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Late Eocene chemosynthetic? bivalves from suspect cold seeps, Wagonwheel Mountain, central California

Published online by Cambridge University Press:  20 May 2016

Richard L. Squires
Affiliation:
Department of Geological Sciences, California State University, Northridge 91330-8266
Michael P. Gring
Affiliation:
Department of Geological Sciences, California State University, Northridge 91330-8266

Abstract

An anomalous pair of small, isolated calcareous sandstone bodies in the middle member of the upper Eocene Wagonwheel Formation, Wagonwheel Mountain, of the San Joaquin Valley, California, contain numerous articulated specimens of soft-bottom-dwelling bivalves. The lucinid bivalve Epilucina washingtoniana (Clark, 1925) dominates the fauna, which also sparingly contains the thyasirid bivalve Conchocele bisecta (Conrad, 1849) and the vesicomyid bivalve Vesicomya (Vesicomya) aff. V. (V.) tschudi Olsson, 1931.

The fossils in the pair of calcareous sandstone bodies, which are surrounded by deep-water silty mudstone barren of megafossils, most likely represent cold-seep communities in the upper bathyal environment. These cold seeps apparently were formed by diffusive flow through coarse sand-fill material in submarine channels.

Epilucina washingtoniana was previously known only from upper Eocene rocks on the Olympic Peninsula, Washington, and in Santa Barbara County, southern California. This species, along with a late Eocene species from Colombia, South America, are the earliest representatives of Epilucina. The Wagonwheel Formation contains one of the earliest records of Conchocele bisecta, which is a widespread Cenozoic fossil and is extant in the north Pacific. The species of Vesicomya in the Wagonwheel Formation is the earliest record of Vesicomya s.s. and has close affinity to Vescicomya (Vesicomya) tschudi Olsson, 1931, from the upper Oligocene of northwestern Peru, South America. As in the case of Conchocele bisecta, Vesicomya s.s. has not been reported previously from the Eocene of California.

