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Review Article

Coral restoration research and technical developments: what we have learned so far

Pages 377-409 | Received 27 Jul 2018, Accepted 02 Jun 2019, Published online: 14 Oct 2019

References

  • Abrego D, van Oppen MJH, Willis BL. 2009. Onset of algal endosymbiont specificity varies among closely related species of Acropora corals during early ontogeny. Molecular Ecology. 18:3532–3543. doi:10.1111/j.1365-294X.2009.04276.x.
  • Afiq-Rosli L, Taira D, Loke HX, Toh TC, Toh KB, Ng CSL, Cabaitan C, Chou LM, Song T. 2017. In situ nurseries enhance coral transplant growth in sedimented waters. Marine Biology Research. 13:878–887. doi:10.1080/17451000.2017.1307988.
  • Alcala AC, Gomez ED, Alcala LC. 1982. Survival and growth of coral transplants in Central Philippines. Kalikasan; The Philippines Journal of Biology. 11:136–147.
  • Amar KO, Rinkevich B. 2007. A floating mid-water coral nursery as larval dispersion hub: testing an idea. Marine Biology. 151:713–718. doi:10.1007/s00227-006-0512-0.
  • Aota T, Shibata S, Watanuki A. 2006. Development of coral reef restoration technology; mass culture, transportation and settlement of coral larvae. Midoriishi. (17):4–10. Japanese.
  • Aragocrete. 2013. Aragocrete: DIY live rock. Reef News. [Accessed 2013 Aug 19]. http://www.reef2reef.com/ams/aragocrete-diy-live-rock.96/.
  • Babcock RC, Heyward AJ. 1986. Larval development of certain gamete-spawning scleractinian corals. Coral Reefs. 5:111–116. doi:10.1007/BF00298178.
  • Babcock RC, Mundy C. 1996. Coral recruitment: consequences of settlement choice for early growth and survivorship in two scleractinians. Journal of Experimental Marine Biology and Ecology. 206:179–201. doi:10.1016/S0022-0981(96)02622-6.
  • Baird A, Guest JR, Willis B. 2009. Systematic and biogeographical patterns in the reproductive biology of scleractinian corals. Annual Review of Ecology, Evolution, and Systematics. 40:551–571. doi:10.1146/annurev.ecolsys.110308.120220.
  • Baird AH, Salih A, Trevor-Jones A. 2006. Fluorescence census techniques for the early detection of coral recruits. Coral Reefs. 25:73–76. doi:10.1007/s00338-005-0072-7.
  • Baker AC, Starger CJ, McClanahan TR, Glynn PW. 2004. Coral reefs: corals’ adaptive response to climate change. Nature. 430:741. doi:10.1038/430741a.
  • Baria MV, Guest JR, Edwards AJ, Aliño PM, Heyward AJ, Gomez ED. 2010. Caging enhances post-settlement survival of juveniles of the scleractinian coral Acropora tenuis. Journal of Experimental Marine Biology and Ecology. 394:149–153. doi:10.1016/j.jembe.2010.08.003.
  • Barshis DJ, Ladner JT, Oliver A, Seneca FO, Traylor-Knowles N, Palumbi SR. 2013. Genomic basis for coral resilience to climate change. Proceedings of the National Academy of Sciences. 110:1387–1392. doi:10.1073/pnas.1210224110.
  • Barton JA, Willis BL, Hutson KS. 2017. Coral propagation: a review of techniques for ornamental trade and reef restoration. Reviews in Aquaculture. 9:238–256. doi:10.1111/raq.12135.
  • Baums IB. 2008. A restoration genetics guide for coral reef conservation. Molecular Ecology. 17:2796–2811. doi:10.1111/j.1365-294X.2008.03787.x.
  • Baums IB, Devlin-Durante MK, Polato NR, Xu D, Giri S, Altman NS, Ruiz D, Parkinson JE, Boulay JN. 2013. Genotypic variation influences reproductive success and thermal stress tolerance in the reef building coral, Acropora palmata. Coral Reefs. 32:703–717. doi:10.1007/s00338-013-1012-6.
  • Baums IB, Miller MW, Hellberg ME. 2005. Regionally isolated populations of an imperiled Caribbean coral, Acropora palmata. Molecular Ecology. 14:1377–1390. doi:10.1111/j.1365-294X.2005.02489.x.
  • Bayraktarov E, Saunders MI, Abdullah S, Mills M, Beher J, Possingham HP, Mumby PJ, Lovelock CE. 2016. The cost and feasibility of marine coastal restoration. Ecological Applications. 26:1055–1074. doi:10.1890/15-1077.
  • Birkeland C, Randall RH, Grimm G. 1979. Three methods of coral transplantation for the purpose of re-establishing a coral community in the thermal effluent area at the Tanguisson Power Plant. University of Guam technical report. [152 p.].
  • Boch CH, Morse ANC. 2012. Testing the effectiveness of direct propagation techniques for coral restoration of Acropora spp. Ecological Engineering. 40:11–17. doi:10.1016/j.ecoleng.2011.12.026.
  • Borell EM, Romatzki SBC, Ferse SCA. 2010. Differential physiological responses of two congeneric scleractinian corals to mineral accretion and an electric field. Coral Reefs. 29:191–200. doi:10.1007/s00338-009-0564-y.
  • Borneman EH, Lowrie J. 2001. Advances in captive husbandry and propagation: an easily utilized reef replenishment means from the private sector? Bulletin of Marine Science. 69:897–913.
  • Bothwell AM. 1981. Fragmentation, a means of asexual reproduction and dispersal in the coral genus Acropora (Scleractinia: Astrocoeniida): a preliminary report. In: Proceedings of 4th International Coral Reef Symposium, Manila, Philippines. Vol. 2. p. 137–144.
  • Bruno JF, Valdivia A. 2016. Coral reef degradation is not correlated with local human population density. Scientific Reports. 6. Article 29778. [8 p.]. doi:10.1038/srep29778.
  • Burke L, Reytar K, Spalding M, Perry A. 2011. Reefs at risk revisited. Washington (DC): World Resources Institute. [116 p.].
  • Carpenter KE, Abrar M, Aeby G, Aronson RB, Banks S, Bruckner A, Chiriboga A, Cortés J, Delbeek C, DeVantier L, et al. 2008. One-third of reef-building corals face elevated extinction risk from climate change and local impacts. Science. 321:560–563. doi:10.1126/science.1159196.
  • Cesar H, Burke L, Pet-Soede L. 2003. The economics of worldwide coral reef degradation. Arnhem: Cesar Environmental Economics Consulting. [23 p.].
  • Cesar HSJ, van Beukering PJJ. 2004. Economic valuation of the coral reefs of Hawaii. Pacific Science. 58:231–242. doi:10.1353/psc.2004.0014.
  • Chamberland VF, Petersen D, Guest JR, Petersen U, Brittsan M, Vermeij MJA. 2017. New seeding approach reduces costs and time to outplant sexually propagated corals for reef restoration. Scientific Reports. 7. Article 18076. [12 p.]. doi:10.1038/s41598-017-17555-z.
  • Chamberland VF, Vermeij MJA, Brittsan M, Carl M, Schick M, Snowden S, Schrier A, Petersen D. 2015. Restoration of critically endangered elkhorn coral (Acropora palmata) populations using larvae reared from wild-caught gametes. Global Ecology and Conservation. 4:526–537. doi:10.1016/j.gecco.2015.10.005.
  • Chan WY, Peplow LM, Menéndez P, Hoffmann AA, van Oppen MJH. 2018. Interspecific hybridization may provide novel opportunities for coral reef restoration. Frontiers in Marine Science. 5. Article 160. [14 p.]. doi:10.3389/fmars.2018.00160.
  • Clark S, Edwards AJ. 1995. Coral transplantation as an aid to reef rehabilitation: evaluation of a case study in the Maldive Islands. Coral Reefs. 14:201–213. doi:10.1007/BF00334342.
  • Conlan JA, Bay LK, Severati A, Humphrey C, Francis DS. 2018. Comparing the capacity of five different dietary treatments to optimise growth and nutritional composition in two scleractinian corals. PLoS One. 13:e0207956. [20 p.]. doi:10.1371/journal.pone.0207956.
  • Connell JH, Hughes TP, Wallace CC. 1997. A 30-year study of coral abundance, recruitment, and disturbance at several scales in space and time. Ecological Monographs. 67:461–488. doi:10.1890/0012-9615(1997)067[0461:AYSOCA]2.0.CO;2.
