Global patterns of epipelagic gelatinous zooplankton biomass

S1. Supplementary data table

Locations and survey data for the 58 locations sampled. Biomass data (gWW100m-3) is listed for the mean biomass across all samples, and the minimum and maximum survey biomass. Habitat was classified into E = Estuarine, NS = Nearshore marine (0-30m); N = Neritic (30-150m), O = Oceanic (>150m). Sample methods were A = Acoustic survey, AN = Acoustic survey with net validation, AV = Aerial & Visual surveys, BN = Bongo nets, DT = Demersal Trawl, MN = MIK net, N = net, unidentified, RMT = Rectangular Midwater Trawl net, RN = Ring net, S = Seine net, TN = Trawl net, V = Visual. Mesh size (µm) Net diameters (m) or cross-sectional area (m2) are given where known. In all cases ‘–’ = unknown. Species codes, length/carbon conversion references and source data references are listed below the table. * Papathassiou et al (1987) cited in Lucas & Williams (1994)[1]. # - areas calculated to be 10x smaller than listed in the paper based on dimensions [2].

Sampling locationMeanSurveyNumber ofSampleMeshNetBiomassReferences

No.LocationLonLatHabitatDepthSpeciesYearsYearsSamplesMethodsizeDiamAreaMeanMinMaxDataConversion

1Jellyfish Lake, Palau 134.5 7.1 NS20c,m1979126V - 1 - 50,294 --[3] [4, 5]

2N. Adriatic 13.46 45.18 N55q1985-6290RN500 1 - 23194.8 300 83100 [6] [7]

3Honjo Lake, Japan 133.2 35.5E5c20071270AN500 0.6 - 21846.8 - -[8] [9]

4Lake Illawarra, Aus 150.8 -34.5E2e1997-82270V - - - 18003.7 709069000 [5]

5Gulf of Mexico, USA -89.3 30.15NS3s2000160AV - - - 13561 0891100 [2] #

6Laguna Joyada, P. Rico -67.11 18.07 NS3s1985-62104 S 4000 - 81 11714438 32486 [10] [2]

7Sea of Mamara 27.78 40.95N68n1992116RMT500 - 1 10000 2575 53640 [11]

8Kerteminde Fjord, Den 10.64 55.44E2c1991-22168RN 500 0.6 - 7517 0.733800 [12] [13]

9Sea of Azov 36 46 E13n1989-9911-RMT500- 1 7406 3800 12300 [14]

10Veliko Jezero, Mljet, Cr. 17.33 42.75 NS30c20061- A - - - 6968 312 20020 [15]

11Chesapeake Bay, USA -76.2 37.6E10i,o1985-00 875 RN 1600 1 - 6332.9- - [16] [17, 18]

12Elefsis bay, Gre 23.51 38.04E20c1983-53--- - - 4500 32 9052*[1] [19]

13Limfjorden, Den 8.5 56.75E4.9c2003112BN2000 - 1.77 4366 0.3 20860 [20] [13]

14Eckernforde Bay, Den 10.15 54.36N24c1982-3214RN 500 1 - 2913 1.087776 [21]

15Long Is Sound, USA -71.95 40.85E25n1982,85 278 - - - - 2872.1202120226 [22]

16Benguela upwelling 13.5 -21.5 O400a,g1998-9266TN 36-400000 12 - 2474011759 [23] [23]

17Bosphorus/Mamara junc 28.99 40.98 E30c1985-6232 RN 28000 1.12 - 1489 0 7338.5 [24]

18Kiel Fjord, Den 10.17 54.36NS13c1976-942600RN500 1 - 1482 0 3928[25]

19Horsea Lake, UK -1.1 50.83NS3c19901>11RN210 0.5 - 1397.8 5.8 4841 [26] [4]

20Wadden Sea, NL 4.86 52.95E10c1991-22-N- - - 1127 939 1316[27] [13]

21Narragansett Bay, USA -71.36 41.6E9n1971-2,4-98188 - - - - 1174.859810157 [28, 29]

22Kiel Bight, Baltic 10.5 54.6NS16c1990-34135RN500 0.6 - 1109 150 2030[19] [13]

23Southampton Water, UK -1.35 50.86 E10c 1989-913 30 RN 210 0.5 -968 23 910 [1] [13]

24Hauraki Gulf, NZ 175.19 -36.63N60x1985-611056RN 365 0.8 - 914.8 304070 [30]

