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Harpactocarcinus from the Eocene of Istria, Croatia, and the paleoecology of the Zanthopsidae Via, 1959 (Crustacea: Decapoda: Brachyura)

Published online by Cambridge University Press:  11 August 2017

Carrie E. Schweitzer
Affiliation:
Department of Geology, Kent State University Stark Campus, Canton, Ohio 44720,
Vlasta Ćosović
Affiliation:
Department of Geology and Paleontology, Faculty of Science, University of Zagreb, Croatia,
Rodney M. Feldmann
Affiliation:
Department of Geology, Kent State University, Kent, Ohio 44242,

Abstract

Harpactocarcinus punctulatus istriensis Bachmayer and Nosan, 1959 is elevated to species level. Analysis of the larger foraminiferans associated with specimens of H. istriensis suggests a habitat preference for off-shore, clear, shelf environments below fair-weather wave base and an age of early to middle Lutetian (Eocene). A review of the paleoenvironmental indicators for nearly all species within the genera referred to the Zanthopsidae Via, 1959 suggests that all exhibit similar habitat preferences. Description of the paleoenvironmental preference for an entire extinct decapod family has not before been possible.

Type
Research Article
Copyright
Copyright © The Paleontological Society 

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References

Bachmayer, F., and Nosan, A. 1959. Ein bemerkenswerter Crustaceenfund aus Gračišče bei Kubed (Nordistrien). Geologija (Ljubljana), 5:8085, pl. 1.Google Scholar
Beckmann, H. 1953. Palachemonella torleyi n. gen. et n. sp., eine neue Foraminifere aus den Schleddenhofer Schicten (Mitteldevon). Geologisches Jahrbuch, 67:259272, pls. a, b.Google Scholar
Bell, T. 1858. A Monograph of the Fossil Malacostracous Crustacea of Great Britain, Pt. I, Crustacea of the London Clay. Palaeontographical Society, London, 44 p.Google Scholar
Bergant, S., Tišljar, J., and Šparica, M. 2003. Eocene Carbonates and Flysch deposits of the Pazin Basin, p. 5763. In Vlahovi, I. and Tišljar, J. (eds.), Evolution of Depositional Environments from the Palaeozoic to the Quaternary in the Karst Dinarides and Pannonian Basin. 22nd IAS Meeting of Sedimentology, Opatija, 17–19 September 2003, Field Guidebook.Google Scholar
Berggren, W. A., Kent, D. V., Swisher, C. C. III, and Aubry, M.-P. 1995. A revised Cenozoic geochronology and chronostratigraphy. Society of Economic Paleontologists and Mineralogists Special Publication, 54:129212.Google Scholar
Bittner, A. 1882. In Abich, H., Geologische Forschungen in den Kaukasusländern. II. Geologie des Armenischen Hochlandes. Westhälfte, I. Hölder, A., Wien, 488 p., 19 pls. Google Scholar
Bittner, A. 1883. Neue Beiträge zur Kenntnis der Brachyurenfauna des Alttertiärs von Vicenza und Verona. Denkschriften der kaiser. Akademie der Wissenschaften in Wien, 46:299316, 1 pl.Google Scholar
Bittner, A. 1884. Beiträge zur Kenntnis tertiärer Brachyurenfauna. Denkschriften der kaiser Akademie der Wissenschaften in Wien, 48:1530, pls. 1, 2.Google Scholar
Bittner, A. 1893. Decapoden des pannonischen Tertiärs. Sitzungsberichte der kais. Akademie der Wissenschaften in Wien, Mathematisch-Naturwissenschaftliche Klasse, 102:1037, pls. 1, 2.Google Scholar
Blow, W. C., and Manning, R. B. 1997. A new genus, Martinetta, and two new species of xanthoid crabs from the middle Eocene of the Carolinas, U.S.A. Tulane Studies in Geology and Paleontology, 29:126.Google Scholar
