Hostname: page-component-848d4c4894-wg55d Total loading time: 0 Render date: 2024-06-03T16:12:51.180Z Has data issue: false hasContentIssue false

Limpet larvae (Patella aspera Röding, 1798), obtained by gonad dissection and fecundation in vitro, settled and metamorphosed on crustose coralline algae

Published online by Cambridge University Press:  10 February 2022

Diego Castejón*
Affiliation:
Mariculture Centre of Calheta, Direção Regional do Mar, Avenida D. Manuel I, no. 7. 9370-135 Calheta, Madeira, Portugal CIIMAR, Centro Interdisciplinar de Investigação Marinha e Ambiental, Terminal de Cruzeiros do Porto de Leixões, Universidade do Porto, s/n 4450-208 Matosinhos, Portugal
Natacha Nogueira
Affiliation:
Mariculture Centre of Calheta, Direção Regional do Mar, Avenida D. Manuel I, no. 7. 9370-135 Calheta, Madeira, Portugal CIIMAR, Centro Interdisciplinar de Investigação Marinha e Ambiental, Terminal de Cruzeiros do Porto de Leixões, Universidade do Porto, s/n 4450-208 Matosinhos, Portugal
Carlos A.P. Andrade
Affiliation:
Mariculture Centre of Calheta, Direção Regional do Mar, Avenida D. Manuel I, no. 7. 9370-135 Calheta, Madeira, Portugal CIIMAR, Centro Interdisciplinar de Investigação Marinha e Ambiental, Terminal de Cruzeiros do Porto de Leixões, Universidade do Porto, s/n 4450-208 Matosinhos, Portugal
*
Author for correspondence: Diego Castejón, E-mail: diego.castejon.dcb@gmail.com

Abstract

The limpet Patella aspera Röding, 1798, is a native species from the Macaronesian region whose fishing is regulated. The early life of limpets, including the settlement process, is poorly known thus far. The current study evaluated different substrates to induce settlement in P. aspera, including microalgae strains (Halamphora coffeaeformis, Navicula incerta and Pavlova sp.) and crustose coralline algae (CCA) obtained from limpet shells. The results showed that gametes obtained by dissection and matured artificially using alkalinized seawater baths can produce viable larvae able to metamorphose to juveniles. Feeding was not required during larval development, suggesting lecithotrophy. Early postlarvae were identified by the shedding of the velum, and juveniles were identified by teleoconch and active grazing behaviour. The presence of CCA shortened the timing for settlement and increased the ratio of juveniles. The type and abundance of CCA can influence settlement success. Moreover, the results suggested that settlement and metamorphosis in true limpets (Patellogastropoda) might be triggered by a two-step mechanism, i.e. a first cue influencing the shift between swimming and crawling activity and a second cue determining settlement and metamorphosis to early postlarvae and juveniles.

Type
Research Article
Copyright
Copyright © The Author(s), 2022. Published by Cambridge University Press on behalf of Marine Biological Association of the United Kingdom

Access options

Get access to the full version of this content by using one of the access options below. (Log in options will check for institutional or personal access. Content may require purchase if you do not have access.)

