References
51
Ricardo GF, Jones RJ, Clode PL, Humanes A, Giofre N, Negri AP (2018) Sediment characteristics
influence the fertilization success of the corals Acropora tenuis and Acropora millepora. Mar
Pollut Bull 135:941–953
Rodrigues LJ, Grottoli AG (2007) Energy reserves and metabolism as indicators of coral recovery
from bleaching. Limnology and Oceanograpy 52(5):1874–1882
Rogers CS (1990) Responses of coral reefs and reef organisms to sedimentation. Mar Ecol Prog
Ser 62:185–202
Rogers CS (1993) Hurricanes and Coral Reefs: The intermediate disturbance hypothesis revisited.
Coral Reefs 12:127–137. https://doi.org/10.1007/BF00334471
Ruiz-Torres V, Encinar JA, Herranz-Lopez M, Perez-Sanchez A, Galiano V, Barrajon-Catalan E,
Micol V (2017) An updated review on marine anticancer compounds: the use of virtual screening
for the discovery of small-molecule cancer drugs. Molecules 22:1037
Runnalls LA, Coleman ML (2003) Record of natural and anthropogenic changes in reef environments (Barbados West Indies) using laser ablation ICP-MS and sclerochronology on coral cores.
Coral Reefs 22:416–426
Savoca MS, Nevitt GA (2014) Evidence that dimethyl sulphide facilitates a tritrophic mutualism
between marine primary producers and top predators. In: Proceedings of national academy of
sciences U. S. A. (in press)
Schwarz JA, Mitchelmore CL, Jones R, O’Dea A, Seymour S (2013) Exposure to copper induces
oxidative and stress responses and DNA damage in the coral Montastraea franksi. Comp Biochem
Physiol Part C Toxicol Pharmacol 157(3):272–279. https://doi.org/10.1016/j.cbpc.2012.12.003
Seeman J (2013) The use of 13 C and 15 N isotope labeling techniques to assess heterotrophy of
corals. J Exp Mar Biol Ecol 442:88–95
Seymour JR, Simo R, Ahmed T, Stocker R (2010) Chemoattraction to dimethylsulfoniopropionate
throughout the marine microbial food web. Science: 342–345
Shah S (2008) Study of heavy metal accumulation in scleractinian corals of Viti Levu, Fiji Islands,
unpublished. MSc thesis, Faculty of Science, Technology and Environment, The University of
the South Pacific, Fiji
Shick JM, Lesser MP, Jokiel PJ (1996) Effects of ultraviolet radiation on corals and other coral reef
organisms. Glob Change Biol 2:527–545
Siddiqui S, Bielmyer GK (2015) Responses of the sea anemone, Exaiptasia pallida, to ocean
acidification conditions and copper exposure. Aquat Toxicol 167:228–239. https://doi.org/10.
1016/j.aquatox.2015.08.012
Sieburth JM (1960) Acrylic acid an “antibiotic” principle in Phaeocystis blooms in Antarctic waters.
Science 132:676–677
Sieburth JM (1961) Antibiotic properties of acrylic acid a factor in the gastro-intestinal antibiosis
of polar marine animals. J Bacteriol 82:72–79
Smith DJ, Suggett DJ, Baker NR (2005) Is photoinhibition of zooxanthellae photosynthesis the
primary cause of thermal bleaching in corals? Glob Change Biol 11:1–11
Sokolova IM, Matoo O, Dickinson G, Beniash E (2015) Physiological effects of ocean acidification
on animal calcifiers. In: Whiteley SN, Solan M (eds) Stressors in the marine environments. Oxford
University Press, Oxford
Souter DW and Lindén O (2000) The health and future of coral reef systems. Ocean and Coastal
Management, 43: 657–688
Spalding MD, Ravilious C, Green EP, UNEP-WCMC (2001) World Atlas of coral reefs
Spalding M, Burke L, Wood SA, Ashpole J, Hutchisone J, zu Ermgassene P (2017) Mapping the
global value and distribution of coral reef tourism. Marine Policy 82:104–113. http://dx.doi.org/
10.1016/j.marpol.2017.05.014
Stefels J (2000) Physiological aspects of the production and conversion of DMSP in marine algae
and higher plants. J Sea Res 43:183–197
Storlazzi CD, Norris BK, Rosenberger KJ (2015) The influence of grain size, grain color, and
suspended-sediment concentration on light attenuation: why fine grained terrestrial sediment is
51
Ricardo GF, Jones RJ, Clode PL, Humanes A, Giofre N, Negri AP (2018) Sediment characteristics
influence the fertilization success of the corals Acropora tenuis and Acropora millepora. Mar
Pollut Bull 135:941–953
Rodrigues LJ, Grottoli AG (2007) Energy reserves and metabolism as indicators of coral recovery
from bleaching. Limnology and Oceanograpy 52(5):1874–1882
Rogers CS (1990) Responses of coral reefs and reef organisms to sedimentation. Mar Ecol Prog
Ser 62:185–202
Rogers CS (1993) Hurricanes and Coral Reefs: The intermediate disturbance hypothesis revisited.