Butterlin, J., Vrielynck, B., Guiraud, R., Bignot, G., Colchen, M., Clermonte, J., Andreieff, P., Bellion, Y., Benkhelil, J., Cavelier, C., Cornee, J. J., Mercier de Lepinay, B., Montenat, C., Moreau, C., Poisson, A., and Vila, J. M. 1993a. Lutetian palaeoenvironments (46 to 40 Ma). In Dercourt, J., Ricou, L. E., and Vrielynck, B. (eds.), Atlas Tethys Palaeoenvironmental Maps. BEICIP-FRANLAB, Rueil-Malmaison.Google Scholar
Butterlin, J., Vrielynck, B., Bignot, G., Clermonte, J., Colchen, M., Dercourt, J., Guiraud, R., Poisson, A., and Ricou, L. E. 1993b. Lutetian (46 to 40 Ma), p. 197209. In Dercourt, J., Ricou, L. E., and Vrielynck, B. (eds.), Atlas Tethys Palaeoenvironmental Maps. Explanatory Notes. Gauthier-Villars, Paris.Google Scholar
Ćosović, V., and Drobne, K. 1998. Lutetian orthophragminae from the Istrian Peninsula (Adriatic Sea, Croatia and Slovenia), p. 173181. In Hottinger, L. and Drobne, K. (eds.), Paleogene Shallow Benthos of the Tethys. Dela–Opera SAZU 4 razr 34/2, Ljubljana.Google Scholar
Ćosović, V., Drobne, K., and Moro, A. 2004. Paleoenvironmental model for Eocene foraminiferal limestones of the Adriatic carbonate platform (Istrian peninsula). Facies, 50:6175.Google Scholar
Cushman, J. A. 1925. New foraminifera from the upper Eocene of Mexico. Contributions of the Cushman Laboratory of Foraminiferan Research, 1(1):48, pl. 1.Google Scholar
Cushman, J. A., and Jarvis, P. W. 1929. New Foraminifera from Trinidad. Contributions of the Cushman Laboratory of Foraminiferan Research, 5:617, pls. 2, 3.Google Scholar
D'Archiac, A. 1850. Histoire des progrés de la Géologie de 1834 à 1849. Formation nummulitique de l'Espagne, 3:1304.Google Scholar
Desmarest, A. G. 1822. Malacostracés: Dictionnaire des sciences naturelles, 28:138425. F. G. Levreault, Paris, France.Google Scholar
Drobne, K., Pavlovec, R., Šikić, L., and Benić, J. 1979. Excursion F, Pićan, Istria–Cuisian, Lutetian, p. 177184. In Drobne, K. (ed.), Guidebook of the 16th European Micropaleontological Colloquium. Geological Development in Slovenia and Croatia, Ljubljana.Google Scholar
Ehrenberg, K. 1944. Ergänzende Bemerkungen zu den seinerzeit aus dem Miozän von Burgschleinitz beschriebenen Gangkernen und Bauten dekapoder Krebse. Paläontologische Zeitschrift, 23:354359.Google Scholar
Federal Geological Survey. 1970. Basic Geological Map of Former Yugoslavia, 1:500,000. Federal Geological Survey, Belgrade.Google Scholar
Feldmann, R. M., Tucker, A. B., and Berglund, R. E. 1991. Paleobathymetry of decapod crustaceans, Washington. National Geographic Research and Exploration, 7:352363.Google Scholar
Guinot, D. 1977. Propositions pour une nouvelle classification des Crustacés Décapodes Brachyoures. Compte Rendu Académie des Sciences de Paris, serie D, 285:10491052.Google Scholar
Hollaus, S., and Hottinger, L. 1998. Temperature dependence of endosymbiotic relationships: evidence from the depth range of Mediterranean Amphistegina lessoni (Foraminiferida) truncated by the thermocline. Eclogae Geologicae Helveticae, 90:591597.Google Scholar
Juračić, M. 1979. Dubina sedimentacije “lapora s rakovicama” iz odnosa planktonskih i bentičkih foraminifera. Geološki Vjesnik, 31:6167.Google Scholar
König, C. D. E. 1825. Icones Fossilium Sectiles. G. B. Sowerby, London, 4 p., 19 pls.Google Scholar