References

Aquino De Souza, R, Tyler, P and Hawkins, SJ (2009) Artificial oocyte maturation in Patella depressa and Patella vulgata using NaOH-alkalinized seawater. Marine Biology Research 5, 503510.CrossRefGoogle Scholar
Barlow, LA (1990) Electrophysiological and behavioral responses of larvae of the red abalone (Haliotis rufescens) to settlement-inducing substances. Bulletin of Marine Science 46, 537554.Google Scholar
Barnes, J and Gonor, J (1973) The larval settling response of the lined chiton Tonicella lineata. Marine Biology 20, 259264.CrossRefGoogle Scholar
Blackmore, D (1969) Studies of Patella vulgata L. I. Growth, reproduction and zonal distribution. Journal of Experimental Marine Biology 3, 200213.CrossRefGoogle Scholar
Branch, GM (1981) The biology of limpets: physical factors, energy flow, and ecological interactions. Oceanography and Marine Biology: An Annual Review 192, 235280.Google Scholar
Branch, G and Odendaal, F (2003) The effects of marine protected areas on the population dynamics of a South African limpet, Cymbula oculus, relative to the influence of wave action. Biological Conservation 114, 255269.CrossRefGoogle Scholar
Burgos-Rubio, V, De la Rosa, J, Altamirano, M and Espinosa, F (2015) The role of patellid limpets as omnivorous grazers: a new insight into intertidal ecology. Marine Biology 162, 20932106.CrossRefGoogle Scholar
Cañizares, JM, Castejón, D, Haroun, R, Nogueira, N and Andrade, CAP (2021) Enhancing oocyte maturation and fertilisation in the black-foot limpet Patella candei d'Orbigny, 1840 (Patellidae, Mollusca). Aquaculture Reports 21, 100856.CrossRefGoogle Scholar
Carreira, GP, Shaw, PW, Gonçalves, JM and McKeown, NJ (2017) Congruent molecular and morphological diversity of Macaronesian limpets: insights into eco-evolutionary forces and tools for conservation. Frontiers in Marine Science 4, 75.CrossRefGoogle Scholar
Castejón, D, Cañizares, JM, Nogueira, N and Andrade, CAP (2021) Artificial maturation and larval production of the limpet Patella aspera Röding, 1798 (Patellogastropoda, Mollusca): enhancing fertilization success of oocytes using NaOH-alkalinized seawater. Aquaculture Research 52, 19041914.CrossRefGoogle Scholar
Chia, F-S and Koss, R (1988) Induction of settlement and metamorphosis of the veliger larvae of the nudibranch, Onchidoris bilamellata. International Journal of Invertebrate Reproduction and Development 14, 5369.CrossRefGoogle Scholar
Côrte-Real, H (1992) Taxonomy and Population Genetics of Exploited Species of Patella in the Azores, Madeira and Canaries. PhD thesis, University of Liverpool, Port Erin.Google Scholar
Côrte-Real, H, Hawkins, S and Thorpe, J (1996 a) An interpretation of the taxonomic relationship between the limpets Patella rustica and P. piperata. Journal of the Marine Biological Association of the United Kingdom 76, 717732.CrossRefGoogle Scholar
Côrte-Real, H, Hawkins, S and Thorpe, J (1996 b) Population differentiation and taxonomic status of the exploited limpet Patella candei in the Macaronesian islands (Azores, Madeira, Canaries). Marine Biology 125, 141152.CrossRefGoogle Scholar
Daume, S, Brand-Gardner, S and Woelkerling, WJ (1999) Preferential settlement of abalone larvae: diatom films vs non-geniculate coralline red algae. Aquaculture 174, 243254.CrossRefGoogle Scholar
Davies, M, Hawkins, S and Jones, H (1990) Mucus production and physiological energetics in Patella vulgata L. Journal of Molluscan Studies 56, 499503.CrossRefGoogle Scholar
Della Santina, P, Sonni, C, Sartoni, G and Chelazzi, G (1993) Food availability and diet composition of three coexisting Mediterranean limpets (Patella spp.). Marine Biology 116, 8795.CrossRefGoogle Scholar
De Viçose, GC, Viera, M, Bilbao, A and Izquierdo, M (2010) Larval settlement of Haliotis tuberculata coccinea in response to different inductive cues and the effect of larval density on settlement, early growth, and survival. Journal of Shellfish Research 29, 587591.CrossRefGoogle Scholar
De Viçose, GC, Viera, MP, Huchette, S and Izquierdo, MS (2012) Larval settlement, early growth and survival of Haliotis tuberculata coccinea using several algal cues. Journal of Shellfish Research 31, 11891198.CrossRefGoogle Scholar
