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ORIGINAL ARTICLES

Investigation of early mussel (Perna canaliculus) development using histology, SEM imaging, immunochemistry and confocal microscopy

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Pages 314-329 | Received 01 Apr 2016, Accepted 18 Oct 2016, Published online: 07 Apr 2017

References

  • Adams SL, Tervit HR, McGowan LT, Smith JF, Roberts RD, Salinas-Flores L, et al. 2009. Towards cryopreservation of Greenshell™ mussel (Perna canaliculus) oocytes. Cryobiology 58:69–74. doi:10.1016/j.cryobiol.2008.10.130
  • Adams SL, Smith JF, Taylor J, McGowan L, Tervit HR. 2015. Cryopreservation of Greenshell™ mussel (Perna canaliculus) sperm. In: Wolkers WF, Oldenhof H, editors. Cryopreservation and Freeze-Drying Protocols. Methods in Molecular Biology, volume 1257. New York: Springer Science+Business, p 329–36.
  • Alfaro AC. 2005. Effect of water flow and oxygen concentration on early settlement of the New Zealand green-lipped mussel, Perna canaliculus. Aquaculture 246:285–94. doi:10.1016/j.aquaculture.2005.02.049
  • Alfaro AC. 2006a. Byssal attachment of juvenile mussels, Perna canaliculus, affected by water motion and air bubbles. Aquaculture 255:357–61. doi:10.1016/j.aquaculture.2005.11.059
  • Alfaro AC. 2006b. Population dynamics of the green-lipped mussel, Perna canaliculus, at various spatial and temporal scales in northern New Zealand. Journal of Experimental Marine Biology and Ecology 334:294–315. doi:10.1016/j.jembe.2006.02.004
  • Alfaro AC, Jeffs AG. 2002. Small-scale mussel settlement patterns within morphologically distinct substrates at Ninety Mile Beach, northern New Zealand. Malacologia 44:1–15.
  • Alfaro AC, Jeffs AG, Creese R. 2004. Bottom-drifting algal/mussel spat associations along a sandy coastal region in northern New Zealand. Aquaculture 241:269–90. doi:10.1016/j.aquaculture.2004.07.029
  • Alfaro AC, Copp BR, Appleton DR, Kelly S, Jeffs AG. 2006. Chemical cues promote settlement in larvae of the green-lipped mussel, Perna canaliculus. Aquaculture International 14:405–12. doi:10.1007/s10499-005-9041-y
  • Alfaro AC, Webb SC, Barnaby C. 2008. Variability of growth, health, and population turnover within mussel beds of Perna canaliculus in Northern New Zealand. Marine Biology Research 4:376–83. doi:10.1080/17451000802022879
  • Alfaro AC, McArdle B, Jeffs AG. 2010. Temporal patterns of arrival of beachcast green-lipped mussel (Perna canaliculus) spat harvested for aquaculture in New Zealand and its relationship with hydrodynamic and meteorological conditions. Aquaculture 302:208–18. doi:10.1016/j.aquaculture.2010.02.028
  • Alfaro AC, Young T, Ganesan AM. 2011a. Regulatory effects of mussel (Aulacomya maoriana Iredale, 1915) larval settlement by neuroactive compounds, amino acids and bacterial biofilms. Aquaculture 322–323:158–68. doi:10.1016/j.aquaculture.2011.08.038
  • Alfaro AC, Jeffs AG, Gardner JPA, Bollard Breen BA, Wilkin J. 2011b. New Zealand Fisheries Assessment Report 2011/48. Wellington, New Zealand: Ministry of Fisheries. 77 pages.
  • Aranda-Burgos JA, Da Costa F, Nóvoa S, Ojea J, Martínez-Patiño D. 2014. Embryonic and larval development of Ruditapes decussatus (Bivalvia: Veneridae): a study of the shell differentiation process. Journal of Molluscan Studies 80:8–16. doi:10.1093/mollus/eyt044
  • Arellano SM, Young CM. 2009. Spawning, development, and the duration of larval life in a deep-sea cold-seep mussel. The Biological Bulletin 216:149–62. doi:10.1086/BBLv216n2p149
  • Arnold WS. 2001. Bivalve enhancement and restoration strategies in Florida, U.S.A. Hydrobiologia 465:7–19. doi:10.1023/A:1014596909319
  • Bayne BL. 1971. Some Morphological Changes that Occur at the Metamorphosis of the Larvae of Mytilus edulis. Cambridge: Cambridge University Press. 280 pages.