Latreille, P. A. 1802–1803. Histoire Naturelle, Générale et Particulière, des Crustacés et des Insects. Volume 3. F. Dufart, Paris, 468 p.Google Scholar
Less, G. 1987. Paleontology and stratigraphy of the European Orthophragminae. Geologica Hungarica, Series Palaeontologica, 51:49373.Google Scholar
Lőrenthey, E. 1898. Beiträge zur Decapodenfauna des Ungarischen Tertiärs. Természetrajzi Füzetek, XXI:1133, pls. I–IX.Google Scholar
Lundgren, S. A. B. 1891. Studier öfver fossilförande lösa block. Geoliska Föreningens i Stockholm Förhandlingar, 13:111121.Google Scholar
MacLeay, W. S. 1838. On the Brachyurous Decapod Crustacea brought from the Cape by Dr. Smith, p. 5371, 2 plates. In Illustrations of the Annulosa of South Africa; being a portion of the objects of Natural History chiefly collected during an expedition into the interior of South Africa, under the direction of Dr. Andrew Smith, in the years 1834, 1835, and 1836; fitted out by “The Cape of Good Hope Association for Exploring Central Africa.” Smith, Elder, London.Google Scholar
Magdalenić, Z. 1972. Sedimentology of Central Istria flysch deposits. Prirodoslovna Istra ivanja, Acta Geologica VII/2, 39:71100.Google Scholar
McCoy, F. 1849. On the classification of some British fossil Crustacea, with notices on the new forms in the University collection at Cambridge. Annals and Magazine of Natural History, second series, 4(21):161179.Google Scholar
Mikuž, V. 2002. Nova najdba rakovice Harpactoxanthopsis quadrilobata (Desmarest) v eocenskem flišu pri Gračišću blizu Pazina v Istri (Hrvaška). Geologija (Ljubljana), 45(1):97102.Google Scholar
Milne Edwards, A. 1862–1865. Monographie des crustacés de la famille cancériens. Annals des Sciences Naturelles, Zoologie, series 4, 18(1862):3185; 20(1863):273–324; series 5, 1(1864):31–33, 3(1865):297–351.Google Scholar
Müller, P., and Collins, J. S. H. 1991. Late Eocene coral-associated decapods (Crustacea) from Hungary. Contributions to Tertiary and Quaternary Geology, 28(2–3):4792.Google Scholar
Odin, G. S., and Matter, A. 1981. De glaucodiarum origine. Sedimentology, 28:611641.Google Scholar
Pavlovec, R., and Pavšič, J. 1985–1986. Biostratigrafija plasti z rakovicami v Istri. Geologija, 28/29:5568.Google Scholar
Pavlovec, R., Drobne, K., Ćosović, V., Šikić, L., and Benić, J. 1991. The Pićan-profile, middle and upper Cuisian, lower and middle Lutetian, p. 7382. In Drobne, K. and Pavlovec, R. (eds.), Introduction of the Paleogene SW Slovenia and Istria. Field and Guidebook. IGCP Project 286 “Early Paleogene Benthos,” Second Meeting, Postojna.Google Scholar
Pavšič, J., and Peckmann, J. 1996. Stratigraphy and sedimentology of the Piran Flysch Area (Slovenia). Annales, 6:123138.Google Scholar
Pleničar, M., Polšak, A., and Šikić, D. 1973. Osnovna geološka karta 1:100000, Tumač za list Trst (Basic geologic map 1:100,000 explanatory note for Trieste Sheet). Geološki zavod Ljubljana in Institut za geološka istra ivanja Zagreb, Zvezni geološki zavod, Beograd.Google Scholar
Rathbun, M. J. 1926. The fossil stalk-eyed Crustacea of the Pacific slope of North America. United States National Museum Bulletin, 138, 155 p.Google Scholar
Salopek, M. 1954. Prilozi poznavanju geološke grae Labinskog i Pićanskog basena Istre. (Contribution ro recognitions of the geologic composition of Labin and Pićan basins in Istria.) Prirodoslovna Istra ivanja Jugoslavija Akademie, 26:537.Google Scholar