Type
Research Article
Copyright
Copyright © The Paleontological Society 

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References

Abbott, R. T. 1974. American Seashells. Second edition. Van Nostrand Reinhold Company, New York, 663 p.Google Scholar
Adams, H., and Adams, A. 1853-1858. The Genera of Recent Mollusca; Arranged According to Their Organization, 2 Volumes. John van Vorst, London, 660 p.Google Scholar
Addicott, W. O. 1976. Molluscan paleontology of the lower Miocene Clallam Formation, northwestern Washington. U.S. Geological Survey Professional Paper, 976, 44 p.Google Scholar
Addicott, W. O., Kanno, S., Sakamoto, K., and Miller, D. J. 1971. Clark's Tertiary molluscan types from the Yakataga district, Gulf of Alaska. U.S. Geological Survey Professional Paper, 750-C:C18-C33.Google Scholar
Arnold, R. 1903. The paleontology and stratigraphy of the marine Pliocene and Pleistocene of San Pedro, California. California Academy of Sciences Memoir, 2, 420 p.Google Scholar
Arnold, R., and Johnson, H. R. 1910. Preliminary report on the McKittrick-Sunset oil region, Kern and San Luis Obispo Counties, California. U.S. Geological Survey Bulletin, 406, 225 p.Google Scholar
Bartow, J. A. 1991. The Cenozoic evolution of the San Joaquin Valley, California. U.S. Geological Survey Professional Paper, 1501, 40 p.Google Scholar
Beets, C. 1943. Beiträge zur Kenntnis der angelblich ober-Oligocänen Mollusken-Fauna der Insel Burton, Niederlandisch-Ostindien. Leidsche Geologische Mededeelingen, 13:256328.Google Scholar
Bernard, F. R. 1972. The genus Thyasira in western Canada (Bivalvia: Lucinacea). Malacologia, 11:365389.Google Scholar
Boss, K. J. 1967. Thyasira disjuncta (Gabb, 1866) in the Caribbean Sea. Marine Sciences Bulletin, 17:386387.Google Scholar
Boss, K. J. 1968. New species of Vesicomyidae from the Gulf of Darien, Caribbean Sea (Bivalvia; Mollusca). Bulletin of Marine Science, 18:731748.Google Scholar
Boss, K. J., and Turner, R. D. 1980. The giant white clam from the Galapagos rift, Calyptogena magnifica species novum. Malacologia, 20:161194.Google Scholar
Bretsky, S. S. 1976. Evolution and classification of the Lucinidae (Mollusca; Bivalvia). Palaeontolographica Americana, 8:219337.Google Scholar
Callender, W. R., and Powell, E. N. 1992. Taphonomic signature of petroleum seep assemblages on the Louisiana upper continental slope: recognition of autochthonous shell beds in the fossil record. Palaios, 7:388408.Google Scholar
Campbell, K. A. 1992. Recognition of a Mio-Pliocene cold seep setting from the northeast Pacific convergent margin, Washington, U.S.A. Palaios, 7:422433.Google Scholar
Campbell, K. A. 1995. Dynamic development of Jurassic-Pliocene cold seeps, convergent margin of western North America. Unpublished , , 195 p.Google Scholar
Campbell, K. A., and Bottjer, D. J. 1993. Fossil cold seeps. National Geographic Research and Exploration, 9:326343.Google Scholar
Campbell, K. A., Carlson, C., and Bottjer, D. J. 1993. Fossil cold seep limestones and associated chemosymbiotic macroinvertebrate faunas, Jurassic-Cretaceous Great Valley Group, California, p. 3750. In Graham, S. A. and Lowe, D. R. (eds.), Advances in the Sedimentary Geology of the Great Valley Group, Northern California. Pacific Section, Society of Economic Paleontologists and Mineralogists, Fall Fieldtrip Guidebook, Book No. 73.Google Scholar
Clark, B. L. 1925. Pelecypoda from the marine Oligocene of western North America. University of California Publications Bulletin of the Department of Geological Sciences, 15:69136.Google Scholar
Clark, B. L. 1932. Fauna of the Poul and Yakataga Formations (upper Oligocene) of southern Alaska. Bulletin of the Geological Society of America, 43:797846.Google Scholar
Clark, B. L. 1946. Part 1. The molluscan faunas, p. 476. In Clark, B. L. and Durham, J. W., Eocene Faunas from the Department of Bolivar, Colombia. Geological Society of America Memoir, 16.Google Scholar
Coan, E. V., Scott, P. H., and Bernard, F. R. In press. Bivalve seashells of western North America. Marine bivalve mollusks from Arctic Alaska to Baja California. Santa Barbara Museum of Natural History, Santa Barbara, California.Google Scholar
Conrad, T. A. 1837. Descriptions of new marine shells from upper California, collected by Thomas Nuttall, Esq. Journal of the Academy of Natural Sciences of Philadelphia, 7:227268.Google Scholar