Dodd, J (1957) Artificial fertilisation, larval development and metamorphosis in Patella vulgata L. and Patella caerulea L. Pubblicazioni della Stazione Zoologica di Napoli 29, 172185.Google Scholar
Erlandson, JM, Braje, TJ, Rick, TC, Jew, NP, Kennett, DJ, Dwyer, N, Ainis, AF, Vellanoweth, RL and Watts, J (2011) 10,000 years of human predation and size changes in the owl limpet (Lottia gigantea) on San Miguel Island, California. Journal of Archaeological Science 38, 11271134.CrossRefGoogle Scholar
Espinosa, F and Rivera-Ingraham, GA (2017) Biological conservation of giant limpets: the implications of large size. In Curry, BE (ed.), Advances in Marine Biology, vol. 76. New York, NY: Academic Press, pp. 105155.Google Scholar
Espinosa, F, Rivera-Ingraham, G, Fa, D and García-Gómez, J (2009) Effect of human pressure on population size structures of the endangered ferruginean limpet: toward future management measures. Journal of Coastal Research 25, 857863.CrossRefGoogle Scholar
Espinosa, F, Rivera-Ingraham, GA, Maestre, M, González, AR, Bazairi, H and García-Gómez, JC (2014) Updated global distribution of the threatened marine limpet Patella ferruginea (Gastropoda: Patellidae): an example of biodiversity loss in the Mediterranean. Oryx 48, 266275.CrossRefGoogle Scholar
Faria, J, Pita, A, Martins, GM, Ribeiro, PA, Hawkins, SJ, Presa, P and Neto, AI (2018) Inbreeding in the exploited limpet Patella aspera across the Macaronesia archipelagos (NE Atlantic): implications for conservation. Fisheries Research 198, 180188.CrossRefGoogle Scholar
Fernandes, I, Fernandes, T and Cordeiro, N (2019) Nutritional value and fatty acid profile of two wild edible limpets from the Madeira Archipelago. European Food Research and Technology 245, 895905.CrossRefGoogle Scholar
Ferranti, MP, Monteggia, D, Asnaghi, V and Chiantore, M (2018) Artificial reproduction protocol, from spawning to metamorphosis, through noninvasive methods in Patella caerulea Linnaeus, 1758. Aquaculture Research 49, 33863391.CrossRefGoogle Scholar
Ferranti, MP, Guallart, J, Fanciulli, G, Panzalis, PA and Chiantore, M (2021) Advancements towards restoration of the endangered limpet Patella ferruginea Gmelin, 1791 through controlled reproduction. Aquaculture Research 53, 782798.CrossRefGoogle Scholar
Ferraz, RR, Menezes, GM and Santos, RS (2001) Limpet (Patella spp.) (Mollusca: Gastropoda) exploitation in the Azores, during the period 1993–1998. Arquipélago. Life and Marine Sciences Suppl. 2 (Part B), 5965.Google Scholar
Fletcher, W (1988) Intraspecific interactions between adults and juveniles of the subtidal limpet, Patelloida mufria. Oecologia 75, 272277.CrossRefGoogle ScholarPubMed
Fox, J and Weisberg, S (2019) An {R} Companion to Applied Regression. Thousand Oaks, CA: Sage.Google Scholar
Gould, MC, Stephano, JL, Ortíz-Barrón, BDJ and Pérez-Quezada, I (2001) Maturation and fertilization in Lottia gigantea oocytes: intracellular pH, Ca2+, and electrophysiology. Journal of Experimental Zoology 290, 411420.CrossRefGoogle ScholarPubMed
Guallart, J, Luque, ÁA, Acevedo, I and Calvo, M (2013) Distribución y censo actualizado de la lapa ferrugínea (Patella ferruginea Gmelin, 1791) en el litoral de Melilla (Mediterráneo suroccidental). Iberus 31, 2151.Google Scholar
Guallart, J, Peña, J, Pérez-Larruscaín, J, Luque, Á and Templado, J (2020) Filling gaps: closing the life cycle of the endangered Mediterranean limpet Patella ferruginea Gmelin, 1791 (Gastropoda, Patellidae). Mediterranean Marine Science 21, 400419.Google Scholar
Harada, K, Miyasaki, T, Maeda, H and Satoh, K (1997) Statistical estimation of probable feeding attractive components in fishing baits for abalone. Aquaculture Science 45, 533537.Google Scholar
Henriques, P, Delgado, J, Sousa, R and Ray, S (2017) Patellid limpets: an overview of the biology and conservation of keystone species of the rocky shores. In Ray S (ed.), Organismal and Molecular Malacology. London: Intech International, pp. 7195.Google Scholar
Kay, M (2002) Recruitment in the intertidal limpet Lottia digitalis (Patellogastropoda: Lottiidae) may be driven by settlement cues associated with adult habitat. Marine Biology 141, 467477.Google Scholar
