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Oldest scleractinian fauna from Jamaica (Hauterivian, Benbow Inlier)

Published online by Cambridge University Press:  14 July 2015

Hannes Löser
Affiliation:
1Estación Regional del Noroeste, Instituto de Geología, Universidad Nacional Autónoma de México, Blvd. Luis Donaldo Colosio S/N y Madrid, 83250 Hermosillo, Sonora, México,
Thomas A. Stemann
Affiliation:
2Department of Geography and Geology, the University of the West Indies, Mona, Kingston 7, Jamaica
Simon Mitchell
Affiliation:
2Department of Geography and Geology, the University of the West Indies, Mona, Kingston 7, Jamaica

Abstract

From the oldest Cretaceous marine sediments of Jamaica, the Copper Limestone within the Devils Racecourse Formation (Benbow Inlier, Clarendon Block), the oldest known coral fauna of the Caribbean is described. the small but diverse fauna encompasses 18 species in 17 genera of the suborders Amphiastraeina, Archeocaeniina, Heterocoeniina, Faviina, Fungiina, Microsolenina, and Stylinina. the fauna contains the first representatives of the suborder Amphiastraeina in the Caribbean and the Americas. One genus of the family Amphiastreidae, Monoaulastrea, and three species—Monoaulastrea rawi, Latusastrea rubrolineata, Camptodocis corralesi—are described as new. the preoccupied coral genus Floria is replaced by the new name Floriastrea. the new fauna shows relationships to faunas from the late Berriasian to late Albian. Most species are shared with the Hauterivian faunas from Georgia in the central Tethys and the Paris Basin in the Boreal, but also with younger faunas such as the Barremian of Central Mexico, the early Aptian of Greece and the early Albian of the Bisbee Basin (Northern Mexico).

Type
Research Article
Copyright
Copyright © The Paleontological Society 

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References

Alloiteau, J. 1952. Embranchement des coelentérés, p. 376684. In Piveteau, J. (ed.), Traité de Paléontologie. Masson, Paris.Google Scholar
Alloiteau, J. 1958. Monographie des Madréporaires fossiles de Madagascar. Annales géologiques de Madagascar, 25:1218.Google Scholar
Beauvais, L. 1964. Étude stratigraphique et paléontologique des formations à madréporaires du Jurassique supérieur du Jura et de l'Est du Bassin de Paris. Mémoires de la Société géologique de France, 100:1287.Google Scholar
Beauvais, M. 1974. Le nouveau sous-ordre des Heterocoeniida. Cnidaires fossiles, 3(2):2223.Google Scholar
Bernier, P. 1971. Deux nouvelles algues dasycladales du Jurassique superieur du Jura meridonal. Geobios, 4:173184.CrossRefGoogle Scholar
Bourne, G. C. 1900. The Anthozoa, p. 5979. In Lankester, R. (ed.), Treatise on Zoology, Pt. 2, Porifera and Coelenterata. A. & C. Black, London.Google Scholar
Burke, K., Coates, A. G., and Robinson, E. 1969. Geology of the Benbow Inlier and surrounding areas, Jamaica, p. 299307. In Saunders, J. B. (ed.), Transactions of the Fourth Caribbean Geological Conference 28th March–12th April 1965 Port-of-Spain, Trinidad and Tobago. Caribbean Printers, Arima.Google Scholar
Castro, P. de. 1966. Contributo alla conoscenza delle alveoline Albiano-Cenomaniane della Campania. Bollettino della Società dei Naturalisti in Napoli, 75:219275.Google Scholar