  • Beaugrand G, McQuatters-Gollop A, Edwards M, Goberville E. 2013. Long-term responses of North Atlantic calcifying plankton to climate change. Nature Climate Change 3:263–67. doi:10.1038/nclimate1753
  • Borg J. 2002. Reseeding of Grazing Gastropods and Bivalves into the Marine Environment in Western Australia. Fisheries Management Paper, issue 162. 34 pages.
  • Bower SM, Meyer GR. 1990. Atlas of anatomy and histology of larvae and early juvenile stages of the Japanese scallop (Patinopecten yessoensis). Canadian Special Publication of Fisheries and Aquatic Sciences 111. Ottawa: Department of Fisheries and Oceans. 51 pages.
  • Buchanan S. 1998. Spat Production of the Greenshell Mussel™ Perna canaliculus in New Zealand. Doctoral Thesis. University of Auckland, Auckland, New Zealand. 232 pages.
  • Camara MD, Symonds JE. 2014. Genetic improvement of New Zealand aquaculture species: programmes, progress and prospects. New Zealand Journal of Marine and Freshwater Research 48:466–91. doi:10.1080/00288330.2014.932291
  • Cannuel R, Beninger PG, McCombie H, Boudry P. 2009. Gill development and its functional and evolutionary implications in the blue mussel Mytilus edulis (Bivalvia: Mytilidae). The Biological Bulletin 217:173–88. doi:10.1086/BBLv217n2p173
  • Casse N, Devauchelle N, Le Pennec M. 1998. Embryonic shell formation in the scallop Pecten maximus (Linnaeus). The Veliger 41:133–41.
  • Christo SW, Absher TM, Boehs G. 2010. Morphology of the larval shell of three oyster species of the genus Crassostrea Sacco, 1897 (Bivalvia: Ostreidae). Brazilian Journal of Biology 70:645–50. doi:10.1590/S1519-69842010000300023
  • Colin R, Salazar MZ. 2010. Temperature-mediated plasticity and genetic differentiation in egg size and hatching size among populations of Crepidula (Gastropoda: Calyptraeidae). Biological Journal of the Linnean Society 99:489–99. doi:10.1111/j.1095-8312.2009.01388.x
  • Cragg S. 1985. The adductor and retractor muscles of the veliger of Pecten maximus (L.) (Bivalvia). Journal of Molluscan Studies 51:276–83.
  • Croll RP, Dickinson AJG. 2004. Form and function of the larval nervous system in molluscs. Invertebrate Reproduction & Development 46:173–87. doi:10.1080/07924259.2004.9652620
  • Croll RP, Jackson DL, Voronezhskaya EE. 1997. Catecholamine-containing cells in larval and postlarval bivalve molluscs. The Biological Bulletin 193:116–24. doi:10.2307/1542757
  • Da Costa F, Darriba S, Martínez-Patiño D. 2008. Embryonic and larval development of Ensis arcuatus (Jeffreys, 1865) (Bivalvia: Pharidae). Journal of Molluscan Studies 74:103–09. doi:10.1093/mollus/eym051
  • Da Costa F, Nóvoa S, Ojea J, Martínez-Patiño D. 2013. Biochemical and fatty acid dynamics during larval development in the razor clam Ensis arcuatus (Bivalvia: Pharidae). Aquaculture Research 44:1926–39. doi:10.1111/j.1365-2109.2012.03197.x
  • Dickinson A, Croll R, Voronezhskaya E. 2000. Development of embryonic cells containing serotonin, catecholamines, and FMRFamide-related peptides in Aplysia californica. The Biological Bulletin 199:305–15. doi:10.2307/1543187
  • Doroudi M, Southgate PC. 2003. Embryonic and larval development of Pinctada margaritifera (Linnaeus, 1758). Molluscan Research 23:101–07. doi:10.1071/MR02015
  • Dyachuk V, Wanninger A, Voronezhskaya EE. 2012. Innervation of bivalve larval catch muscles by serotonergic and FMRF amidergic neurons. Acta Biologica Hungarica 63:221–29. doi:10.1556/ABiol.63.2012.Suppl.2.30
  • Ellis IR. 2010. Investigations of Neural Ontogeny in the Larval Oyster Crassostrea virginica and the Nudibranch Berghia verrucicornis: A Histological and Immunohistochemical Approach. MSc Thesis. Auburn University, Auburn, AL. 145 pages.