Kay, MC and Emlet, RB (2002) Laboratory spawning, larval development, and metamorphosis of the limpets Lottia digitalis and Lottia asmi (Patellogastropoda, Lottiidae). Invertebrate Biology 121, 1124.CrossRefGoogle Scholar
Keesing, JK, Halford, AR, Hall, KC and Cartwright, CM (1997) Large-scale laboratory culture of the crown-of-thorns starfish Acanthaster planci (L.) (Echinodermata: Asteroidea). Aquaculture 157, 215226.CrossRefGoogle Scholar
Kenkel, C, Traylor, M, Wiedenmann, J, Salih, A and Matz, MV (2011) Fluorescence of coral larvae predicts their settlement response to crustose coralline algae and reflects stress. Proceedings of the Royal Society B: Biological Sciences 278, 26912697.CrossRefGoogle ScholarPubMed
Klein, RG (1979) Stone Age exploitation of animals in southern Africa: middle Stone Age people living in southern Africa more than 30,000 years ago exploited local animals less effectively than the later Stone Age people who succeeded them. American Scientist 67, 151160.Google Scholar
Kooistra, W, Joosten, A and Van den Hoek, C (1989) Zonation patterns in intertidal pools and their possible causes: a multivariate approach. Botanica Marina 32, 926.CrossRefGoogle Scholar
Lambert, DM and Harris, LG (2000) Larval settlement of the green sea urchin, Strongylocentrotus droebachiensis, in the southern Gulf of Maine. Invertebrate Biology 119, 403409.CrossRefGoogle Scholar
Maneveldt, GW, Wilby, D, Potgieter, M and Hendricks, MG (2006) The role of encrusting coralline algae in the diets of selected intertidal herbivores. Journal of Applied Phycology 18, 619627.CrossRefGoogle Scholar
Martins, GM, Faria, J, Furtado, M and Neto, AI (2014) Shells of Patella aspera as ‘islands’ for epibionts. Journal of the Marine Biological Association of the United Kingdom 94, 1027.CrossRefGoogle Scholar
Martins, GM, Borges, CDG, Vale, M, Ribeiro, PA, Ferraz, RR, Martins, HR, Santos, RS and Hawkins, SJ (2017) Exploitation promotes earlier sex change in a protandrous patellid limpet, Patella aspera Röding, 1798. Ecology and Evolution 7, 36163622.CrossRefGoogle Scholar
Mau, A and Jha, R (2018) Aquaculture of two commercially important molluscs (abalone and limpet): existing knowledge and future prospects. Reviews in Aquaculture 10, 611625.CrossRefGoogle Scholar
Mau, A, Bingham, J-P, Soller, F and Jha, R (2018) Maturation, spawning, and larval development in captive yellowfoot limpets (Cellana sandwicensis). Invertebrate Reproduction & Development 62, 239247.CrossRefGoogle Scholar
McCoy, SJ and Kamenos, NA (2015) Coralline algae (Rhodophyta) in a changing world: integrating ecological, physiological, and geochemical responses to global change. Journal of Phycology 51, 624.CrossRefGoogle Scholar
McCoy, S and Pfister, C (2014) Historical comparisons reveal altered competitive interactions in a guild of crustose coralline algae. Ecology Letters 17, 475483.CrossRefGoogle Scholar
McGrath, D (1992) Recruitment and growth of the blue-rayed limpet, Helcion pellucidum (L.), in south east Ireland. Journal of Molluscan Studies 58, 425431.CrossRefGoogle Scholar
McGrath, D and Foley, H (2005) Settlement and recruitment of the blue-rayed limpet, Patella pellucida L. in Galway Bay, west coast of Ireland. In Wilson, JG (ed.), The Intertidal Ecosystem: The Value of Ireland's Shores. Dublin: Royal Irish Academy, pp. 100114.Google Scholar
Moran, AL and Manahan, DT (2003) Energy metabolism during larval development of green and white abalone, Haliotis fulgens and H. sorenseni. Biological Bulletin 204, 270277.CrossRefGoogle ScholarPubMed
Nakano, T and Ozawa, T (2007) Worldwide phylogeography of limpets of the order Patellogastropoda: molecular, morphological and palaeontological evidence. Journal of Molluscan Studies 73, 7999.CrossRefGoogle Scholar
Nakano, T and Sasaki, T (2011) Recent advances in molecular phylogeny, systematics and evolution of patellogastropod limpets. Journal of Molluscan Studies 77, 203217.CrossRefGoogle Scholar
Nakano, T, Nakayama, R and Takahashi, Y (2020) Artificial fertilisation and early development of a limpet Lottia tenuisculpta (Patellogastropoda: Lottiidae). Molluscan Research 40, 5259.CrossRefGoogle Scholar