Coral Reefs 12:127–137. https://doi.org/10.1007/BF00334471
Ruiz-Torres V, Encinar JA, Herranz-Lopez M, Perez-Sanchez A, Galiano V, Barrajon-Catalan E,
Micol V (2017) An updated review on marine anticancer compounds: the use of virtual screening
for the discovery of small-molecule cancer drugs. Molecules 22:1037
Runnalls LA, Coleman ML (2003) Record of natural and anthropogenic changes in reef environments (Barbados West Indies) using laser ablation ICP-MS and sclerochronology on coral cores.
Coral Reefs 22:416–426
Savoca MS, Nevitt GA (2014) Evidence that dimethyl sulphide facilitates a tritrophic mutualism
between marine primary producers and top predators. In: Proceedings of national academy of
sciences U. S. A. (in press)
Schwarz JA, Mitchelmore CL, Jones R, O’Dea A, Seymour S (2013) Exposure to copper induces
oxidative and stress responses and DNA damage in the coral Montastraea franksi. Comp Biochem
Physiol Part C Toxicol Pharmacol 157(3):272–279. https://doi.org/10.1016/j.cbpc.2012.12.003
Seeman J (2013) The use of 13 C and 15 N isotope labeling techniques to assess heterotrophy of
corals. J Exp Mar Biol Ecol 442:88–95
Seymour JR, Simo R, Ahmed T, Stocker R (2010) Chemoattraction to dimethylsulfoniopropionate
throughout the marine microbial food web. Science: 342–345
Shah S (2008) Study of heavy metal accumulation in scleractinian corals of Viti Levu, Fiji Islands,
unpublished. MSc thesis, Faculty of Science, Technology and Environment, The University of
the South Pacific, Fiji
Shick JM, Lesser MP, Jokiel PJ (1996) Effects of ultraviolet radiation on corals and other coral reef
organisms. Glob Change Biol 2:527–545
Siddiqui S, Bielmyer GK (2015) Responses of the sea anemone, Exaiptasia pallida, to ocean
acidification conditions and copper exposure. Aquat Toxicol 167:228–239. https://doi.org/10.
1016/j.aquatox.2015.08.012
Sieburth JM (1960) Acrylic acid an “antibiotic” principle in Phaeocystis blooms in Antarctic waters.
Science 132:676–677
Sieburth JM (1961) Antibiotic properties of acrylic acid a factor in the gastro-intestinal antibiosis
of polar marine animals. J Bacteriol 82:72–79
Smith DJ, Suggett DJ, Baker NR (2005) Is photoinhibition of zooxanthellae photosynthesis the
primary cause of thermal bleaching in corals? Glob Change Biol 11:1–11
Sokolova IM, Matoo O, Dickinson G, Beniash E (2015) Physiological effects of ocean acidification
on animal calcifiers. In: Whiteley SN, Solan M (eds) Stressors in the marine environments. Oxford
University Press, Oxford
Souter DW and Lindén O (2000) The health and future of coral reef systems. Ocean and Coastal
Management, 43: 657–688
Spalding MD, Ravilious C, Green EP, UNEP-WCMC (2001) World Atlas of coral reefs
Spalding M, Burke L, Wood SA, Ashpole J, Hutchisone J, zu Ermgassene P (2017) Mapping the
global value and distribution of coral reef tourism. Marine Policy 82:104–113. http://dx.doi.org/
10.1016/j.marpol.2017.05.014
Stefels J (2000) Physiological aspects of the production and conversion of DMSP in marine algae
and higher plants. J Sea Res 43:183–197
Storlazzi CD, Norris BK, Rosenberger KJ (2015) The influence of grain size, grain color, and
suspended-sediment concentration on light attenuation: why fine grained terrestrial sediment is