Chubb, L. J. 1960. Correlation of the Jamaican Cretaceous. Geonotes, 3:8597.Google Scholar
Chubb, L. J. 1968. New rudist species from the Cretaceous rocks of Jamaica. The Journal of the Geological Society of Jamaica, 9:2431.Google Scholar
Chubb, L. J. 1971. Rudists of Jamaica. Palaeontographica Americana, 45:161257.Google Scholar
Coates, A. G. 1973. Cretaceous Tethyan coral-rudist biogeography related to the evolution of the Atlantic Ocean. Special Papers in Palaeontology, 12:169174.Google Scholar
Coates, A. G. 1977. Jamaican coral-rudist frameworks and their geologic setting. American Association of Petroleum Geologists, Studies in Geology, 4:8391.Google Scholar
Conrad, M. A. and Radoieiae, R. 1978. Salpingoporella katzeri n. sp., une Dasycladacee (algae Calcaire) nouvelle du Berriasien et du Valanginien de la region mediterraneene. Geoloski Vjesnik, 30:6972.Google Scholar
Coquand, H. 1865. Mémoires de la Société d'Emulation de la Provence, 3:17411.Google Scholar
Dietrich, W. O. 1926. Steinkorallen des Malms und der Unterkreide im südlichen Deutsch-Ostafrika. Palaeontographica, (Suppl. 7), 1:4362.Google Scholar
Duncan, P. M. 1884. A revision of the families and genera of the sclerodermic Zoantharia Edwards et Haime, or Madreporaria (M. Rugosa excepted) (1-4). Journal of the Linnean Society of London, Zoology, 104-105:1204.Google Scholar
Eguchi, M. 1951. Mesozoic hexacorals from Japan. Science Reports of the Tohoku Imperial University, ser. 2, 24:196.Google Scholar
Eliásová, H. 1976. Nouvelle famille du sous-ordre Amphiastraeina Alloiteau, 1952 (Hexacorallia, Tithonien de Tchécoslovaquie). Vēstník Ustredního ústavu geologického, 51:177178.Google Scholar
Eliásová, H. 1981. The Tithonian reef of Stramberk Limestone (Czechoslovakia, West Carpathians). Casopis pro Mineralogii a Geologii, 26(2)113124.Google Scholar
Elliot, G. F. 1956. Further records of fossil calcareous algae from the Middle East. Micropaleontology, 2:327334.CrossRefGoogle Scholar
Erba, E. 2004. Calcareous nannofossils and Mesozoic oceanic anoxic events. Marine Micropaleontology, 52(1/4):85106.CrossRefGoogle Scholar
Felix, J. 1891. Versteinerungen aus der mexicanischen Jura und Kreideformation. Palaeontographica, 37:140194.Google Scholar
Felix, J. 1900. Über die Gruppe der Montlivaltiaceae. Sitzungsberichte der Naturforschenden Gesellschaft zu Leipzig, (February 6, 1900):2024.Google Scholar
Fromentel, E. de. 1857. Description des polypiers fossiles de l'étage Néocomien. Bulletin de la société des sciences historiques et naturelles de l'Yonne, 178.Google Scholar
Fromentel, E. de. 1861. Introduction à l'étude des polypiers fossiles. Mémoires de la Société d'émulation du Doubs, ser. 3, 5:1357.Google Scholar
Fromentel, E. de. 1867. Zoophytes, terrain crétacé (7). Paléontologie française, 8:289336.Google Scholar
Fromentel, E. de. 1884. Zoophytes, terrain crétacé (13). Paléontologie française, 8:529560.Google Scholar
Geyer, O. F. and Rosendahl, S. 1985. Stromatoporen, Korallen und Nerineen aus oberjurassischen und unterkretazischen Schichten des Präbetikums von Cazorla (Provinz Jaén, Spanien). Arbeiten aus dem Institut für Geologie und Paläontologie an der Universität Stuttgart, 82:161179.Google Scholar