  • Cooper WT, Lirman D, VanGroningen MP, Parkinson JE, Herlan J, McManus JW. 2014. Assessing techniques to enhance early post-settlement survival of corals in situ for reef restoration. Bulletin of Marine Science. 90:651–664. doi:10.5343/bms.2013.1020.
  • Craggs JRK, Guest JR, Brett A, Davis M, Sweet M. 2018. Maintaining natural spawning timing in Acropora corals following long distance inter-continental transportation. Journal of Zoo and Aquarium Research. 6:30–36. doi:10.19227/jzar.v6i2.317.
  • De Groot R, Brander L, van der Ploeg S, Costanza R, Bernard F, Braat L, Christie M, Crossman N, Ghermandi A, Hein L, et al. 2012. Global estimates of the value of ecosystems and their services in monetary units. Ecosystem Services. 1:50–61. doi:10.1016/j.ecoser.2012.07.005.
  • dela Cruz DW, Harrison PL. 2017. Enhanced larval supply and recruitment can replenish reef corals on degraded reefs. Scientific Reports. 7:13985. [13 p.]. doi:10.1038/s41598-017-14546-y.
  • dela Cruz DW, Rinkevich B, Gomez ED, Yap HT. 2015. Assessing an abridged nursery phase for slow growing corals used in coral restoration. Ecological Engineering. 84:408–415. doi:10.1016/j.ecoleng.2015.09.042.
  • dela Cruz DW, Villanueva RD, Baria MVB. 2014. Community-based, low-tech method of restoring a lost thicket of Acropora corals. ICES Journal of Marine Science. 71:1866–1875. doi:10.1093/icesjms/fst228.
  • Delbeek JC. 2008. Collecting and shipping live coral: techniques, tips and headaches. In: Leewis RJ, Janse M, editors. Advances in coral husbandry in public Aqualiums. Vol. 2. Arnhem: Burgers’ Zoo; p. 363–373.
  • Dennison WC, Barnes DJ. 1988. Effect of water motion on coral photosynthesis and calcification. Journal of Experimental Marine Biology and Ecology. 115:67–77. doi:10.1016/0022-0981(88)90190-6.
  • Dizon RM, Edwards AJ, Gomez ED. 2008. Comparison of three types of adhesives in attaching coral transplants to clam shell substrates. Aquatic Conservation: Marine and Freshwater Ecosystems. 18:1140–1148. doi:10.1002/aqc.944.
  • Doropoulos C, Babcock RC. 2018. Harnessing connectivity to facilitate coral restoration. Frontiers in Ecology and the Environment. 16:558–559. doi:10.1002/fee.1975.
  • Doropoulos C, Elzinga J, ter Hofstede R, van Koningsveld M, Babcock RC. 2019. Optimizing industrial-scale coral reef restoration: comparing harvesting wild coral spawn slicks and transplanting gravid adult colonies. Restoration Ecology. 27:758–767.
  • Doropoulos C, Gómez-Lemos LA, Babcock RC. 2018. Exploring variable patterns of density-dependent larval settlement among corals with distinct and shared functional traits. Coral Reefs. 37:25–29. doi:10.1007/s00338-017-1629-y.
  • Doropoulos C, Ward S, Marshell A, Diaz-Pulido G, Mumby PJ. 2012. Interactions among chronic and acute impacts on coral recruits: the importance of size-escape thresholds. Ecology. 93:2131–2138. doi:10.1890/12-0495.1.
  • Drury C, Manzello D, Lirman D. 2017. Genotype and local environment dynamically influence growth, disturbance response and survivorship in the threatened coral, Acropora cervicornis. PLoS One. 12:e0174000. [21 p.]. doi:10.1371/journal.pone.0174000.
  • Edwards AJ, editor. 2010. Reef rehabilitation manual. St. Lucia, Australia: Coral Reef Targeted Research & Capacity Building for Management Program. [ii+166 p.].
  • Edwards AJ, Clark S. 1999. Coral transplantation: a useful management tool or misguided meddling? Marine Pollution Bulletin. 37:474–487. doi:10.1016/S0025-326X(99)00145-9.
  • Edwards AJ, Gomez ED. 2007. Reef restoration concepts and guidelines: making sensible management choices in the face of uncertainty. St. Lucia, Australia: Coral Reef Targeted Research & Capacity Building for Management Program. [iv+38 p.].
  • Edwards AJ, Guest JR, Heyward AJ, Villanueva RD, Baria MV, Bollozos ISF, Golbuu Y. 2015. Direct seeding of mass-cultured coral larvae is not an effective option for reef rehabilitation. Marine Ecology Progress Series. 525:105–116. doi:10.3354/meps11171.
  • Edwards AJ, Guest JR, Rinkevich B, Omori M, Iwao K, Levy G, Shaish L. 2010. Evaluating costs of restoration. In: Edwards AJ, editor. Reef rehabilitation manual. St. Lucia, Australia: Coral Reef Targeted Research & Capacity Building for Management Program; p. 113–26.
  • Epstein N, Bak RPM, Rinkevich B. 2001. Strategies for gardening denuded coral reef areas: the applicability of using different types of coral material for reef restoration. Restoration Ecology. 9:432–442. doi:10.1046/j.1526-100X.2001.94012.x.
  • Fabricius KE. 2005. Effects of terrestrial runoff on the ecology of corals and coral reefs: review and synthesis. Marine Pollution Bulletin. 50:125–146. doi:10.1016/j.marpolbul.2004.11.028.
  • Feliciano GNR, Mostrales TPI, Acosta AKM, Luzon K, Bangsal JCA, Licuanan WY. 2018. Is gardening corals of opportunity the appropriate response to reverse Philippine reef decline? Restoration Ecology. 26:1091–1097. doi:10.1111/rec.12683.
  • Ferse SCA, Nugues MM, Romatzki SBC, Kunzmann A. 2013. Examining the use of mass transplantation of brooding and spawning corals to support natural coral recruitment in Sulawesi/Indonesia. Restoration Ecology. 21:745–754. doi:10.1111/rec.12004.
  • Fisher R, O’Leary RA, Low-Choy S, Mengersen K, Knowlton N, Brainard RE, Caley MJ. 2015. Species richness on coral reefs and the pursuit of convergent global estimates. Current Biology. 25:500–505. doi:10.1016/j.cub.2014.12.022.
  • Fisheries Agency. 2019. Manual for coral restoration using sexual propagation techniques (revision). Japan: Fisheries Agency. [208 p]. Japanese.
  • Forrester GE, Ferguson MA, O’Connell-Rodwell CE, Jarecki LL. 2014. Long-term survival and colony growth of Acropora palmata fragments transplanted by volunteers for restoration. Aquatic Conservation: Marine and Freshwater Ecosystems. 24:81–91. doi:10.1002/aqc.2374.
  • Forsman ZH, Kimokeo BK, Bird CE, Hunter CL, Toonen RJ. 2012. Coral farming: effects of light, water motion and artificial foods. Journal of the Marine Biological Association of the United Kingdom. 92:721–729. doi:10.1017/S0025315411001500.
  • Forsman ZH, Page CA, Toonen RJ, Vaughan D. 2015. Growing coral larger and faster: micro-colony-fusion as a strategy for accelerating coral cover. PeerJ. 3:e1313. [16 p.]. doi:10.7717/peerj.1313.
  • Forsman ZH, Rinkevich B, Hunter CL. 2006. Investigating fragment size for culturing reef-building corals (Porites lobata and P. compressa) in ex situ nurseries. Aquaculture. 261:89–97. doi:10.1016/j.aquaculture.2006.06.040.
  • Fox HE, Haisfield K. 2010. Substrate stabilization to promote recovery of reefs damaged by blast fishing. In: Edwards AJ, editor. Reef rehabilitation manual. St. Lucia, Australia: Coral Reef Targeted Research & Capacity Building for Management Program; p. 137–139.
  • Fox HE, Mous P, Pet J, Muljadi A, Caldwell R. 2005. Experimental assessment of coral reef rehabilitation following blast fishing. Conservation Biology. 19:98–107. doi:10.1111/j.1523-1739.2005.00261.x.
  • Fujimori S, Kobori S. 2000. Characteristics and available range of soil hardening chemical of mug white. Journal of the Agricultural Engineering Society, Japan. 68:1297–1300. Japanese.