Navarro, PG, Ramírez, R, Tuya, F, Fernandez-Gil, C, Sanchez-Jerez, P and Haroun, RJ (2005) Hierarchical analysis of spatial distribution patterns of patellid limpets in the Canary Islands. Journal of Molluscan Studies 71, 6773.CrossRefGoogle Scholar
Nhan, HT (2014) Development of Aquaculture Technology for the Hawaiian Opihi Cellana spp. PhD thesis, University of Hawaii, Manoa. http://hdl.handle.net/10125/100431.Google Scholar
Nhan, HT and Ako, H (2019) Reproductive biology, seed production, and culture of the Hawaiian limpet Cellana sandwicensis (Pease, 1861). In Invertebrates: Ecophysiology and Management, pp. 119.Google Scholar
Niu, C-J, Nakao, S and Goshima, S (1998) Energetics of the limpet Lottia kogamogai (Gastropoda: Acmaeidae) in an intertidal rocky shore in southern Hokkaido, Japan. Journal of Experimental Marine Biology and Ecology 224, 167181.CrossRefGoogle Scholar
Orton, J (1929) Observations on Patella vulgata. Part III. Habitat and habits. Journal of the Marine Biological Association of the United Kingdom 16, 277288.CrossRefGoogle Scholar
Pohlert, T (2014) The pairwise multiple comparison of mean ranks package (PMCMR). R Package 27, 9.Google Scholar
Pohlert, T (2018) Package ‘PMCMRplus’.Vienna: R Foundation for Statistical Computing. https://mran.microsoft.com/snapshot/2018-10-17/web/packages/PMCMRplus/PMCMRplus.pdf.Google Scholar
Pombo, OA and Escofet, A (1996) Effect of exploitation on the limpet Lottia gigantea: a field study in Baja California (Mexico) and California (U.S.A.). Pacific Science 50, 393403.Google Scholar
Pueschel, CM and Miller, TJ (1996) Reconsidering prey specializations in an algal-limpet mutualism: epithallial cell development in Clathromorphum circumscriptum (Rhodophyta, Corallinales) 1. Journal of Phycology 32, 2836.CrossRefGoogle Scholar
Ramírez, R, Tuya, F and Haroun, R (2009) Efectos potenciales del marisqueo sobre moluscos gasterópodos de interés comercial (“Osilinus” spp. y “Patella” spp.) en el Archipiélago Canario. Revista de Biología Marina y Oceanografía 44, 703714.CrossRefGoogle Scholar
R Development Core Team (2020) R: A Language and Environment for Statistical Computing. Vienna: R Foundation for Statistical Computing.Google Scholar
Ribeiro, PMDA (2008) Dispersal and connectivity of Northeastern Atlantic patellid limpets: a multidisciplinary approach. PhD thesis, University of Southampton, Southampton.Google Scholar
Roberts, RD and Lapworth, C (2001) Effect of delayed metamorphosis on larval competence, and post-larval survival and growth, in the abalone Haliotis iris Gmelin. Journal of Experimental Marine Biology and Ecology 258, 113.CrossRefGoogle ScholarPubMed
Roberts, RD and Nicholson, CM (1997) Variable response from abalone larvae (Haliotis iris, H. virginea) to a range of settlement cues. Molluscan Research 18, 131141.CrossRefGoogle Scholar
Roberts, RD, Kaspar, HF and Barker, RJ (2004) Settlement of abalone (Haliotis iris) larvae in response to five species of coralline algae. Journal of Shellfish Research 23, 975988.Google Scholar
Roberts, RD, Barker, MF and Mladenov, P (2010) Is settlement of Haliotis iris larvae on coralline algae triggered by the alga or its surface biofilm? Journal of Shellfish Research 29, 671678.CrossRefGoogle Scholar
Salas-Garza, A, Parés-Sierra, G, Gómez-Rigalt, R and Carpizo-Ituarte, E (2009) The larval development, metamorphosis and juvenile growth of the turban snail Lithopoma (Astraea) undosa (Wood, 1828) (Gastropoda: Turbinidae). Journal of the World Aquaculture Society 40, 460471.CrossRefGoogle Scholar
Sangil, C, Martins, G, Hernández, J, Alves, F, Neto, AI, Ribeiro, C, León-Cisneros, K, Canning-Clode, J, Rosas-Alquicira, E, Mendoza, J, Tittley, I, Wallenstein, F, Couto, R and Kaufmann, M (2018) Shallow subtidal macroalgae in the North-eastern Atlantic archipelagos (Macaronesian region): a spatial approach to community structure. European Journal of Phycology 53, 83–98.CrossRefGoogle Scholar
Schaal, G and Grall, J (2015) Microscale aspects in the diet of the limpet Patella vulgata L. Journal of the Marine Biological Association of the United Kingdom 95, 1155.CrossRefGoogle Scholar