25Sea of Japan 129 34 N 65p200513RN10000 1.5 - 750 300 1500 [31]

26Black Sea 34.35 42.24 N100c,n1991-33457RN500 1.5 - 557 317 702[32]

27Black Sea 37.68 44.44 N100c1995116RN200 0.57 - 523 471 639[33]

28Benguela upwelling 14.17 -23 O1000a,g1982-982268RN 300 0.57 - 494 -- [34]

29Agulhas Bank, SA 20.41 -35.4 N80t1994112N - - - 416.7 2.12672.8 [35] [36]

30Antarctic Polar Front -55 -50O1000r1994114RMT- - 25 320 - - [37] [38]

31Bornholm Basin, Baltic 16 55E60c,k,l20021104BN335 0.6 - 153.6 19 280[39]

32Rio de la Plata, Arg -54 -36N75o1989112RMT1000 - 8 134 0 134[40] [17]

33Irish Sea -5.97 53.86 N68c,g,k,l1994-0916876MN5000 - 5 131.9 9.95 280[41]

34Port hacking, NSW 151.15 -34.1E35t1967-8136N - - - 98.2 32172[42] [43]

35NE Prince William Sound -146.560.7O300a,d,k1998-9216PS 25000 - 8500 66.235.297.2 [44]

36C Atlantic -18 4 O150w1987116RMT750- 1 38.2 - - [45]

37C. Atlantic -24 0 O150w1987111RMT750- 1 36.1 - - [45]

38C Prince William Sound -147.2560.7O300a,d,k1998-9216PS 25000 - 8500 35 13.9 56.2 [44]

39Argentina -63.55 -41.68 N50o1989117RMT1000 - 8 34.8 0 34.8[40] [17]

40SW Prince William Sound -148 60.2O300a,d,k1998-9216PS 25000 - 8500 26.88.445.2 [44]

41Californian upwelling -124.37 43.5N200d,f2000,02 2365 TN 8-1626000 - 54020.53.8 36 [46]

42W N Denmark, North Sea 7.46 56.47 N40c,k,l 1971-8610 120 TN 10-100000 -1415.8 1.1 40.7 [4] [4]

43 S North Sea 8 54 NS20c,k,l2004-52550BN3350.6 - 13.3 0.49 73 [47][4]

44Scottish E Coast -2 58 N50c,k,l1971-8613312TN10-100000 - 14 11.6 0.0133[4] [4]

45NW Bering Sea 178 64 N100b,i,w2002-065108TN- - - 7.98 4.4 10.8[48]

46Scottish N Coast -4 59 N60c,k,l1971-861188TN10-100000 - 14 5.9 0.323[4] [4]

47E of Shetland, North Sea 1 60.5N120c,k,l1971-86 15360 TN 10-100000 - 144.80 25 [4] [4]

48SW Bering Sea 176 61 O700b,h,u2002-065372TN- - - 3.6 0.45 8[48]

49C Atlantic -12 0 O1500w1987121RMT750- 8 1.8 - - [45]

50East Arctic, Norw’ Bar’ Sea 8 79.25O1254r1993-539TN 16-38000 - 900 1.703.33 [49]

51Coastal, NBS 10 67 O 1254 r1993-5324TN 16-38000 - 900 1.102.16 [49]

52E Weddell Sea 20.06 -59.06O5100v,y1979118RMT4500 - 8 1.0 0.5 13.17[50]

53Gulf of Oman 51.06 28.1N100j20021193TN80-400000 72 - 0.6 - -[51]

54C Atlantic -6 0 O1500z1987124RMT750- 1 0.5 - - [45]

55Coastal & Atlantic, NBS 6 66O1254r1993-5392TN16-38000 - 900 0.5 0 0.83 [49]

56Atlantic, NBS 2 69 O 1254r1993-53168TN16-38000 - 900 0.22 03.33[49]

57Atlantic & Arctic, NBS -6 68O1254r1993-5359TN16-38000 - 900 0.11 03.33[49]

58Arctic, NBS -9 74 O 1254r1993-5360TN16-38000 - 900 0 0 0[49]

1

Species code(reported as given in the source literature. Aurelia sp. have subsequently been reclassified (Dawson et. al. 2005 [52]) –

1

a – Aequorea aequorea
b – A. forskalea
c – Aurelia aurita
d – A. labiata
e –Catostylus mosaicus

f – Chrysaora fuscescens
g – C. hysoscella,

h – C. melanaster

i – C. quinquecirrha

j – Cramboniella orsini
k – Cyanea capillata
l – C. lamarckii
m – Mastigias papua
n – Mnemiopsis leidyi

o – M. mccraydi
p – Nemopilema nomurai

q – Pelagia noctiluca
r – Periphylla periphylla

s – Phyllorhiza punctata

t – Thalia democratica
u – Hydromedusae (unidentified)

v – Medusae (unidentified),
w – Pyrosomes,
x – Salps,
y – Siphonophores (unidentified),
z – Tunicates (unidentified).