  • Ellis I, Kempf SC. 2011. Characterization of the central nervous system and various peripheral innervations during larval development of the oyster Crassostrea virginica. Invertebrate Biology 130:236–50. doi:10.1111/j.1744-7410.2011.00235.x
  • Elston R. 1999. Development, Histology and Health Management of Seed Oysters. Baton Rouge, LA: World Aquaculture Society. 110 pages.
  • Erdmann W. 1935. Untersuchungen über die Lebensgeschichte der Auster. Über die Entwicklung und die Anatomie der “ansatzreifen” Larve von Ostrea edulis mit Bermerkungen über die Lebensgeschichte der Auster. Wissenschaftliche Meeresuntersuchungen herausgegeben von der Kommission zur wissenschaftlichen Untersuchung der deutschen Meere in Kiel und der Biologischen Anstalt auf Helgoland, N.S., Helgoland Section 19(3):1–25.
  • Ericson J. 2010. Effects of Ocean Acidification on Fertilisation and Early Development in Polar and Temperate Marine Invertebrates. MSc Thesis. University of Otago, Dunedin, New Zealand. 106 pages.
  • Eyster LS, Morse MP. 1984. Early shell formation during molluscan embryogenesis, with new studies on the surf clam, Spisula solidissima. American Zoologist 24:871–82. doi:10.1093/icb/24.4.871
  • Fabbri R, Montagna M, Balbi T, Raffo E, Palumbo F, Canesi L. 2014. Adaptation of the bivalve embryotoxicity assay for the high throughput screening of emerging contaminants in Mytilus galloprovincialis. Marine Environmental Research 99:1–8. doi:10.1016/j.marenvres.2014.05.007
  • Flyachinskaya L. 2000. Localization of serotonin and FMRFamide in the bivalve mollusc Mytilis edulis at early stages of its development. Journal of Evolutionary Biochemistry and Physiology 36:66–70. doi:10.1007/BF02890668
  • Gale SL, Buritt DJ, Tervit HR, Adams SL, McGowan LT. 2014. An investigation of oxidative stress and antioxidant biomarkers during greenshell mussel (Perna canaliculus) oocyte cryopreservation. Theriogenology 82:779–89. doi:10.1016/j.theriogenology.2014.05.030
  • Gale SL, Buritt DJ, Tervit HR, McGowan LT, Adams SL. 2015. Can additives ameliorate oxidative stress and improve development of Greenshell™ mussel (Perna canaliculus) oocytes during cryopreservation? Cryoletters 36:37–44.
  • Ganesan AM, Alfaro AC, Brooks J, Higgins C. 2010. The role of bacterial biofilms and exudates on the settlement of mussel (Perna canaliculus) larvae. Aquaculture 306:388–92. doi:10.1016/j.aquaculture.2010.05.007
  • Ganesan AM, Alfaro AC, Higgins C, Brooks J. 2012. The effects of bacterial cell suspensions on mussel (Perna canaliculus) larval settlement. Aquaculture 350-353:143–46. doi:10.1016/j.aquaculture.2012.04.004
  • Gosling E. 2003. Reproduction, settlement and recruitment. In: Gosling E, editor. Marine Bivalve Molluscs. Chichester, UK: John Wiley & Sons, p 157–202.
  • Gui Y, Zamora L, Dunphy B, Jeffs A. 2015. Evaluation of the formulated diet MySpat for feeding hatchery-reared spat of the green-lipped mussel, Perna canaliculus (Gmelin, 1791). Aquaculture Research 47(12):3907–12. doi:10.1111/are.12841
  • Hickman R, Gruffydd L. 1971. The histology of the larvae of Ostrea edulis during metamorphosis. In: Fourth European Marine Biology Symposium. Bangor, UK: Cambridge University Press, p 281–94.