Seabra, MI, Cruz, T, Fernandes, JN, Silva, T and Hawkins, S (2019) Recruitment of the limpet Patella ulyssiponensis and its relationship with crustose coralline algae: patterns of juvenile distribution and larval settlement. Journal of the Marine Biological Association of the United Kingdom 99, 17871796.CrossRefGoogle Scholar
Seabra, MI, Hawkins, SJ, Espírito-Santo, C, Castro, JJ and Cruz, T (2020) Rock-pools as nurseries for co-existing limpets: spatial and temporal patterns of limpet recruitment. Regional Studies in Marine Science 37, 101339.CrossRefGoogle Scholar
Searcy-Bernal, R, Salas-Garza, AE, Flores-Aguilar, RA and Hinojosa-Rivera, PR (1992) Simultaneous comparison of methods for settlement and metamorphosis induction in the red abalone (Haliotis rufescens). Aquaculture 105, 241250.CrossRefGoogle Scholar
Sousa, R, Delgado, J, Pinto, AR and Henriques, P (2017) Growth and reproduction of the north-eastern Atlantic keystone species Patella aspera (Mollusca: Patellogastropoda). Helgoland Marine Research 71, 8.CrossRefGoogle Scholar
Sousa, R, Vasconcelos, J, Henriques, P, Pinto, AR, Delgado, J and Riera, R (2019 a) Long-term population status of two harvested intertidal grazers (Patella aspera and Patella candei), before (1996–2006) and after (2007–2017) the implementation of management measures. Journal of Sea Research 144, 3338.CrossRefGoogle Scholar
Sousa, R, Vasconcelos, J, Riera, R, Pinto, AR, Delgado, J and Henriques, P (2019 b) Potential impact of harvesting management measures on the reproductive parameters of the limpets Patella aspera and Patella candei from Madeira Island. Estuarine, Coastal and Shelf Science 226, 106264.CrossRefGoogle Scholar
Sousa, R, Pinto, A, Vasconcelos, J and Riera, R (2020) Does harvesting affect the relative growth in Patella aspera Röding, 1798? European Zoological Journal 87, 395401.CrossRefGoogle Scholar
Spotorno-Oliveira, P, Figueiredo, MA and Tâmega, FT (2015) Coralline algae enhance the settlement of the vermetid gastropod Dendropoma irregulare (d'Orbigny, 1842) in the southwestern Atlantic. Journal of Experimental Marine Biology and Ecology 471, 137145.CrossRefGoogle Scholar
Steneck, RS (1982) A limpet-coralline alga association: adaptations and defenses between a selective herbivore and its prey. Ecology 63, 507522.CrossRefGoogle Scholar
Steneck, RS (1986) The ecology of coralline algal crusts: convergent patterns and adaptative strategies. Annual Review of Ecology and Systematics 17, 273303.CrossRefGoogle Scholar
Steneck, RS, Hacker, SD and Dethier, MN (1991) Mechanisms of competitive dominance between crustose coralline algae: an herbivore-mediated competitive reversal. Ecology 72, 938950.CrossRefGoogle Scholar
Szuwalski, CS, Vert-Pre, KA, Punt, AE, Branch, TA and Hilborn, R (2015) Examining common assumptions about recruitment: a meta-analysis of recruitment dynamics for worldwide marine fisheries. Fish and Fisheries 16, 633648.CrossRefGoogle Scholar
Takami, H and Kawamura, T (2003) Dietary changes in the abalone, Haliotis discus hannai, and relationship with the development of the digestive organ. Japan Agricultural Research Quarterly 37, 8998.CrossRefGoogle Scholar
Takami, H, Kawamura, T and Yamashita, Y (2000) Starvation tolerance of newly metamorphosed abalone Haliotis discus hannai. Fisheries Science 66, 11801182.CrossRefGoogle Scholar
Tebben, J, Motti, CA, Siboni, N, Tapiolas, DM, Negri, AP, Schupp, PJ, Kitamura, M, Hatta, M, Steinberg, PD and Harder, T (2015) Chemical mediation of coral larval settlement by crustose coralline algae. Scientific Reports 5, 111.CrossRefGoogle ScholarPubMed
Weber, LI and Hawkins, SJ (2005) Patella aspera and P. ulyssiponensis: genetic evidence of speciation in the North-east Atlantic. Marine Biology 147, 153162.CrossRefGoogle Scholar
Zhao, B and Qian, P-Y (2002) Larval settlement and metamorphosis in the slipper limpet Crepidula onyx (Sowerby) in response to conspecific cues and the cues from biofilm. Journal of Experimental Marine Biology and Ecology 269, 3951.CrossRefGoogle Scholar
Supplementary material: File

Castejón et al. supplementary material

Castejón et al. supplementary material

Download Castejón et al. supplementary material(File)
File 39.6 MB