1

Supplementary References

1 Lucas, C. H., Williams, J. A. 1994 Population dynamics of the scyphomedusa Aurelia aurita in Southampton Water. J. Plankton Res.16, 879-895.

2 Graham, W. M., Martin, D. L., Felder, D. L., Asper, V. L., Perry, H. M. 2003 Ecological and economic implications of a tropical jellyfish invader in the Gulf of Mexico. Biol. Invasions. 5, 53-69.

3 Hamner, W. M., Gilmer, R. W., Hamner, P. P. 1982 The physical, chemical, and biological characteristics of a stratified, saline, sulfide lake in Palau. Limnol. Oceanogr.27, 896-909.

4 Hay, S. J., Hislop, J. R. G., Shanks, A. M. 1990 North Sea Scyphomedusae - summer distribution, estimated biomass and significance particularly for O-group Gadoid fish. Neth. J. Sea Res.25, 113-130.

5 Pitt, K. A., Kingsford, M. J. 2003 Temporal variation in the virgin biomass of the edible jellyfish, Catostylus mosaicus (Scyphozoa, Rhizostomeae). Fish. Res.63, 303-313.

6 Zavodnik, D. 1991 Occurrences of Pelagia noctiluca (Scyphozoa) in North Adriatic Coastal Areas. In Jellyfish blooms in the Mediterranean: Proceedings of the II Workshop on Jellyfish in the Mediterranean Sea. (ed.^eds. UNEP), pp. 202-211. Trieste 2-5 September 1987: UNEP.

7 Morand, P., Carre, C., Biggs, D. C. 1987 Feeding and metabolism of the jellyfish Pelagia noctiluca (scyphomedusae, semaeostomae). J. Plankton Res.9, 651-665.

8 Han, C. H., Uye, S. I. 2009 Quantification of the abundance and distribution of the common jellyfish Aurelia aurita s.l. with a Dual-frequency IDentification SONar (DIDSON). J. Plankton Res.31, 805-814.

9 Uye, S., Shimauchi, H. 2005 Population biomass, feeding, respiration and growth rates, and carbon budget of the scyphomedusa Aurelia aurita in the Inland Sea of Japan. J. Plankton Res.27, 237-248.

10 Garcia, J. R. 1990 Population-dynamics and production of Phyllorhiza punctata (Cnidaria, Scyphozoa) in Laguna Joyuda, Puerto-Rico. Mar. Ecol. Prog. Ser.64, 243-251.

11 Shiganova, T., Tarkan, A. N., Dede, A., Cebeci, M. 1995 Distribution of the ichthyo-jellyplankton Mnemiopsis leidyi (Agassiz, 1865) in the Marmara Sea (October 1992). Turk. J. Mar. Sci.1, 3-12.

12 Olesen, N. J., Frandsen, K., Riisgård, H. U. 1994 Population dynamics, growth and energetics of jellyfish Aurelia aurita in a shallow fjord. Mar. Ecol. Prog. Ser.105, 9-18.

13 Purcell, J. E., Fuentes, V., Atienza, D., Tilves, U., Astorga, D., Kawahara, M., Hays, G. C. 2010 Use of respiration rates of scyphozoan jellyfish to estimate their effects on the food web. Hydrobiologia. 645, 135-152.

14 Shiganova, T., Mirzoyan, Z., Studenikina, E., Volovik, S., Siokou-Frangou, I., Zervoudaki, S., Christou, E., Skirta, A., Dumont, H. 2001 Population development of the invader ctenophore Mnemiopsis leidyi, in the Black Sea and in other seas of the Mediterranean basin. Mar. Biol.139, 431-445.

15 Alvarez Colombo, G., Benovi, A., Malej, A., Lu i, D., Makovec, T., Onofri, V., Acha, M., Madirolas, A., Mianzan, H. 2009 Acoustic survey of a jellyfish-dominated ecosystem (Mljet Island, Croatia). Hydrobiologia. 616, 99-111.