  • Fujiwara S, Omori M. 2004. Transplantation of whole coral colonies and of coral reefs. In: Omori M, Fujiwara S, editors. Manual for restoration and remediation of coral reefs. Tokyo: Nature Conservation Bureau, Ministry of the Environment, Japan; p. 44–49.
  • Garrison V, Ward G. 2012. Transplantation of storm-generated coral fragments to enhance Caribbean coral reefs: a successful method but not a solution. Revista de Biología Tropical. 60:59–70. doi:10.15517/rbt.v60i0.19845.
  • Gilmour J. 1999. Experimental investigation into the effects of suspended sediment on fertilisation, larval survival and settlement in a scleractinian coral. Marine Biology. 135:451–462. doi:10.1007/s002270050645.
  • Gilmour P, Smith ID, Heyward AJ, Baird AH, Pratchett MS. 2013. Recovery of an isolated coral reef system following severe disturbance. Science. 340:69–71. doi:10.1126/science.1232310.
  • Gleason DF, Hofmann DK. 2011. Coral larvae: from gametes to recruits. Journal of Experimental Marine Biology and Ecology. 408:42–57. doi:10.1016/j.jembe.2011.07.025.
  • Goergen EA, Gilliam DW. 2018. Outplanting technique, host genotype, and site affect the initial success of outplanted Acropora cervicornis. PeerJ. 6:e4433. [20 p.]. doi:10.7717/peerj.4433.
  • Goldberg WM. 2018. Coral food, feeding, nutrition, and secretion: a review. In: Kloc M, Kubiak JZ, editors. Marine organisms as model systems in biology and medicine, results and problems in cell differentiation book 65? Cham: Springer; p. 377–417.
  • Gomez E, Dizon R, Edwards A. 2010. Methods of coral transplantation. In: Edwards AJ, editor. Reef rehabilitation manual. St. Lucia, Australia: Coral Reef Targeted Research & Capacity Building for Management Program; p. 99–112.
  • Gomez E, Yap HT, Cabaitan PC, Dizon RM. 2011. Successful transplantation of a fragmenting coral, Montipora digitata, for reef rehabilitation. Coastal Management. 39:556–574. doi:10.1080/08920753.2011.600240.
  • Gómez-Lemos LA, Doropoulos C, Bayraktarov E, Diaz-Pulido G. 2018. Coralline algal metabolites induce settlement and mediate the inductive effect of epiphytic microbes on coral larvae. Scientific Reports. 8:17557. [17 p.]. doi:10.1038/s41598-018-35206-9.
  • Goreau T. 2014. Electrical stimulation greatly increases settlement, growth, survival, and stress resistance of marine organisms. Natural Resources. 5:527–537. doi:10.4236/nr.2014.510048.
  • Goreau TJ, Cervino JM, Pollna R. 2004. Increased zooxanthellae numbers and mitotic index in electrically stimulated corals. Symbiosis. 37:107–120.
  • Graham EM, Baird AH, Connolly NA. 2008. Survival dynamics of scleractinian coral larvae and implications for dispersal. Coral Reefs. 27:529–539. doi:10.1007/s00338-008-0361-z.
  • Guest JR, Baird AH, Maynard JA, Muttaqin E, Edwards AJ, Campbell SJ, Yewdall K, Affendi YA, Chou LM. 2012. Contrasting patterns of coral bleaching susceptibility in 2010 suggest an adaptive response to thermal stress. PLoS One. 7(3):e33353. [8 p.]. doi:10.1371/journal.pone.0033353.
  • Guest JR, Baria MV, Gomez ED, Heyward AJ, Edwards AJ. 2014. Closing the circle: is it feasible to rehabilitate reefs with sexually propagated corals? Coral Reefs. 33:45–55. doi:10.1007/s00338-013-1114-1.
  • Guest JR, Dizon RM, Edwards AJ, Franco C, Gomez ED. 2009. How quickly do fragments of coral ‘self-attach’ after transplantation? Restoration Ecology. 17:1–9. doi:10.1111/j.1526-100X2009.00562.x.
  • Guest JR, Heyward AJ, Omori M, Iwao I, Morse ANC, Boch C. 2010. Rearing coral larvae for reef rehabilitation. In: Edwards AJ, editor. Reef rehabilitation manual. St. Lucia, Australia: Coral Reef Targeted Research & Capacity Building for Management Program; p. 73–92.
  • Guzman HM. 1991. Restoration of coral reefs in Pacific Costa Rica. Conservation Biology. 5:189–194. doi:10.1111/j.1523-1739.1991.tb00123.x.
  • Guzman HM. 1994. Restoration of eastern Pacific coral reefs (Costa Rica, Panama, and Colombia): an approach to maintain regional biodiversity. Final report to World Wildlife Fund–Biodiversity Support Program.
  • Harrison P, Wallace C. 1990. Reproduction, dispersal and recruitment of scleractinian corals. In: Dubinsky Z, editor. Ecosystems of the world. Vol. 25. New York: Elsevier; p. 133–207.
  • Hatta M. 2005. An affair in the morning after mass spawning. Coral Reefs. 24:102. doi:10.1007/s00338-004-0453-3.
  • Hatta M, Iwao K, Taniguchi H, Omori M. 2004. Restoration technology using sexual reproduction. In: Omori M, Fujiwara S, editors. Manual for restoration and remediation of coral reefs. Tokyo: Nature Conservation Bureau, Ministry of the Environment, Japan; p. 14–28.
  • Hayashibara T, Iwao I, Omori M. 2004. Induction and control of spawning in Okinawan staghorn corals. Coral Reefs. 23:406–409. doi:10.1007/s00338-004-0406-x.
  • Heeger T, Sotto F, editors. 2000. Coral farming: a tool for reef rehabilitation and community ecotourism. German Ministry of Environment, German Technical Cooperation and Tropical Ecology Program (GTZ-TÖB), printed in the Philippines. [94 p].
  • Heeger T, Sotto FB, Gatus JL, Laron C. 2001. Community-based coral farming for reef rehabilitation, biodiversity conservation and as a livelihood option for fisherfolk. In: Proceedings of the Seminar-Workshop on Aquaculture Development in Southeast Asia; SEAFDEC Aquaculture Department, Iloilo City, Philippines. p. 133–145.
  • Hein MY, Willis BL, Beeden R, Birtles A. 2017. The need for broader ecological and socioeconomic tools to evaluate the effectiveness of coral restoration programs. Restoration Ecology. 25:873–883. doi:10.1111/rec.12580.
  • Heyward AJ, Babcock RC. 1986. Self- and cross-fertilization in scleractinian corals. Marine Biology. 90:191–195. doi:10.1007/BF00569127.
  • Heyward AJ, Negri AP. 1999. Natural inducers for coral larval metamorphosis. Coral Reefs. 18:273–279. doi:10.1007/s003380050193.
  • Heyward AJ, Smith LD, Rees M, Field SN. 2002. Enhancement of coral recruitment by in situ mass culture of coral larvae. Marine Ecology Progress Series. 230:113–118. doi:10.3354/meps230113.
  • Higa Y, Omori M. 2014. Production of coral colonies for outplanting using a unique rearing method of donor colonies at Onna Village, Okinawa, Japan. Galaxea, Journal of Coral Reef Studies. 16:19–20. doi:10.3755/galaxea.16.19.
  • Higa Y, Shinzato C, Zayasu Y, Nagata T, Kubo H. 2017. Restoration efforts for coral reefs by fishery cooperatives∼A case in Onna Village, Okinawa∼. Journal of the Japanese Coral Reef Society. 19:119–128. Japanese. doi:10.3755/jcrs.19.119.
  • Higa Y, Shinzato C, Zayasu Y, Nagata T, Nakamura R, Janadou S, Omori M. 2018. Gradual development of active restoration methodologies for coral reefs using asexual reproduction in the coral reef preservation and rehabilitation project by Okinawa Prefectural Government, Japan. Journal of the Japanese Coral Reef Society. 20:1–17. Japanese.
  • Highsmith RC. 1982. Reproduction by fragmentation in corals. Marine Ecology Progress Series. 7:207–226. doi:10.3354/meps007207.
  • Hilbertz W. 1979. Electrodeposition of minerals in sea water: experiments and applications. IEEE Journal of Oceanic Engineering. 4:94–113. doi:10.1109/JOE.1979.1145428.
  • Hilbertz WH, Goreau TJ. 1996. Inventors; method for enhancing the growth of aquatic organisms and structure created thereby. 1996 Aug 6. United States patent US 5,543,034.