Gill, G. A. 1967. Madréporaires (2): Quelques précisions sur les septes perforés des Polypiers mésozoïques. Mémoires de la Société géologique de France, 106:5383.Google Scholar
Gill, G. A. 1968. Sur les pennules de Microsolénides (Coraux)—Étude com-plémentaire. Rivista italiana di paleontologia e stratigrafia, 74(3):969986.Google Scholar
Goldfuss, A. 1829. Petrefacta Germaniae (1, 2). Arnz, Düsseldorf, 77164.Google Scholar
Götz, S., Löser, H., and Schmid, D. U. 2005. Reef development on a deepening platform: two Early Cretaceous coralgal patch reefs (Catí, Llàcova Formation, eastern Spain) compared. Cretaceous Research, 26(6):864881.CrossRefGoogle Scholar
Gregorio, A. 1930. Sul Permiano di Sicilia. Annali di Geologia e Paleontologia Palermo, 52:167.Google Scholar
Guillaume, H. and Reichel, M. 1957. Neotrocholina friburgensis n. sp., foraminifère de l'Urgonien alpin. Eclogae Geologicae Helvetiae, 50:285288.Google Scholar
Hackemesser, M. 1936. Eine kretazische Korallenfauna aus Mittel-Griechenland und ihre paläobiologischen Beziehungen. Palaeontographica, (A), 84:197.Google Scholar
Hombres-Firmas, L. A. de. 1838. Description d'une nouvelle Nérine. Recueil de memoires, 8(4):207.Google Scholar
Jiang, M.-J. and Robinson, E. 1987. Calcareous nannofossils and larger foraminifera in Jamaican rocks of Cretaceous to early Eocene age. Geological Society of Jamaica, Special Issue, 10:2451.Google Scholar
Karakash, N. I. 1907. Nishnemelobakh fauna Kryma. Trudy Imperatorskogo S.-Peterburgskago Obshchestva Estestvoispytatelej, 32(5):1484. (In Russian)Google Scholar
Kauffman, E. G., Johnson, C. C., Coates, A. G., and Sohl, N. F. 1989. A field guide to the Cretaceous carbonate platforms and rudistid reefs of Jamaica. A University of Colorado Geological Sciences Publication, 1116.Google Scholar
Khudoley, K. M. and Meyerhoff, A. A. 1971. Paleogeography and geological history of Greater Antilles. Geological Society of America Memoir, 129:1199.CrossRefGoogle Scholar
Koby, F. 1896. Monographie des polypiers crétacés de la Suisse (1). Abhandlungen der Schweizerischen Paläontologischen Gesellschaft, 22:128.Google Scholar
Koby, F. 1897. Monographie des polypiers crétacés de la Suisse (2). Abhandlungen der Schweizerischen Paläontologischen Gesellschaft, 23:2962.Google Scholar
Kołodziej, B. 2003. Scleractinian corals of suborders Pachythecaliina and Rhipidogyrina: discussion on similarities and description of species from Stramberk-type limestones, Polish Outer Carpathians. Annales Societatis Geologorum Poloniae, 73:193217.Google Scholar
Kuzmicheva, E. I. 1966. Stratigrafixeskoe i fazialnoe rasprostranenie schestilukhevyh korallov (Skleraktinij) v neokome Gornogo Kryma, p. 5863. In Prirodnye i trudovye resursy levoberezhnoj Ukrainy i ikh ispolzovanie. Nedra, Moskva.Google Scholar
Kuzmicheva, E. I. 2002. Morfologiya skeleta, sistema i evoluziya skleraktinij. Trudy Paleontologicheskogo instituta, 286:1211. (In Russian)Google Scholar
Lamarck, J. B. P. de. 1816. Histoire naturelle des animaux sans vertèbres (2). Verdière, Paris, 568 p.Google Scholar
Lamouroux, J. V. F. 1821. Exposition méthodique des genres de l'ordre des polypiers. Agasse, Paris, 115 p.Google Scholar
