In: Dubinsky
Z (ed) Ecosystems of the world: coral reefs. Elsevier, Amsterdam, pp 75–87
Muscatine L, Porter JW (1977) Reef corals: mutualistic symbioses adapted to nutrient poor
environments. Bioscience 27:454–460
Muscatine L, Mccloskey LR, Marian RE (1981) Estimating the daily contribution of carbon from
zooxanthellae to coral animal respiration. Limnol Oceanogr 26:601–611
Muscatine L, Falkowski PG, Dubinsky Z (1983) Carbon budgets in symbiotic associations. In:
Schenk HEA, Schwemmler W (eds) Endocytobiology II, intracellular space as oligogenetic
ecosystem. Walter DeGruyter, Berlin, pp 649–658
Negri AP, Hoogenboom MO (2011) Water contamination reduces the tolerance of coral larvae to
thermal stress. PLoS ONE 6: https://doi.org/10.1371/journal.pone.0019703
Negri AP, Harford AJ, Parry DL, van Dam RA (2011) Effects of alumina refinery wastewater and
signature metal constituents at the upper thermal tolerance of: 2. The early life stages of the coral
Acropora tenius. Mar Pollut Bull 62:474–482
Nishiguchi MK, Somero GN (1992) Temperature and concentration dependence of compatibility
of the organic osmolyte B-dimethylsulfoniopropionate. Cryobiology 129:118–124
