Possible Transoceanic Rafting of Lepas Spp. on an Unopened Plastic Bottle of Chinese Origin Washed Ashore in Victoria, Australia
Floating marine debris and litter act as a vector transporting various species across long distances. The present study reports possible transoceanic rafting of a small colony of barnacles on an unopened plastic bottle of Chinese origin found washed ashore on the Ninety Mile Beach in Victoria, Australia. The crustaceans attached were identified to be the goose barnacle Lepas pectinata. Based on the number and size of the colony the marine pollutant was estimated to adrift for several months. We hypothesised the origin of the flotsam, especially the barnacles and how it made its way from the Pacific to be washed ashore in Australia. Furthermore, we identified two types of microbes, Vibrio alginolyticus and Vibrio parahaemolyticus, associated with the Lepas pectinata growing on the bottle. This study appears to be the first report of possible transoceanic rafting on unused plastic pollutants and highlights the potential environmental threats caused by plastic.
Barnes, D.K.A. and P. Milner (2005). Drifting plastic and its consequences for sessile organism dispersal in the Atlantic Ocean. Marine Biology, 146(4): 815-825.
Carlton, J.T., Chapman, J.W., Geller, J.B., Miller, J.A., Carlton, D.A., McCuller, M.I., Treneman, N.C., Steves, B.P. and G.M. Ruiz (2017). Tsunami-driven rafting: Transoceanic species dispersal and implications for marine biogeography. Science, 357(6358): 1402-1406.
Conway, D.V.P., Ellis, C.J. and I.G. Humpheryes (1990). Deep distributions of oceanic cirripede larvae in the Sargasso Sea and surrounding North Atlantic Ocean. Marine Biology, 105(3): 419-428.
David, M., Gollasch, S., Leppäkoski, E. and C. Hewitt (2015). Risk assessment in ballast water management. In: Global Maritime Transport and Ballast Water Management: Issues and Solutions, pp. 133-169.
Darwin, C. (1852). A monograph of the sub-class cirripedia, with figures of all the species: The Lepadidae; or Pedunculated Cirripedes. London, Ray Society, pp. 400.
Di Geronimo, R. (2010). Cirripeds from deep-water coral mounds off S. Maria di Leuca, Apulian Plateau Bank(Mediterranean Sea). Deep-Sea Research Part II: Topical Studies in Oceanography, 57(5-6): 487-492.
Fu, K., Li, J., Wang, Y., Liu, J., Yan, H., Shi, L. and L. Zhou (2016). An innovative method for rapid identification and detection of Vibrio alginolyticus in different infection models. Frontiers in Microbiology, 7: 651.
Gibson, R.N., Atkinson, R.J.A. and J.D.M. Gordon (2005). Oceanography and Marine Biology: An Annual Review, pp. 1-534.
Goldsmit, J., Nudds, S.H., Stewart, D.B., Higdon, J.W., Hannah, C.G. and K.L. Howland (2019). Where else? Assessing zones of alternate ballast water exchange in the Canadian eastern Arctic. Marine Pollution Bulletin, 139: 74-90.
Hinojosa, I., Boltaña, S., Lancellotti, D., Macaya, E., Ugalde, P., Valdivia, N., Vásquez, N., Newman, W.A. and M. Thiel (2006). Geographic distribution and description of four pelagic barnacles along the south east Pacific coast of Chile – A zoogeographical approximation. Revista Chilena de Historia Natural, 79(1): 13-27.
Horn, M.H., Teal, J.M. and R.H. Backus (1970). Petroleum lumps on the surface of the sea. Science, 168(3928): 245-246.
Miller, J.A., Gillman, R., Carlton, J.T., Murray, C.C., Nelson, J.C., Otani, M. and G.M. Ruiz (2018). Traitbased characterization of species transported on Japanese tsunami marine debris: Effect of prior invasion history on trait distribution. Marine Pollution Bulletin, 132: 90-101.
Minchin, D. (1996). Tar pellets and plastics as attachment surfaces for lepadid cirripedes in the North Atlantic Ocean. Marine Pollution Bulletin, 32(12): 855-859.
Rech, S., Borrell, Y. and E. García-Vazquez (2016). Marinelitter as a vector for non-native species: What we need to know. Marine Pollution Bulletin, 113(1-2): 40-43.
Ryan, P.G. and G.M. Branch (2012). The November 2011 Irruption of Buoy Barnacles Dosima Fascicularis in the Western Cape, South Africa. African Journal of Marine Science, 34(1): 157-162.
Schiffer, P.H. and H. Herbig (2016). Endorsing Darwin: Global biogeography of the epipelagic goose barnacles Lepas spp. (Cirripedia, Lepadomorpha) proves cryptic speciation. Zoological Journal of the Linnean Society, 177(3): 507-525.
Spengler, L. (1793). Beskrivelse over tvende nye Arter af Lepas, tilligemed nogle Anmærkninger over Lepades, som findes i Naturhistorie-Selskabets Skrivters. Skrivter af Naturhistorie-Selskabet, 2(2): 103-110.
Su, Y. and C. Liu (2007). Vibrio parahaemolyticus: A concern of seafood safety. Food Microbiology, 24(6): 549-558.
Tsikhon-Lukanina, E.A., Reznichenko, O.G. and G.G. Nikolaeva (2001). Ecology of invertebrates on the oceanic floating substrata in the Northwest Pacific Ocean. Oceanology, 41(4): 525-530.
Vignier, N., Barreau, M., Olive, C., Baubion, E., Theodose, R., Hochedez, P. and A. Cabie (2013). Human Infection with Shewanella putrefaciens and S. algae: Report of 16 cases in martinique and review of the literature. American Journal of Tropical Medicine and Hygiene, 89(1): 151- 156.
Whitehead, T.O., Biccard, A. and C.L. Griffiths (2011). South African pelagic goose barnacles (Cirripedia, Thoracica): Substratum preferences and influence of plastic debris on abundance and distribution. Crustaceana, 84(5-6): 635-649.