Laug, B. and Peybernès, B. 1979. Daxia minima nov. sp. Lituolidé nouveau de l'Aptien Basco-Béarnais. Geobios, 12:717723.CrossRefGoogle Scholar
Liao, W.-H. and Xia, J.-B. 1985. Upper Jurassic and Lower Cretaceous Scleractinia from Bangoin district of northern Xizang (Tibet). Memoirs of the Nanjing Institute of Geology and Palaeontology, 21:119174.Google Scholar
Löser, H. 2004. PaleoTax—a database program for palaeontological data. Computer & Geosciences, 30(5):513521.CrossRefGoogle Scholar
Löser, H. 2005. Stratigraphy of Cretaceous coral genera. Neues Jahrbuch für Geologie und Paläontologie, Abhandlungen, 238:231277.CrossRefGoogle Scholar
Löser, H. 2006. Barremian corals from San Antonio Texcala, Puebla, Mexico—A review of the type material of Felix 1891. Boletín del Instituto Geológico de México, 114:168.Google Scholar
Löser, H. 2007. Morphology, taxonomy and distribution of the Cretaceous coral genus Preverastraea (Late Barremian-Cenomanian; Scleractinia). Rivista italiana di paleontologia e stratigrafia, 113(1):319.Google Scholar
Löser, H. 2008. Early Cretaceous coral faunas from East Africa (Tanzania, Kenya; Late Valanginian-Aptian) and revision of the Dietrich collection (Berlin, Germany). Palaeontographica, 285:2375.CrossRefGoogle Scholar
Löser, H. and Minor, K. 2007. Palaeobiogeographic aspects of Late Barremian to Late Albian coral faunas from Northern Mexico (Sonora) and the southern USA (Arizona, Texas). Neues Jahrbuch für Geologie und Paläontologie, Abhandlungen, 245(2):193218.CrossRefGoogle Scholar
Löser, H. and Ferry, S. 2006. Coraux du Barrémien du Sud de la France (Ardèche et Drôme). Geobios, 39(4):469489.CrossRefGoogle Scholar
Löser, H., Barattolo, F., Calzada Badia, S., Chikhi-Aouimeur, F., Dhondt, A., Erlich, R. N., Fözy, I., Geister, J., Hiss, M., Kołodziej, B., Leloux, J., Lewy, Z., Madhavaraju, J., Minor, K. P., Mitchell, S., Moosleitner, G., Niebuhr, B., Peza, L., Remane, J., Romano, R., Sanders, D., Sikharulidze, G. Y., Sinnyovski, D., Steuber, T., Tröger, K.-A., Turnšek, D., Vecchio, E., Vilella, J., Puig, I., and Zítt, J. 2005. List of Localities. Catalogue of Cretaceous Corals, 3:1366.Google Scholar
Löw, F. 1879. Zur Systematik der Psylloden. Verhandlungen der zoologischbotanischen Gesellschaft Wien, 28:585–160.Google Scholar
Matley, C. A. and Raw, F. 1942. A road section near Guy's Hill, Jamaica. Geological Magazine, 79:241252.CrossRefGoogle Scholar
Maync, W. 1953. Pseudocyclammina hedbergi n. sp. from the Urgo-Aptian and Albian of Venezuela. Cushman Foundation of Foraminifera Research Contributions, 4:101103.Google Scholar
Melnikova, G. K., Roniewicz, E., and Löser, H. 1993. New microsolenid coral genus Eocomoseris (Scleractinia, Early Lias-Cenomanian). Annales Societatis Geologorum Poloniae, 63:312.Google Scholar
Milne-Edwards, H. 1857. Histoire naturelle des coralliaires ou polypes pro-prement dits (1 + 2). Librairie encyclopédique de Roret, Paris, 326 p. + 633 p.Google Scholar
Morycowa, E. 1964. Hexacoralla des couches de Grodziszcze (Néocomien Carpathes). Acta Palaeontologica Polonica, 9(1):1114.Google Scholar