  • Horoszowski-Fridman YB, Izhaki I, Rinkevich B. 2011. Engineering of coral reef larval supply through transplantation of nursery-farmed gravid colonies. Journal of Experimental Marine Biology and Ecology. 399:162–166. doi:10.1016/j.jembe.2011.01.005.
  • Horoszowski-Fridman YB, Rinkevich B. 2016. Restoration of the animal forests: harnessing silviculture biodiversity concepts for coral transplantation. In: Rossi S, editor. Marine animal forests. Switzerland: Springer; p. 1313–1335.
  • Humanes A, Fink A, Willis BL, Fabricius KE, de Beer K, Negri AP. 2017. Effects of suspended sediments and nutrient enrichment on juvenile corals. Marine Pollution Bulletin. 125:166–175. doi:10.1016/j.marpolbul.2017.08.003.
  • Hunter CL, Evans CW. 1995. Coral reefs in Kaneohe Bay, Hawaii: two centuries of western influence and two decades of data. Bulletin of Marine Science. 57:501–515.
  • Isomura N, Baba Y, Nagata S, Nonaka M, Yamamoto HH. 2013a. The relationship between genetic similarity and reproductive success in the branching coral Acropora intermedia. Marine Biology Research. 9:181–188. doi:10.1080/17451000.2012.707321.
  • Isomura N, Iwao K, Fukami H. 2013b. Possible natural hybridization of two morphologically distinct species of Acropora (Cnidaria, Scleractinia) in the Pacific: fertilization and larval survival rates. PLoS One. 8:e56701. [8 p]. doi:10.1371/journal.pone.0056701.
  • Iwao K, Fujisawa T, Hatta T. 2002. A cnidarian neuropeptide of the GLWamide family induces metamorphosis of reef-building corals in the genus Acropora. Coral Reefs. 21:127–129. doi:10.1007/s00338-002-0219-8.
  • Iwao K, Omori M, Taniguchi H, Tamura M. 2010. Transplanted Acropora tenuis (Dana) spawned first in their life 4 years after culture from eggs. Galaxea, Journal of Coral Reef Studies. 12:47. doi:10.3755/galaxea.12.47.
  • Iwao K, Wada N, Ohdera A, Omori M. 2014. How many donor colonies should be cross-fertilized for nursery farming of sexually propagated corals? Natural Resources. 5:521–526. doi:10.4236/nr.2014.510047.
  • Johnson ME, Lustic C, Bartels E, Baums IB, Gilliam DS, Larson L, Lirman D, Miller MW, Nedimeyer K, Schopmeyer S. 2011. Caribbean Acropora restoration guide: best practices for propagation and population enhancement. Arlington (VA): Nature Conservancy. [vii+54 p.].
  • Jokiel PL. 1978. Effects of water motion on reef corals. Journal of Experimental Marine Biology and Ecology. 35:87–97. doi:10.1016/0022-0981(78)90092-8.
  • Jones AM, Berkelmans R. 2011. Tradeoffs to thermal acclimation: energetics and reproduction of a reef coral with heat tolerant Symbiodinium type-D. Journal of Marine Biology. 2011. Article ID 185890. [12 p.]. doi:10.1155/2011/185890.
  • Kihara K, Hosokawa T, Yamamoto S, Koibuchi Y, Kondo Y, Yamamoto H, Taniguchi H. 2013a. Effects of current density on growth of corals. Abstract of the 16th Annual Meetings of Japanese Coral Reef Society. Japanese.
  • Kihara K, Taniguchi H, Koibuchi Y, Yamamoto S, Kondo Y, Hosokawa Y. 2013b. Enhancing settlement and growth of corals using feeble electrochemical method. Galaxea, Journal of Coral Reef Studies. 15(Suppl):323–329. doi:10.3755/galaxea.15.323.
  • Kilbane D, Graham B, Mlcahy R, Onder A, Pratt M. 2008. Coral relocation for impact mitigation in northern Qatar. In: Proceedings of the 11th International Coral Reef Symposium; Fort Lauderdale, FL. Vol. 2. p. 1253–1257.
  • Kinzie RA III, Jokiel PL, York R. 1984. Effects of light of altered spectral composition on coral zooxanthellae associations and on zooxanthellae in vitro. Marine Biology. 78:239–248. doi:10.1007/BF00393009.
  • Kojis BL, Quinn NJ. 1985. Puberty in Goniastrea faculus: age or size limited? In: Proceedings of the 5th International Coral Reef Congress; Tahiti, French Polynesia. p. 289–293.
  • Koop K, Booth D, Broadbent A, Brodie J, Bucher D, Capone D, Dennison W, Erdmann M, Harrison P, Hoegh-Guldberg O, et al. 2001. ENCORE: the effect of nutrient enrichment on coral reefs. Synthesis of results and conclusions. Marine Pollution Bulletin. 42:91–120. doi:10.1016/S0025-326X(00)00181-8.
  • Kotb MMA. 2016. Coral translocation and farming as mitigation and conservation measures for coastal development in the Red Sea: Aqaba case study, Jordan. Environmental Earth Sciences. 75:1–8. doi:10.1007/s12665-016-5304-3.
  • Krueger T, Horwitz N, Bodin J, Giovani ME, Escrig S, Meibom SE, Fine M. 2017. Common reef-building coral in the northern Red Sea resistant to elevated temperature and acidification. Royal Society Open Science. 4:170038. [13 p.]. doi:10.1098/rsos.170038.
  • Kuanui O, Chavanich S, Viyakarn V, Park HS, Omori M. 2016. Feeding behaviors of three tropical scleractinian corals in captivity. Tropical Zoology. 29:1–9. doi:10.1080/03946975.2015.1119006.
  • Ladd MC, Miller MW, Hunt JH, Sharp WC, Burkepile DE. 2018. Harnessing ecological processes to facilitate coral restoration. Frontiers in Ecology and the Environment. 16:239–247. doi:10.1002/fee.1792.
  • LaJeunesse TC, Parkinson JE, Gabrielson PW, Jeong HJ, Reimer JD, Voolstra CR, Santos SR. 2018. Systematic revision of Symbiodiniaceae highlights the antiquity and diversity of coral endosymbionts. Current Biology. 28:2570–2580. doi:10.1016/j.cub.2018.07.008.
  • Latypov YY. 2006. Transplantation and cultivation of fragments of coral colonies of various scleractinian species on a reef in Vietnam. Russian Journal of Marine Biology. 32:375–381. doi:10.1134/S1063074006060071.
  • Leal MC, Ferrier-Pagès C, Petersen D, Osinga R. 2014. Coral aquaculture: applying scientific knowledge to ex situ production. Reviews in Aquaculture. 6:1–18. doi:10.1111/raq.12087.
  • Levy G, Shaish L, Haim A, Rinkevich B. 2010. Mid-water rope nursery—testing design and performance of a novel reef restoration instrument. Ecological Engineering. 36:560–569. doi:10.1016/j.ecoleng.2009.12.003.
  • Liñán-Cabello MA, Flores-Ramirez LA, Laurel-Sandoval MA, Mendoza EG, Santiago OS, Delgadillo-Nuño MA. 2011. Acclimation in Pocillopora spp. during a coral restoration program in Carrizales Bay, Colima, Mexico. Marine and Freshwater Behaviour and Physiology. 44:61–72. doi:10.1080/10236244.2010.537440.
  • Lindahl U. 1998. Low tech rehabilitation of degraded coral reefs through transplantation of staghorn corals. Ambio. 27:645–650.
  • Lindahl U. 2003. Coral reef rehabilitation through transplantation of staghorn corals: effects of artificial stabilization and mechanical damages. Coral Reefs. 22:217–233. doi:10.1007/s00338-003-0305-6.
  • Lirman D. 2001. Competition between macroalgae and corals: effects of herbivore exclusion and increased algal biomass on coral survivorship and growth. Coral Reefs. 19:392–399. doi:10.1007/s003380000125.
  • Lirman D, Schopmeyer S, Galvam V, Drury C, Baker AC, Baums IB. 2014. Growth dynamics of the threatened Caribbean staghorn coral Acropora cervicornis: influence of host genotype, symbiont identity, colony size, and environmental setting. PLoS One. 9:e107253. [9 p.]. doi:10.1371/journal.pone.0107253.