16 Purcell, J. E., Decker, M. B. 2005 Effects of climate on relative predation by scyphomedusae and ctenophores on copepods in Chesapeake Bay during 1987-2000. Limnol. Oceanogr.50, 376-387.

17 Shenker, J. M. 1985 Carbon content of the neritic scyphomedusa Chrysaora fuscescens. J. Plankton Res.7, 169-173.

18 Purcell, J. E., Shiganova, T. A., Decker, M. B., Houde, E. D. 2001 The ctenophore Mnemiopsis in native and exotic habitats: US estuaries versus the Black Sea basin. Hydrobiologia. 451, 145-176.

19 Schneider, G., Behrends, G. 1994 Population dynamics and the trophic role of Aurelia aurita medusae in the Kiel Bight and Western Baltic. ICES J. Mar. Sci.51, 359-367.

20 Moller, L. F., Riisgaard, H. U. 2007 Population dynamics, growth and predation impact of the common jellyfish Aurelia aurita and two hydromedusae, Sarsia tubulosa and Aequorea vitrina in Limfjorden (Denmark). Mar. Ecol. Prog. Ser.346, 153-165.

21 Schneider, G. 1989 Estimation of food demands of Aurelia aurita medusae populations in the Kiel Bight/western Baltic. Ophelia. 31, 17-27.

22 Beckman, B. R., Peterson, W. T. 1986 Egg production by Acartia tonsa in Long Island Sound. J. Plankton Res.8, 917-925.

23 Buecher, E., Sparks, C., Brierley, A. S., Boyer, H., Gibbons, M. J. 2001 Biometry and size distribution of Chrysaora hysoscella (Cnidaria, Scyphozoa) and Aequorea aequorea (Cnidaria, Hydrozoa) off Namibia with some notes on their parasite Hyperia medusarum. J. Plankton Res.23, 1073-1080. (10.1093/plankt/23.10.1073)

24 Bingel, F. 1991 Occurrence of jellyfish at the Black Sea-Marmara junctions of the Bosphorus. In Jellyfish blooms in the Mediterranean: Proceedings of the II Workshop on Jellyfish in the Mediterranean Sea. (ed.^eds. UNEP), pp. 58-64. Trieste, 2-5 September 1987: UNEP.

25 Moller, H. 1980 Scyphomedusae as predators and food competitors of larval fish. Meeresforschung. 28, 90-100.

26 Lucas, C. H. 1996 Population dynamics of Aurelia aurita (Scyphozoa) from an isolated brackish lake, with particular reference to sexual reproduction. J. Plankton Res.18, 987-1007.

27 Van der Veer, H. W., Oorthuysen, W. 1985 Abundance, growth and food demand of the scyphomedusa Aurelia aurita in the western Wadden Sea. Neth. J. Sea Res.19, 38-44.

28 Kremer, P., Nixon, S. 1976 Distribution and abundance of the ctenophore, Mnemiopsis leidyi in Narragansett Bay. Estuarine and Coastal Marine Science. 4, 627-639.

29 Deason, E. E. 1982 Mnemiopsis leidyi (Ctenophora) in Narragansett Bay, 1975-1979: Abundance, size composition and estimation of grazing. Estuar. Coast. Shelf Sci.15, 121-134.

30 Zeldis, J. R., Davis, C. S., James, M. R., Ballara, S. L., Booth, W. E., Chang, F. H. 1995 Salp grazing: effects on phytoplankton abundance, vertical distribution and taxonomic composition in a coastal habitat. Mar. Ecol. Prog. Ser.126, 267-283.

31 Uye, S. 2008 Blooms of the giant jellyfish Nemopilema nomurai: a threat to the fisheries sustainability of the East Asian Marginal Seas. Plankton and Benthos Research. 3, 125-131.

32 Mutlu, E., Bingel, F., Gucu, A. C., Melnikov, V. V., Niermann, U., Ostr, N. A., Zaika, V. E. 1994 Distribution of the new invader Mnemiopsis sp. and the resident Aurelia aurita and Pleurobrachia pileus populations in the Black Sea in the years 1991-1993. ICES J. Mar. Sci.51, 407-421.

33 Weisse, T., Gomoiu, M. T. 2000 Biomass and size structure of the scyphomedusa Aurelia aurita in the northwestern Black Sea during spring and summer. J. Plankton Res.22, 223-239.