Morycowa, E. 1971. Hexacorallia et Octocorallia du Crétacé inférieur de Rarau (Carpathes orientales roumaines). Acta Palaeontologica Polonica, 16(1/2):1149.Google Scholar
Morycowa, E. 1989. Class Anthozoa Ehrenberg, 1834, p. 5867. In Malinowski, L. (ed.), Geology of Poland. Atlas of Guide and Characteristic Fossils. Mesozoic, Cretaceous. Wydawnictwa Geologiczne, Warszawa.Google Scholar
Morycowa, E. and Marcopoulou-Diacantoni, A. 1997. Cretaceous Scleractinian corals from the Parnassos area (Central Greece) (Preliminary note). Bulletin of the Geological Society of Greece, 30(2):249273.Google Scholar
Morycowa, E. and Masse, J. P. 2007. Actinaraeopsis ventosiana, a new sleractinian species from the Lower Cretaceous of Provence (SE France). Annales Societatis Geologorum Poloniae, 77:141145.Google Scholar
Oppenheim, L. P. 1930. Die Anthozoen der Gosauschichten in den Ostalpen. Privately published, Berlin, 604 p.Google Scholar
Orbigny, A. de. 1842. Paléontologie Française; description des mollusques et rayonnes fossiles. Térrains Crétacés, vol. 2, Gasteropodes, Paris, Masson et Cie, 1456.Google Scholar
Orbigny, A. de. 1849. Note sur les polypiers fossiles. Masson, Paris, 12 p.Google Scholar
Orbigny, A. de. 1851. Cours élémentaire de Paléontologie. Polypiers ou Zoophytes. Masson, Paris, 1189.Google Scholar
Pandolfi, J. 2007. A new, extinct Pleistocene reef coral from the Montastraea “annularis” species complex. Journal of Paleontology, 81:472482.CrossRefGoogle Scholar
Pantoja-Alor, L., Skelton, P. W., and Masse, J.-P. 2004. Barremian rudists of the San Lucas Formation around San Lucas, Michoacán, SW México. Courier Forschungsinstitut Senckenberg, 247:118.Google Scholar
Pisot, N., Vila, J.-M., Deloffre, R., and Mascle, A. 1986. Barremian benthic mesogean associations of foraminifera and algae in Benbow Inlier (Jamaica). 11th Caribbean Geological Conference Barbados July 20-26,1986–. Abstracts, 79.Google Scholar
Prever, P. L. 1909. Anthozoa. Memorie descrittive della carta geologica d'Italia, 5(1):51147.Google Scholar
Prinz, P. 1991. Mesozoische Korallen aus Nordchile. Palaeontographica, (A), 216(4/6):147209.Google Scholar
Radoieiae, R. 1967. Salpingoporella melitae spec. nov. des sediments crétacés inférieurs des Dinarides Externes. Geoloski anali Balkanskoga Poluostrva, 33:121126.Google Scholar
Roniewicz, E. 1968. Actinaraeopsis, un nouveau genre de madréporaire jurassique de Pologne. Acta Palaeontologica Polonica, 13(2):305314.Google Scholar
Schlumberger, C. 1905. Note sur le genere Chofatella n. g. Bulletin de la Société géologique de France, (4), 4:763764.Google Scholar
Scott, R. W. 1984. Significant fossils of the Knowles Limestone, Lower Cretaceous, Texas. Society of Economic Paleontologists and Mineralogists GCS Foundation. Proceedings of the Annual Research Conference, 333346.Google Scholar
Scott, R. W. and Aleman, A. 1984. Stylina columbaris n. sp. in a Lower Cretaceous coral biostrome. Journal of Paleontology, 58(4):11361142.Google Scholar
Sepkoski, J. J. 2002. A compendium of fossil marine animal genera. Bulletins of American Paleontology, 363:1560.Google Scholar
Sikharulidze, G. Ya. 1985. Geksakorally urgonskoj fazii dcirulskogo massiva i ego severnogo obramleniya. Trudy Akademija Nauk Gruzinskoj SSR, Geologiceskij Institut, 59:1110. (In Russian)Google Scholar