  • Lirman D, Thyberg T, Herlan J, Hill C, Youg-Lahiff C, Schopmeyer S, Huntington B, Santos R, Drury C. 2010. Propagation of the threatened staghorn coral Acropora cervicornis: methods to minimize the impacts of fragment collection and maximize production. Coral Reefs. 29:729–735. doi:10.1007/s00338-010-0621-6.
  • Lohr KE, Bejarano S, Lirman K, Schopmeyer S, Manfrino C. 2015. Optimizing the productivity of a coral nursery focused on staghorn coral Acropora cervicornis. Endangered Species Research. 27:243–250. doi:10.3354/esr00667.
  • Mason B, Beard M, Miller MW. 2011. Coral larvae settle at a higher frequency on red surfaces. Coral Reefs. 30:667–676. doi:10.1007/s00338-011-0739-1.
  • Mass T, Genin A, Shavit U, Grinstein M, Tchernov D. 2010. Flow enhances photosynthesis in marine benthic autotrophs by increasing the efflux of oxygen from the organism to the water. Proceedings of the National Academy of Sciences. 107:2527–2531. doi:10.1073/pnas.0912348107.
  • Mbije NEJ, Spanier E, Rinkevich B. 2013. A first endeavour in restoring denuded, post-bleached reefs in Tanzania. Estuarine, Coastal and Shelf Science. 128:41–51. doi:10.1016/j.ecss.2013.04.021.
  • Miller MW. 2014. Post-settlement survivorship in two Caribbean broadcasting corals. Coral Reefs. 33:1041–1046. doi:10.1007/s00338-014-1177-7.
  • Moeller M, Nietzer S, Schils T, Schupp PJ. 2017. Low sediment loads affect survival of coral recruits: the first weeks are crucial. Coral Reefs. 36:39–49. doi:10.1007/s00338-016-1513-1.
  • Mohammed TA, Aa H, Nf H, Ma EE, Khm EMI. 2012. Coral rehabilitation using steel slag as a substrate. International Journal of Environmental Protection. 2:1–5.
  • Montoya-Maya PH, Smit KP, Burr AJ, Frias-Torres S. 2016. Large-scale coral reef restoration could assist natural recovery in Seychelles, Indian Ocean. Nature Conservation. 16:1–17. doi:10.3897/natureconservation.16.8604.
  • Morse ANC, Iwao K, Baba M, Shimoike K, Hayashibara T, Omori M. 1996. An ancient chemosensory mechanism brings new life to coral reefs. The Biological Bulletin. 191:149–154. doi:10.2307/1542917.
  • Mote Marine Laboratory and Aqualium. 2019. https://mote.org/research.
  • Muko S, Iwasa Y. 2011a. Optimal choice of species and size class for transplanting coral community. Journal of Theoretical Biology. 273:130–137. doi:10.1016/j.jtbi.2010.12.032.
  • Muko S, Iwasa Y. 2011b. Long-term effect of coral transplantation: restoration goals and the choice of species. Journal of Theoretical Biology. 280:127–138. doi:10.1016/j.jtbi.2011.04.012.
  • Nakamura R, Ando W, Yamamoto H, Kitano M, Sato A, Nakamura M, Kayanne H, Omori M. 2011. Corals mass-cultured from eggs and transplanted as juveniles to their native, remote coral reef. Marine Ecology Progress Series. 436:161–168. doi:10.3354/meps09257.
  • Nakamura T, van Woesik R. 2001. Water-flow rates and passive diffusion partially explain differential survival of corals during the 1998 bleaching event. Marine Ecology Progress Series. 212:301–304. doi:10.3354/meps212301.
  • Nakamura T, Yamasaki H. 2008. Flicker light effects on photosynthesis of symbiotic algae in the reef-building coral Acropora digitifera (Cnidaria: Anthozoa: Scleractinia). Pacific Science. 62:341–350. doi:10.2984/1534-6188(2008)62[341:FLEOPO]2.0.CO;2.
  • Nakamura T, Yamasaki H, van Woesik R. 2003. Water flow facilitates recovery from bleaching in the coral Stylophora pistillata. Marine Ecology Progress Series. 256:287–291. doi:10.3354/meps256287.
  • Nedimyer K, Gaines K, Roach S. 2011. Coral Tree Nursery©: an innovative approach to growing corals in an ocean-based field nursery. International Journal of the Bioflux Society. 4:442–446.
  • Negri AP, Webster NS, Hill RT, Heyward AJ. 2001. Metamorphosis of broadcast spawning corals in response to bacteria isolated from crustose algae. Marine Ecology Progress Series. 223:121–131. doi:10.3354/meps223121.
  • Nozawa Y. 2008. Micro-crevice structure enhances coral spat survivorship. Journal of Experimental Marine Biology and Ecology. 367:127–130. doi:10.1016/j.jembe.2008.09.004.
  • Nozawa Y. 2012. Effective size of refugia for coral spat survival. Journal of Experimental Marine Biology and Ecology. 413:145–149. doi:10.1016/j.jembe.2011.12.008.
  • Nozawa Y, Isomura N, Fukami H. 2015. Influence of sperm dilution and gamete contact time on the fertilization rate of scleractinian corals. Coral Reefs. 34:1199–1206. doi:10.1007/s00338-015-1338-3.
  • Nozawa Y, Tokeshi M, Nojima S. 2006. Reproduction and recruitment of scleractinian corals in a high-latitude coral community, Amakusa, southwestern Japan. Marine Biology. 149:1047–1058. doi:10.1007/s00227-006-0285-5.
  • O’Donnell KE, Lohr JE, Bartels E, Patterson JT. 2017. Evaluation of staghorn coral (Acropora cervicornis, Lamarck 1816) production techniques in an ocean-based nursery with consideration of coral genotype. Journal of Experimental Marine Biology and Ecology. 487:53–58. doi:10.1016/j.jembe.2016.11.013.
  • Okada W, Abu Y, Suzuki G, Hayashibara T, Ando W, Ishioka N, Uchida S, Nakamura K. 2016. Development of a device for in situ collecting, rearing, and seeding coral larvae. In: Proceedings of the 2017 Annual Meeting of Japanese Society of Fisheries Engineering. p. 31–34. Japanese.
  • Okamoto M, Nojima S, Fujiwara S, Furushima Y. 2008. Development of ceramic settlement devices for coral reef restoration using in situ sexual reproduction of corals. Fisheries Science. 74:1245–1253. doi:10.1111/j.1444-2906.2008.01649.x.
  • Okinawa Prefecture Government. 2017. Okinawa Prefecture coral reef conservation and rehabilitation project. Summary report. [347 p.]. Japanese.
  • Okubo N. 2003. Appropriate artificial substrates for coral transplantation. Midoriishi. (14):31–33. Japanese.
  • Okubo N. 2004. Restoration technology using asexual reproduction. In: Omori M, Fujiwara S, editors. Manual for restoration and remediation of coral reefs. Tokyo: Nature Conservation Bureau, Ministry of the Environment, Japan; p. 34–40.
  • Okubo N, Motokawa T, Omori M. 2007. When fragmented coral spawn? Effect of size and timing on survivorship and fecundity of fragmentation in Acropora formosa. Marine Biology. 151:353–363. doi:10.1007/s00227-006-0490-2.
  • Okubo N, Onuma A. 2010. A mixture of fragments and seedlings is environmentally optimal for coral transplantation. Journal of the Japanese Coral Reef Society. 12:69–80. Japanese. doi:10.3755/jcrs.12.69.
  • Okubo N, Onuma A. 2015. An economic and ecological consideration of commercial coral transplantation to restore the marine ecosystem in Okinawa, Japan. Ecosystem Services. 11:39–44. doi:10.1016/j.ecoser.2014.07.009.
  • Okubo N, Taniguchi H, Motokawa T. 2005. Successful methods for transplanting fragments of Acropora formosa and Acropora hyacinthus. Coral Reefs. 24:333–342. doi:10.1007/s00338-005-0496-0.
  • Okubo N, Taniguchi H, Omori M. 2009. Sexual reproduction in transplanted coral fragments of Acropora nasuta. Zoological Studies. 48:442–447.
  • Oliver JK, Babcock RC. 1992. Aspects of the fertilization ecology of broadcast spawning corals: sperm dilution effects and in situ measurements of fertilization. The Biological Bulletin. 183:409–417. doi:10.2307/1542017.