Schlumberger, C. 1903. Troisième note sur les Orbitoïdes. Bulletin de la Societé Géologique de France, serie 4, 3 (part 3):273289.Google Scholar
Schweitzer, C. E. 2003. Utility of proxy characters for classification of fossils: an example from the fossil Xanthoidea (Crustacea: Decapoda: Brachyura). Journal of Paleontology, 77:11071128.Google Scholar
Sowerby, J. de C. 1840. In Sykes, W. H., A notice respecting some fossils collected in Cutch, by Capt. Walter Smeem of Bombay Army. Transactions of the Geological Society of London, 2(5):715719.Google Scholar
Stache, G. 1889. Die liburnische Stufe und deren Grenzhorizonte (Erste Abteilung: geologische Übersucht und Beschreibung der Faunen und Floren-Reste). Abhandlungen der k. k. Geologischen Reichsanstalt, 13:1170.Google Scholar
Stenzel, H. B. 1934. Decapod crustaceans from the middle Eocene of Texas. Journal of Paleontology, 8:3856.Google Scholar
Subbotina, N. N. 1953. Globigerinidy, Hantkeninidy i Globorotaliidy: Iskopaemye Foraminiferyy SSR. VNIGRI, Trudy, n.s., 76:1296, 41 pls.Google Scholar
Tarlao, A. 2000. Considerazioni sui decapodi brachiuri dell'Istria e loro attribuzione a Harpactoxanthopsis quadrilobata (Desmarest, 1822). Natura Nascosta, 21:2934.Google Scholar
Taylor, J. 1978. Cenozoic, p. 323351. In McKerrow, W. S. (ed.), The Ecology of Fossils. MIT Press, Cambridge, Massachusetts, 384 p.Google Scholar
Toniolo, A. R. 1909. L'Eocene dei dintorni di Rozzo in Istria e la sua fauna. Palaeontographia Italica, XV:237295, pls. XXIV–XXVI.Google Scholar
Toumarkine, M., and Bolli, H. M. 1970. Evolution de Globorotalia cerroazulensis (Cole) dans l'Eocène moyen et supérieur de Possagno (Italie). Revue de Micropaléontogie, 13:131145, 17 figs., 2 pls.Google Scholar
Toumarkine, M., and Luterbacher, H. 1985. Paleocene and Eocene planktic Foraminifera, p. 87154. In Bolli, H. M., Saunders, J. B., and Perch-Nielsen, K. (eds.), Plankton Stratigraphy. Cambridge University Press, Cambridge.Google Scholar
Tunis, G., and Uchman, A. 1996. Ichnology of Eocene flysch deposits of the Istria Peninsula, Croatia and Slovenia. Ichnos, 5:122.Google Scholar
van der Zwaan, G. J., Jorissen, F. J., and Stigter, H. S. 1990. The depth dependency of planktonic/benthic foraminiferal ratios: constraints and applications. Marine Geology, 95:116.Google Scholar
Van Straelen, V. 1927. Contribution à l'étude des Crustacés décapodes fossiles de la Péninsule Ibérique. EOS, Revista España de Entomologie, 3:7994, 4 pls.Google Scholar
Via, L. 1959. Decápodos fósiles del Eoceno español. Boletín Instituto Geológico y Minero de España, 70:331402.Google Scholar
Via, L. 1969. Crustáceos decápodos del Eoceno Español. Pirineos, 91–94:1479.Google Scholar
Vogl, V. 1912. Die Fauna der Eozänen mergel im Vinodol in Kroatien. Mitteilungen aus dem Jahrbuche der Kgl. Ungarischen Geologischen Reichsanstalt, XX(2):81114, pl. IV.Google Scholar
Weber, F. 1795. Nomenclator entomologicus secundum Entomologiam Systematicum ill. Fabricii adjectis sociebus recens detectis et varietatibus. C. E. Bohn, Chilonii and Hamburgi, 171 p.Google Scholar
Weinzierl, L. L., and Applin, E. R. 1929. The Claiborne Formation on the coastal domes. Journal of Paleontology, 3:384410, pls. 42–44.Google Scholar
Wilmarth, M. G. 1957. Lexicon of Geologic Names of the United States (including Alaska). United States Geological Survey Bulletin, 896, Pt. 2, M–Z:12452396.Google Scholar