Skelton, P. W. and Masse, J.-P. 1998. Revision of the Lower Cretaceous rudist genera Pachytraga Paquier and Retha Cox (Bivalvia: Hippuritacea) and the origins of the Caprinidae. Geobios, 22:331370.CrossRefGoogle Scholar
Sohl, N. F. 1978. Notes on middle Cretaceous macrofossils from the Greater Antilles. Annales de Museum d'Histoire Naturelle de Nice, 4:16.Google Scholar
Stanley, S. M. and Hardie, L. A. 1998. Secular oscillations in the carbonate mineralogy of reef-building and sediment-producing organisms driven by tectonically forced shifts in seawater chemistry. Palaeogeography, Palaeoclimatology, Palaeoecology, 144:319.CrossRefGoogle Scholar
Tomás, S., Löser, H., and Salas Roig, R. 2008. Low-light and nutrient-rich coral assemblages in an Upper Aptian carbonate platform of the southern Maestrat Basin (Iberian Chain, eastern Spain). Cretaceous Research, 29:509534.CrossRefGoogle Scholar
Trautschold, H. A. 1886. Le Néocomien de Sably en Crimée. Trudy Imperatorskogo S.-Peterburgskago Obshchestva Estestvoispytatelej, 15(4):119129.Google Scholar
Turnšek, D. and Mihajloviae, M. 1981. Lower Cretaceous cnidarians from eastern Serbia. Razprave Slovenska akademija znanosti in umetnosti, (4), 23(1):154.Google Scholar
Turnšek, D. and Buser, S. 1974. Spodnjekredne korale, hidrozoji in hetetide z Banjske Planote in Trnovskega Gozda. Razprave Slovenska akademija znanosti in umetnosti (4), 17(2):81124. (In Slovenian)Google Scholar
Turnšek, D. and Buser, S. 1976. Knidarijska favna iz senonijske brece na Banjski Planoti. Razprave Slovenska akademija znanosti in umetnosti, (4), 19(3):3788. (In Slovenian)Google Scholar
Vaughan, T. W. and Wells, J. W. 1943. Revision of the suborders, families and genera of Scleractinia. Geological Society of America Special Papers, 44:1363.CrossRefGoogle Scholar
Veliae, I. and Gusiae, I. 1973. Cuneolina tenuis n. sp. from the Neocomian of Mt. Velika Kapela, central Croatia. Geoloski vjesnik, 25:155163.Google Scholar
Veron, J. E. N. 1993. A biogeographic database of hermatypic corals. Australian Institute of Marine Science Monograph Series, 10:1433.Google Scholar
Veron, J. E. N. 1995. Corals in Space and Time. The Biogeography and Evolution of the Scleractinia. UNSW Press, Sydney, 1321.Google Scholar
Vila, J.-M., Pisot, N., and Deloffre, R. 1986. Lower Barremian epineritic mesogean foraminifera and algae in the Benbow Inlier (Jamaica). 11th Caribbean Geological Conference Barbados July 20-26, 1986. Abstracts, 119120.Google Scholar
Weissermel, W. 1900. Mesozoische und känozoische Korallen aus Deutsch-Ostafrika, p. 100118. In Bornhardt, W. (ed.), Deutsch-Ostafrika. Zur Oberfächengestaltung und Geologie Deutsch-Ostafrikas. D. Reimer, Berlin.Google Scholar
Wells, J. W. 1932. Corals of the Trinity Group of the Commanchean of central Texas. Journal of Paleontology, 6(3):225256.Google Scholar
Wells, J. W. 1933. Corals of the Cretaceous of the Atlantic and Gulf Coastal Plains and W-Interior of the United States. Bulletins of American Paleontology, 18(67):83292.Google Scholar
Wells, J. W. 1946. Some Jurassic and Cretaceous corals from Northern Mexico. Journal of Paleontology, 20(1):17.Google Scholar