34 Fearon, J. J., Boyd, A. J., Schülein, F. H. 1992 Views on the biomass and distribution of Chrysaora hysoscella (Linne, 1766) and Aequorea aequorea (Forskaal, 1775) off Namibia, 1982-1989. Sci. Mar.56, 75-85.

35 Gibbons, M. J. 1997 Vertical distribution and feeding of Thalia democratica on the Agulhas Bank during March 1994. J. Mar. Biol. Assoc. U.K.77, 493-505.

36 Huntley, M. E., Sykes, P. F., Marin, V. 1989 Biometry and trophodynamics of Salpa thompsoni foxton (Tunicata: Thaliacea) near the Antarctic Peninsula in austral summer, 1983–1984. Polar Biol.10, 59-70.

37 Pages, F., White, M. G., Rodhouse, P. G. 1996 Abundance of gelatinous carnivores in the nekton community of the Antarctic Polar Frontal Zone in summer 1994. Mar. Ecol. Prog. Ser.141, 139-147.

38 Haddad, M. A., Junior, N. 2006 Reappearance and seasonality of Phyllorhiza punctata von Lendenfeld(Cnidaria, Scyphozoa, Rhizostomeae) medusae in southern Brazil. Rev. Bras. Zool.23, 824-831.

39 Barz, K., Hirche, H. J. 2005 Seasonal development of scyphozoan medusae and the predatory impact of Aurelia aurita on the zooplankton community in the Bornholm Basin (central Baltic Sea). Mar. Biol.147, 465-476.

40 Mianzan, H. W., Guerrero, R. A. 2000 Environmental patterns and biomass distribution of gelatinous macrozooplankton. Three study cases in the South-western Atlantic Ocean. Sci. Mar.64, 215-224.

41 Lynam, C. P., Lilley, M. K. S., Bastian, T., Doyle, T. K., Beggs, S. E., Hays, G. C. 2010 Have jellyfish in the Irish Sea benefited from climate change and overfishing? Global Change Biology. (10.1111/j.1365-2486.2010.02352.x)

42 Heron, A. C., Benham, E. E. 1984 Individual growth rates of salps in three populations. J. Plankton Res.6, 811-828.

43 Heron, A. C., McWilliam, P. S., Dal Pont, G. 1988 Length-weight relation in the salp Thalia democratica and potential of salps as a source of food. Mar. Ecol. Prog. Ser.42, 125-132.

44 Purcell, J. E. 2003 Predation on zooplankton by large jellyfish, Aurelia labiata, Cyanea capillata and Aequorea aequorea, in Prince William Sound, Alaska. Mar. Ecol. Prog. Ser.246, 137-152.

45 Piontkovski, S., Williams, R., Ignatyev, S., Boltachev, A., Chesalin, M. 2003 Structural-functional relationships in the pelagic community of the eastern tropical Atlantic Ocean. J. Plankton Res.25, 1021-1034.

46 Suchman, C. L., Brodeur, R. D. 2005 Abundance and distribution of large medusae in surface waters of the northern California Current. Deep-Sea Res. Part II Topic Stud. Oceanogr.52, 51-72.

47 Barz, K., Hirche, H. J. 2007 Abundance, distribution and prey composition of scyphomedusae in the southern North Sea. Mar. Biol.151, 1021-1033.

48 Zavolokin, A., Glebov, I., Kosenok, N. 2008 Distribution, quantitative composition, and feeding of jellyfish in the Western Bering Sea in summer and fall. Russian Journal of Marine Biology. 34, 461-467.

49 Dalpadado, P., Ellertsen, B., Melle, W., Skjoldal, H. R. 1998 Summer distribution patterns and biomass estimates of macrozooplankton and micronekton in the Nordic Seas. Sarsia. 83, 103-116.

50 Pugh, P. R., Pages, F., Boorman, B. 1997 Vertical distribution and abundance of pelagic cnidarians in the eastern Weddell Sea, Antarctica. J. Mar. Biol. Assoc. U.K.77, 341-360.

51 Daryanabard, R., Dawson, M. N. 2008 Jellyfish blooms: Crambionella orsini (Scyphozoa: Rhizostomeae) in the Gulf of Oman, Iran, 2002–2003. J. Mar. Biol. Assoc. U.K.88, 477-483.

52 Dawson, M. N., Gupta, A. S., England, M. H. 2005 Coupled biophysical global ocean model and molecular genetic analyses identify multiple introductions of cryptogenic species. Proc. Natl. Acad. Sci. U.S.A.102, 11968-11973.

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