  • Omija T. 1987. Survey on pollution by reddish soil in Okinawa – a convenient measuring method for reddish soil in sediment and reddish soil levels in Okinawa. Annual Report of Okinawa Prefectural Institute of Public Health. 20:100–110. Japanese.
  • Omija T. 2004. Terrestrial inflow of soils and nutrients. In: Ministry of the Environment and Japanese Coral Reef Society, editors. Coral reefs of Japan. Tokyo, Japan. p. 64–68.
  • Omori M. 2005. Success of mass culture of Acropora corals from egg to colony in open water. Coral Reefs. 24:563. doi:10.1007/s00338-005-0030-4.
  • Omori M. 2011. Degradation and restoration of coral reefs: experience in Okinawa, Japan. Marine Biology Research. 7:3–12. doi:10.1080/17451001003642317.
  • Omori M. 2016a. The ceramic coral settlement device (Okamoto et al. 2008) is not the best ‘coral babe magnet’: consideration on superior substratum for settlement of coral larvae. Journal of the Japanese Coral Reef Society. 18:1–9. Japanese. doi:10.3755/jcrs.18.1.
  • Omori M. 2016b. A goal for >40% coral survival rate after 3 years out-planting: a reasonable requirement and prospect of active reef restoration. Midoriishi. (27):1–4. Japanese.
  • Omori M, Aota T, Watanuki A, Taniguchi H. 2004. Development of coral reef restoration method by mass culture, transportation and settlement of coral larvae. In: Yukihira H, editor. Proceedings of Palau Coral Reef Conference. Koror, Palau: Palau International Coral Reef Center. 04-001; p. 31–38.
  • Omori M, Fujiwara S, editors. 2004. Manual for restoration and remediation of coral reefs. Tokyo: Nature Conservation Bureau, Ministry of the Environment, Japan. [84 p.].
  • Omori M, Fukami H, Kobinata H, Hatta M. 2001. Significant drop of fertilization of Acropora corals in 1999: an after-effect of heavy coral bleaching? Limnology and Oceanography. 46:704–706. doi:10.4319/lo.2001.46.3.0704.
  • Omori M, Higa Y, Shinzato C, Zayasu Y, Nagata T, Nakamura R, Yokokura A, Janadou S. 2016. Development of active restoration methodologies for coral reefs using asexual reproduction in Okinawa, Japan. In: Proceedings of the 13th International Coral Reef Symposium; Honolulu, HA. p. 369–387.
  • Omori M, Iwao K. 2009. A novel substrate (the ‘coral peg’) for deploying sexually propagated corals for reef restoration. Galaxea, Journal of Coral Reef Studies. 11:39. doi:10.3755/galaxea.11.39.
  • Omori M, Iwao K. 2014. Methods of farming sexually propagated corals and outplanting for coral reef rehabilitation; with list of references for coral reef rehabilitation through active restoration measure. Okinawa: Akajima Marine Science Laboratory. [63 p.]. http://www.amsl.or.jp.
  • Omori M, Iwao K, Tamura M. 2008. Growth of transplanted Acropora tenuis 2 years after egg culture. Coral Reefs. 27:165. doi:10.1007/s00338-007-0312-0.
  • Omori M, Okubo N. 2004. Previous research and undertaking of coral reefs restoration. In: Omori M, Fujiwara S, editors. Manual for restoration and remediation of coral reefs. Tokyo: Nature Conservation Bureau, Ministry of the Environment, Japan; p. 3–13.
  • Onaka S, Prasetyo R, Endo S, Yoshii I. 2013. Large-scale coral transplantation in artificial substrates at a shallow lagoon in Kuta Beach, Bali, Indonesia. Galaxea, Journal of Coral Reef Studies. 15(Suppl):336–342. doi:10.3755/galaxea.15.336.
  • Osinga R, Schutter M, Griffioen B, Wijffels RH, Verretj JAJ, Shafir S, Taruffi M, Lavorano S, Gili C. 2011. The biology and economics of coral growth. Marine Biotechnology. 13:658–671. doi:10.1007/s10126-011-9382-7.
  • Osinga R, Schutter M, Wijgerde T, Rinkevich B, Shafir S, Shpigel M, Luna GM, Danovaro R, Bongiorni L, Deutsch A, et al. 2012. The CORALZOO project: a synopsis of four years of public aquarium science. Journal of the Marine Biological Association of the United Kingdom. 92(4):753–768. doi:10.1017/S0025315411001779.
  • Palumbi SR, Barshis DJ, Traylor-Knowles N, Bay RA. 2014. Mechanisms of reef coral resistance to future climate change. Science. 344:895–898. doi:10.1126/science.1251336.
  • Perez K III, Rodgers KS, Jokiel PL, Lager C, Lager D. 2014. Effects of terrigenous sediment on settlement and survival of the reef coral Pocillopora damicornis. PeerJ. 2:e387. [11 p.]. doi:10.7717/peerj.387.
  • Petersen D, Hatta M, Laterveer M, Van Bergen D. 2005. Ex situ transportation of coral larvae for research, conservation and aquaculture. Coral Reefs. 24:510–513. doi:10.1007/s00338-005-0498-y.
  • Petersen D, Wietheger A, Laterveer M. 2008. Influence of different food sources on the initial development of sexual recruits of reef building corals in aquaculture. Aquaculture. 277:174–178. doi:10.1016/j.aquaculture.2008.02.034.
  • Piniak GA, Brown EK. 2008. Growth and mortality of coral transplants (Pocillopora damicornis) along a range of sediment influence in Maui, Hawai’i. Pacific Science. 62:39–55. doi:10.2984/1534-6188(2008)62[39:GAMOCT]2.0.CO;2.
  • Plucer-Rosario GP, Randall RH. 1987. Preservation of rare coral species by transplantation: an examination of their recruitment and growth. Bulletin of Marine Science. 41:585–593.
  • Pollock FJ, Katz SM, van de Water JAJM, Davies SW, Hein M, Torda G, Kats MV, Beltran VH, Buerger P, Puill-Stephan E, Abrego D, et al. 2017. Coral larvae for restoration and research: a large-scale method for rearing Acropora millepora larvae, inducing settlement, and establishing symbiosis. PeerJ. 5:e3732. [21 p.]. doi:10.7717/peerj.3732.
  • Poquita-Du RC, Toh KB, Toh TC, Ng CSL, Taira D, Loke HX, Afiq-Rosli L, Chou LM, Song T, Cabaitan P. 2017. Effects of nursery table slope orientation on coral survival and growth. Marine Biology Research. 13:975–982. doi:10.1080/17451000.2017.1322703.
  • Pratchett MS, McCowan D, Maynard JA, Heron SF. 2013. Changes in bleaching susceptibility among corals subject to ocean warming and recurrent bleaching in Moorea, French Polynesia. PLoS One. 8:e70443. [10 p.]. doi:10.1371/journal.pone.0070443.
  • Precht WF, editor. 2006. Coral restoration handbook. Boca Raton (FL): CRC Press. [363 p.].
  • Puill-Stephan E, van Oppen M, Pichavant-Rafini K, Willis B. 2012. High potential for formation and persistence of chimeras following aggregated larval settlement in the broadcast spawning coral, Acropora millepora. Proceedings of the Royal Society B: Biological Sciences. 279:699–708. doi:10.1098/rspb.2011.1035.
  • Quan-Young LI, Espinoza-Avalos J. 2006. Reduction of zooxanthellae density, chlorophyll a concentration, and tissue thickness of the coral Montastrea faveolata (Scleractinia) when competing with mixed turf algae. Limnology and Oceanography. 51:1159–1166. doi:10.4319/lo.2006.51.2.1159.
  • Quigley KM, Bay LK, Willis BL. 2018. Leveraging new knowledge of Symbiodinium community regulation in corals for conservation and reef restoration. Marine Ecology Progress Series. 600:245–253. doi:10.3354/meps12652.
  • Raymundo LJ, Maypa AP. 2004. Getting bigger faster: mediation of size-specific mortality via fusion in juvenile coral transplants. Ecological Applications. 14:281–295. doi:10.1890/02-5373.
  • Ricardo GF, Hones RJ, Clode PL, Humanes A, Negri AP. 2016. Suspended sediments limit coral sperm availability. Scientific Reports. 5:18084. [12 p.]. doi:10.1038/srep18084.
  • Rinkevich B. 2005. Conservation of coral reefs through active restoration measures: recent approaches and last decade progress. Environmental Science and Technology. 39:4333–4342. doi:10.1021/es0482583.