  • Humphreys WJ. 1969. Initiation of shell formation in the bivalve, Mytilus edulis. Proceedings of the Electron Microscope Society of America, 27th Annual Meeting, p 272–23.
  • Jackson DJ, Degnan SM, Degnan BM. 2012. Variation in rates of early development in Haliotis asinina generate competent larvae of different ages. Frontiers in Zoology 9: e2. 9 pages. doi:10.1186/1742-9994-9-2
  • Kesarcodi-Watson A, Kaspar E, Lategan MJ, Gibson L. 2010. Alteromonas macleodii 0444 and Neptunomonas sp. 0536, two novel probiotics for hatchery-reared Greenshell™ mussel larvae, Perna canaliculus. Aquaculture 309:49–55. doi:10.1016/j.aquaculture.2010.09.019
  • Kesarcodi-Watson A, Kaspar E, Lategan MJ, Gibson L. 2012. Performance of single and multi-strain probiotics during hatchery production of Greenshell™ mussel larvae, Perna canaliculus. Aquaculture 354–355:56–63. doi:10.1016/j.aquaculture.2012.04.026
  • King N, Janke A, Kaspar H, Foster S. 2005. An intensive low volume larval rearing system for the simultaneous production of many families of the Pacific oyster Crassostrea gigas. In: Proceedings of Larvi ‘05 – Fish & Shellfish Larviculture Symposium. Oostende, Belgium: European Aquaculture Society, p 236–37.
  • Kniprath E. 1980. Larval development of the shell and the shell gland in Mytilus (Bivalvia). Wilhelm Roux’s Archives of Developmental Biology 188:201–04. doi:10.1007/BF00849049
  • MacAvoy ES, Wood AR, Gardner JPA. 2008. Development and evaluation of microsatellite markers for identification of individual Greenshell™ mussels (Perna canaliculus) in a selective breeding programme. Aquaculture 274:41–48. doi:10.1016/j.aquaculture.2007.11.003
  • Martel A, Hynes TM, Buckland-Nicks J. 1995. Prodissoconch morphology, planktonic shell growth, and size at metamorphosis in Dreissena polymorpha. Canadian Journal of Zoology 73:1835–44. doi:10.1139/z95-216
  • Mouëza M, Gros O, Frenkiel L. 1999. Embryonic, larval and postlarval development of the tropical clam, Anomalocardia brasiliana (Bivalvia, Veneridae). Journal of Molluscan Studies 65:73–88. doi:10.1093/mollus/65.1.73
  • Mouëza M, Gros O, Frenkiel L. 2006. Embryonic development and shell differentiation in Chione cancellata (Bivalvia, Veneridae): an ultrastructural analysis. Invertebrate Biology 125:21–33. doi:10.1111/j.1744-7410.2006.00036.x
  • Paredes E, Adams SL, Tervit HR, Smith JF, McGowan LT, Gale SL, et al. 2012. Cryopreservation of Greenshell™ mussel (Perna canaliculus) trochophore larvae. Cryobiology 65:256–62. doi:10.1016/j.cryobiol.2012.07.078
  • Ragg NLC, King N, Watts E, Morrish J. 2010. Optimising the delivery of the key dietary diatom Chaetoceros calcitrans to intensively cultured Greenshell™ mussel larvae, Perna canaliculus. Aquaculture 306:270–80. doi:10.1016/j.aquaculture.2010.05.010
  • Redfearn P, Chanley P, Chanley M. 1986. Larval shell development of four species of New Zealand mussels: (Bivalvia, Mytilacea). New Zealand Journal of Marine and Freshwater Research 20:157–72. doi:10.1080/00288330.1986.9516140
  • Roberts R. 2013. SPATnz. Seafood New Zealand 21(2):20–21.
  • Siddall SE. 1980. A clarification of the genus Perna (Mytilidae). Bulletin of Marine Science 30:858–70.
  • Silberfeld T, Gros O. 2006. Embryonic development of the tropical bivalve Tivela mactroides (Born, 1778) (Veneridae: subfamily Meretricinae): a SEM study. Cahiers de Biologie Marine 47:243–51.
  • Stephenson RL, Chanley PE. 1979. Larval development of the cockle Chione stutchburyi (Bivalvia: Veneridae) reared in the laboratory. New Zealand Journal of Zoology 6:553–59. doi:10.1080/03014223.1979.10428397
  • Strathmann RR, Fenaux L, Sewell AT, Strathmann MF. 1993. Abundance of food affects relative size of larval and postlarval structures of a molluscan veliger. The Biological Bulletin 185:232–39. doi:10.2307/1542003
  • Tang K, Gladyshev M, Dubovskaya O, Kirillin G, Grossart H-P. 2014. Zooplankton carcasses and non-predatory mortality in freshwater and inland sea environments. Journal of Plankton Research 36:597–612. doi:10.1093/plankt/fbu014
  • Velasco LA, Barros J, Acosta E. 2007. Spawning induction and early development of the Caribbean scallops Argopecten nucleus and Nodipecten nodosus. Aquaculture 266:153–65. doi:10.1016/j.aquaculture.2007.02.015
  • Voronezhskaya EE, Nezlin LP, Odintsova NA, Plummer JT, Croll RP. 2008. Neuronal development in larval mussel Mytilus trossulus (Molusca: Bivalvia). Zoomorphology 127:97–110. doi:10.1007/s00435-007-0055-z
  • Waller TR. 1981. Functional morphology and development of veliger larvae of the European oyster, Ostrea edulis Linné. Smithsonian Contributions to Zoology 328:1–70. doi:10.5479/si.00810282.328
  • Wang G, Liu B, Tang B, Zhang T, Xiang J. 2006. Pharmacological and immunocytochemical investigation of the role of catecholamines on larval metamorphosis by β-adrenergic-like receptor in the bivalve Meretrix meretrix. Aquaculture 258:611–18. doi:10.1016/j.aquaculture.2006.04.031
  • Wang J, Wu C, Xu C, Yu W, Li Z, Li Y, et al. 2015. Voltage-gated potassium ion channel may play a major role in the settlement of Pacific oyster (Crassostrea gigas) larvae. Aquaculture 442:48–50. doi:10.1016/j.aquaculture.2015.02.033
  • Wassnig M, Southgate PC. 2012. Embryonic and larval development of Pteria penguin (Röding, 1798) (Bivalvia: Pteriidae). Journal of Molluscan Studies 78:134–41. doi:10.1093/mollus/eyr051
  • Yang B, Qin J, Shi B, Han G, Chen J, Huang H, Ke C. 2012. Molecular characterization and functional analysis of adrenergic like receptor during larval metamorphosis in Crassostrea angulata. Aquaculture 366–367:54–61. doi:10.1016/j.aquaculture.2012.08.040
  • Young T, Alfaro AC, Robertson J. 2011. Effect of neuroactive compounds on the settlement of mussel (Perna canaliculus) larvae. Aquaculture 319:277–83. doi:10.1016/j.aquaculture.2011.06.050
  • Young T, Alfaro AC, Villas-Bôas SG. 2015a. Identification of candidate biomarkers for quality assessment of hatchery-reared mussel larvae via GC/MS-based metabolomics. New Zealand Journal of Marine and Freshwater Research 49:87–95. doi:10.1080/00288330.2014.958504
  • Young T, Alfaro AC, Sánchez-Lazo C, Robertson J. 2015b. Putative involvement of adrenergic receptors in regulation of mussel (Perna canaliculus) larval settlement. Marine Biology Research 11:655–65. doi:10.1080/17451000.2014.979833
  • Young T, Alfaro AC, Villas-Bôas SG. 2015c. Metabolic profiling of mussel larvae: effect of handling and culture conditions. Aquaculture International 24(3):843–56. doi:10.1007/s10499-015-9945-0
  • Zardus JD, Morse PM. 1998. Embryogenesis, morphology and ultrastructure of the pericalymma larva of Acila castrensis (Bivalvia: Protobranchia: Nuculoida). Invertebrate Biology 117(3):221–44. doi:10.2307/3226988

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