  • Rinkevich B. 2006. The coral gardening concept and the use of underwater nurseries: lessons learned from silvics and silviculture. In: Precht WF, editor. Coral reef restoration handbook. Boca Raton (FL): CRC Press; p. 291–301.
  • Rinkevich B. 2008. Management of coral reefs: we have gone wrong when neglecting active reef restoration. Marine Pollution Bulletin. 56:1821–1824. doi:10.1016/j.marpolbul.2008.08.014.
  • Rinkevich B. 2014. Rebuilding coral reefs: does active reef restoration lead to sustainable reefs? Current Opinion in Environmental Sustainability. 7:28–36. doi:10.1016/j.cosust.2013.11.018.
  • Rinkevich B. 2019. The active reef restoration toolbox is a vehicle for coral resilience and adaptation in a changing world. Journal of Marine Science and Engineering. 7: article 201. [17 p.]. doi:10.3390/jmse7070201.
  • Ritson-Williams R, Arnold SN, Paul VJ. 2016. Patterns of larval settlement preferences and post-settlement survival for seven Caribbean corals. Marine Ecology Progress Series. 548:127–138. doi:10.3354/meps11688.
  • Ritson-Williams R, Paul VJ, Arnold SN, Steneck RS. 2010. Larval settlement preferences and post-settlement survival of the threatened Caribbean corals Acropora palmata and A. cervicornis. Coral Reefs. 29:71–81. doi:10.1007/s00338-009-0555-z.
  • Romano SL, Palumbi SR. 1996. Evolution of scleractinian corals inferred from molecular systematics. Science. 271:640–642. doi:10.1126/science.271.5249.640.
  • Romatzki SBC. 2014. Influence of electrical fields on the performance of Acropora coral transplants on two different designs of structures. Marine Biology Research. 10:449–459. doi:10.1080/17451000.2013.814794.
  • Rotjan RD, Lewis SM. 2008. Impact of coral predators on tropical reefs. Marine Ecology Progress Series. 367:73–91. doi:10.3354/meps07531.
  • Sabater MG, Yap HT. 2004. Long-term effects of induced mineral accretion on growth, survival and corallite properties of Porites cyndrica Dana. Journal of Experimental Marine Biology and Ecology. 311:355–374. doi:10.1016/j.jembe.2004.05.013.
  • Sato M. 1985. Mortality and growth of juvenile coral Pocillopora damicornis (Linnaeus). Coral Reefs. 4:27–33. doi:10.1007/BF00302201.
  • Schopmeyer S, Lirman D, Bartels E, Byrne J, Gilliam D, Hunt J, Johnson M, Larson E, Maxwell K, Nedimyer K, et al. 2012. In situ coral nurseries serve as genetic repositories for coral reef restoration after an extreme cold-water event. Restoration Ecology. 20:696–703. doi:10.1111/j.1526-100X.2011.00836.x.
  • Schopmeyer S, Lirman D, Bartels E, Gilliam DS, Goergen EA, Griffin SP, Johnson ME, Lustic C, Maxwell K, Walter CS. 2017. Regional restoration benchmarks for Acropora cervicornis. Coral Reefs. 36:1047–1057. doi:10.1007/s00338-017-1596-3.
  • Schrack E, Beck M, Brumbaugh R, Crisley K, Hancock B. 2012. Restoration works: highlights from a decade of partnership between the Nature Conservancy and the National Oceanic and Atmospheric Administration’s Restoration Center. Arlington (VA): Nature Conservancy. [100 p.].
  • Schutter M, Crocker J, Paijmans A, Janse M, Osinga R, Verreth AJ, Wijffels RH. 2010. The effect of different flow regimes on the growth and metabolic rates of the scleractinian coral Galaxea fascicularis. Coral Reefs. 29:737–748. doi:10.1007/s00338-010-0617-2.
  • Sebens KP, Johnson AS. 1991. Effects of water movement on prey capture and distribution of reef corals. Hydrobiologia. 226:91–101. doi:10.1007/BF00006810.
  • Seguin F, Le Brun O, Hirst R, Al-Thary I, Dulrieux E. 2009. Large coral transplantation in Bal Haf (Yemen): an opportunity to save corals during construction of a Liquefied Natural Gas plant using innovative techniques. In: Proceedings of the 11th International Coral Reef Symposium, Fort Lauderdale, Florida. Vol. 2. p. 1272–1275.
  • Shafir S, Edwards A, Rinkevich B, Bongiorni L, Levy G, Shaish L. 2010. Constructing and managing nurseries for asexual rearing of corals. In: Edwards AJ, editor. Reef rehabilitation manual. St. Lucia, Australia: Coral Reef Targeted Research & Capacity Building for Management Program; p. 49–72.
  • Shafir S, Rinkevich B. 2008a. The underwater silviculture approach for reef restoration: an emergent aquaculture theme. In: Schwartz SH, editor. Aquaculture research trends. New York: Nova Science; p. 279–295.
  • Shafir S, Rinkevich B. 2008b. Mariculture of coral colonies for the public aquarium sector. In: Leewis RJ, Janse M, editors. Advances in coral husbandry in public aquariums. Vol. 2. Arnhem: Burgers’ Zoo; p. 315–318.
  • Shafir S, van Rijn J, Rinkevich B. 2006. Steps in the construction of underwater coral nursery, an essential component in reef restoration acts. Marine Biology. 149:679–687. doi:10.1007/s00227-005-0236-6.
  • Shaish L, Levy G, Gomez E, Rinkevich B. 2008. Fixed and suspended coral nurseries in the Philippines: establishing the first step in the ‘gardening concept’ of reef restoration. Journal of Experimental Marine Biology and Ecology. 358:86–97. doi:10.1016/j.jembe.2008.01.024.
  • Shearer TL, Porto I, Zubillaga AL. 2009. Restoration of coral populations in light of genetic diversity estimates. Coral Reefs. 28:727–733. doi:10.1007/s00338-009-0520-x.
  • Shimomura Y, Hatta M, Watanuki A, Aota T, Iwao K. 2002. Mass rearing of Acropoid larvae: towards production of coral larvae for plantation. In: Abstract of the 5th annual meeting of the Japanese Coral Reef Society. p. 36. Japanese.
  • Smith LD, Hughes TP. 1999. An experimental assessment of survival, re-attachment and fecundity of coral fragments. Journal of Experimental Marine Biology and Ecology. 235:147–164. doi:10.1016/S0022-0981(98)00178-6.
  • Smith SV. 1978. Coral-reef area and the contributions of reefs to processes and resources of the world’s oceans. Nature. 273:225–226. doi:10.1038/273225a0.
  • Soong K, Chen T. 2003. Coral transplantation; regeneration and growth of Acropora fragments in a nursery. Restoration Ecology. 11:62–71. doi:10.1046/j.1526-100X.2003.00100.x.
  • Spurgeon JPG. 2001. Improving the economic effectiveness of coral reef restoration. Bulletin of Marine Science. 69:1031–1045.
  • Strömgren T. 1987. The effect of light on the growth rate of intertidal Acropora pulchra (Brook) from Phuket, Thailand, lat. 8°N. Coral Reefs. 6:43–47. doi:10.1007/BF00302211.
  • Subade RF. 2007. Mechanisms to capture economic values of marine biodiversity: the case of Tubbataha reefs UNESCO world heritage site, Philippines. Marine Policy. 31:135–142. doi:10.1016/j.marpol.2006.05.012.
  • Suzuki G, Arakaki S, Suzuki K, Iehisa Y, Hayashibara T. 2012. What is the optimal density of larval seeding in Acropora corals? Fisheries Science. 78:801–808. doi:10.1007/s12562-012-0504-6.
  • Suzuki G, Kai S, Fujikura Y, Yamashita H. 2018a. Post-settlement survivorship of artificially supplied Acropora coral larvae in the Sekisei Lagoon. Marine Ecology Progress Series. 603:105–115. doi:10.3354/meps12698.
  • Suzuki G, Okada W, Yasutake Y, Kai S, Fujikura Y, Tanita I, Yamashita H, Hayashibara T, Ando W, Nogami K, et al. 2018b. Interspecific differences in the post-settlement survival of Acropora corals under a common garden experiment. Fisheries Science. 84:849–856. doi:10.1007/s12562-018-1230-5.
  • Suzuki G, Yamashita H, Kai S, Suzuki K, Iehisa Y, Okada Y, Ando W, Komori T. 2013. Early uptake of specific symbionts enhances the post-settlement survival of Acropora corals. Marine Ecology Progress Series. 494:149–158. doi:10.3354/meps10548.
  • Tagliafico A, Rangel S, Kelaher B, Christidis L. 2018. Optimizing heterotrophic feeding rates of three commercially important scleractinian corals. Aquaculture. 483:96–101. doi:10.1016/j.aquaculture.2017.10.013.
  • Tamura M. 2008. Effects of feeding behavior of juvenile top shell Trochus niloticus on the early developmental stage of coral. Midoriishi. (19):37–39. Japanese.
  • Tebben J, Motti CA, Siboni N, Tapiolas DM, Negri AP, Schupp PJ, Kitamura M, Hatta M, Steinberg PD, Harder T. 2015. Chemical mediation of coral larval settlement by crustose coralline algae. Scientific Reports. 5:10803. [11 p.]. doi:10.1038/srep10803.
  • Tebben J, Tapiolas DM, Motti CA, Abrego D, Negri AP, Blackall LL, Steinberg PD, Harder T. 2011. Induction of larval metamorphosis of the coral Acropora millepora by tetrabromopyrrole isorated from a Pseudoalteromonas bacterium. PLoS One. 6(4):e19082. [8 p.]. doi:10.1371/journal.pone.0019082.
  • ter Hofstede T, Finney C, Miller A, van Koningsveld M, Smolders T. 2016. Monitoring and evaluation of coral transplantation to mitigate the impact of dredging works. In: Proceedings of the 13th International Coral Reef Symposium, Honolulu, HA. p. 330–341.
  • Toh TC, Ng CSL, Guest J, Chou LM. 2013. Grazers improve health of coral juveniles in ex situ mariculture. Aquaculture. 414-415:288–293. doi:10.1016/j.aquaculture.2013.08.025.
  • Toh TC, Ng CSL, Peh JWK, Toh KB, Chou LM. 2014. Augmenting the post-transplantation growth and survivorship of juvenile scleractinian corals via nutritional enhancement. PLoS One. 9:e98529. [9 p.]. doi:10.1371/journal.pone.0098529.
  • Trapon ML, Pratchett MS, Hoey AS, Baird AH. 2013. Influence of fish grazing and sedimentation on the early post-settlement survival of the tabular coral Acropora cytherea. Coral Reefs. 32:1051–1059. doi:10.1007/s00338-013-1059-4.
  • van Oppen MJH, Gates RD, Blackall LL, Cantin N, Chakravarti LJ, Chan WY, Cormick C, Crean A, Damjanovic K, Epstein H, et al. 2017. Shifting paradigms in restoration of the world’s coral reefs. Global Change Biology. 23:3437–3448. doi:10.1111/gcb.13647.
  • van Oppen MJH, Oliver JK, Putnam HM, Gates RD. 2015. Building coral reef resilience through assisted evolution. Proceedings of the National Academy of Sciences. 112:2307–2313. doi:10.1073/pnas.1422301112.
  • Vermeij MJA, Sandin SA. 2008. Density-dependent settlement and mortality structure the earliest life phases of a coral population. Ecology. 89:1994–2004. doi:10.1890/07-1296.1.
  • Villanueva RD, Baria MVB, dela Cruz DW. 2012. Growth and survivorship of juvenile corals outplanted to degraded reef areas in Bolinao-Anda reef complex, Philippines. Marine Biology Research. 8:877–884. doi:10.1080/17451000.2012.682582.
  • Vollmer SV, Palumbi SR. 2006. Restricted gene flow in the Caribbean staghorn coral Acropora cervicornis: implications for the recovery of endangered reefs. Journal of Heredity. 98:40–50. doi:10.1093/jhered/esl057.
  • Webster MS, Colton MA, Darling ES, Armstrong J, Pinsky ML, Knowlton N, Schindler DE. 2017. Who should pick the winners of climate change? Trends in Ecology & Evolution. 32:167–173. doi:10.1016/j.tree.2016.12.007.
  • Webster NS, Smith LD, Heyward AJ, Watts JEM, Webb RI, Blackall LL, Negri AP. 2004. Metamorphosis of a scleractinian coral in response to microbial biofilms. Applied and Environmental Microbiology. 70:1213–1221. doi:10.1128/AEM.70.2.1213-1221.2004.
  • Whalan S, Abdul Wahab MA, Sprungala S, Poole AJ, de Nys R. 2015. Larval settlement: the role of surface topography for sessile coral reef invertebrates. PLoS One. 10:e0117675. [17 p.]. doi:10.1371/journal.pone.0117675.
  • Wijgerde T, Henkemans P, Osinga R. 2012. Effects of irradiance and light spectrum on growth of the scleractinian coral Galaxea fascicularis — applicability of LEP and LED lighting to coral aquaculture. Aquaculture. 344–349:188–193. doi:10.1016/j.aquaculture.2012.03.025.
  • Wijgerde T, van Melis A, Silva CIF, Leal MC, Vogels L, Muter C, Osinga R. 2014. Red light represses the photophysiology of the scleractinian coral Stylophora pistillata. PLoS One. 9:e92781. [10 p.]. doi:10.1371/journal.pone.0092781.
  • Williams SL, Sur C, Janetski N, Hollarsmith JA, Rapi S, Barron L, Heatwole SJ, Yusuf AM, Yusuf S, Jompa J, Mars F. 2019. Large-scale coral reef rehabilitation after blast fishing in Indonesia. Restoration Ecology. 27:447–456. doi:10.1111/rec.12866.
  • Willis BL, Babcock RC, Harrison PL, Wallace CC. 1997. Experimental hybridization and breeding incompatibilities within the mating systems of mass spawning reef corals. Coral Reefs. 16(Suppl):S53–S65. doi:10.1007/s003380050242.
  • Willis BL, van Oppen MJH, Miller DJ, Vollmer SV, Ayre DJ. 2006. The role of hybridization in the evolution of reef corals. Annual Review of Ecology, Evolution, and Systematics. 37:489–517. doi:10.1146/annurev.ecolsys.37.091305.110136.
  • Yamashita H, Suzuki G, Hayashibara T, Koike K. 2013. Acropora recruits harbor ‘rare’ Symbiodinium in the environmental pool. Coral Reefs. 32:355–366. doi:10.1007/s00338-012-0980-2.
  • Yamashita H, Suzuki G, Kai S, Hayashibara T, Koike K. 2014. Establishment of coral-algal symbiosis requires attraction and selection. PLoS One. 9:e97003. [10 p.]. doi:10.1371/journal.pone.0097003.
  • Yap HT, Alvarez RM, Custodio HM, Dizon RM. 1998. Physiological and ecological aspects of coral transplantation. Journal of Experimental Marine Biology and Ecology. 229:69–84. doi:10.1016/S0022-0981(98)00041-0.
  • Yap HT, Gomez ED. 1985. Growth of Acropora pulchra 3. Preliminary observations on the effects of transplantation and sediment on the growth and survival of transplants. Marine Biology. 87:203–209. doi:10.1007/BF00539430.
  • Young CN, Schopmeyer SA, Lirman D. 2012. A review of reef restoration and coral propagation using the threatened genus Acropora in the Caribbean and western Atlantic. Bulletin of Marine Science. 88:1075–1098. doi:10.5343/bms.2011.1143.
  • Yusuf S, Zamani NP, Jompa J, Junior MS. 2019. Larvae of the coral Acropora tenuis (Dana 1846) settled under controlled light intensity. IOP Conference Series: Earth and Environmental Science. 253:012023. [7 p.]. doi:10.1088/1755-1315/253/1/012023.
  • Zayasu Y, Nakajima Y, Sakai S, Suzuki G, Satoh N, Shinzato C. 2016. Unexpectedly complex gradation of coral population structure in the Nansei Islands, Japan. Ecology and Evolution. 6:5491–5505. doi:10.1002/ece3.2296.
  • Zayasu Y, Shinzato C. 2016. Hope for coral reef rehabilitation: massive synchronous spawning by outplanted corals in Okinawa, Japan. Coral Reefs. 35:1295. doi:10.1007/s00338-016-1463-7.
  • Zayasu Y, Suzuki G. 2019. Comparisons of population density and genetic diversity in artificial and wild populations of an arborescent coral, Acropora yongei: implications for the efficacy of ‘artificial spawning hotspots’. Restoration Ecology. 27:440–446. doi:10.1111/rec.12857.

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