Conrad, T. A. 1849. Fossils from the northwestern America, pp. 723728 (appendix). In Dana, J. D., U.S. Exploration Expedition, 1838-1842, under Charles Wilkes. Geology, Volume 10.Google Scholar
Dall, W. H. 1886. Reports on the results of dredging, under the supervision of Alexander Agassiz, in the Gulf of Mexico (1877-78) and in the Caribbean Sea (1879-80), by the U.S. Coast Survey Steamer “Blake.” 29. Report on the Mollusca, Part 1. Brachiopoda and Pelecypoda. Bulletin of the Museum of Comparative Zoölogy, 12:171318.Google Scholar
Dall, W. H. 1891. On some new or interesting west American shells obtained from the dredgings of the U.S. Fish Commission steamer Albatross in 1888, and from other sources [Albatross Report]. Proceedings of the U.S. National Museum, 14:173191.Google Scholar
Dall, W. H. 1895. Scientific results of explorations by the U.S. Fish Commission Steamer “Albatross,” 34. Report on Mollusca and Brachiopoda dredged in deep water, chiefly near the Hawaiian Islands, with illustrations of hitherto unfigured species from northwest America. Proceedings of the U.S. National Museum, 17:675733.Google Scholar
Dall, W. H. 1896. Diagnoses of new species of mollusks from the west coast of America. Proceedings of the U.S. National Museum, 18:720.Google Scholar
Dall, W. H. 1901. Synopsis of the Lucinacea and of the American species. Proceedings of the United States National Museum, 23:779833.CrossRefGoogle Scholar
Dall, W. H. 1908. Reports on the dredging operations off the west coast of Central America to the Galapagos, to the west coast of Mexico, and in the Gulf of California, in charge of Alexander Agassiz, carried on by the U.S. Fish Commission steamer “Albatross,” 37. The Mollusca and the Brachiopoda. Bulletin of the Museum of Comparative Zoölogy, 43:205487.Google Scholar
Dall, W. H., and Simpson, C. T. 1901. The Mollusca of Porto Rico. U.S. Fish Commission Bulletin 20:351524.Google Scholar
Delise, K. C. 1967. Biostratigraphy of the San Emigdio Formation, Kern County, California. University of California Publications in Geological Sciences, 68:167.Google Scholar
Dibblee, T. W. Jr. 1988. Geologic map of the Santa Rosa Hills and Sacate Quadrangles, Santa Barbara County, California. Dibblee Geological Foundation Map DF-17.Google Scholar
Durham, J. W. 1944. Megafaunal zones of the Oligocene of northwestern Washington. University of California Publications Bulletin of the Department of Geological Sciences, 27:101212.Google Scholar
Durham, J. W., and MacNeil, F. S. 1967. Cenozoic migrations of marine invertebrates through the Bering Strait region, p. 326349. In Hopkins, D. M. (ed.), The Bering Land Bridge. Stanford University Press, Stanford, California.Google Scholar
Fleming, J. 1828. History of British Animals. Edinburgh, 554 p.Google Scholar
Gabb, W. M. 1866-1869. Cretaceous and Tertiary fossils. California Geological Survey, Palaeontology Volume 2, 299 p.Google Scholar
Gaillard, C., Rio, M., Rolin, Y., and Roux, M. 1992. Fossil chemosynthetic communities related to vents or seeps in sedimentary basins: the pseudobioherms of southeastern France compared to other world examples. Palaios, 7:451465.Google Scholar
Goedert, J. L., and Campbell, K. A. 1995. An early Oligocene fossil chemosynthetic community from the Makah Formation, northwestern Washington. The Veliger, 38:2229.Google Scholar
Goedert, J. L., and Squires, R. L. 1990. Eocene deep-sea communities in localized limestones formed by subduction-related methane seeps, southwestern Washington. Geology, 118:11821185.Google Scholar
Goedert, J. L., and Squires, R. L. 1993. First Oligocene records of Calyptogena (Bivalvia: Vesicomyidae). The Veliger, 36:7277.Google Scholar
Goedert, J. L., Squires, R. L., and Barnes, L. G. In press. Paleoecology of whale-fall habitats from deep-water Oligocene rocks, Olympic Peninsula, Washington State. Palaeogeography, Palaeoclimatology, Palaeoecology.Google Scholar
Grant, U. S. IV, and Gale, H. R. 1931. Catalogue of the marine Pliocene and Pleistocene Mollusca of California. San Diego Society of Natural History Memoir 1, 1016 p.Google Scholar
Hickman, C. S. 1994. The genus Pavilucina in the eastern Pacific: making evolutionary sense of a chemosymbiotic species complex. The Veliger, 37:4361.Google Scholar
Honda, Y. 1989. Paleogene molluscan faunas from the Kushiro coal field, eastern Hokkaido. Science Reports of the Tohoku University, Second Series, Geology, 60:1137.Google Scholar
Howe, B., and Kauffman, E. G. 1986. The lithofacies, biofacies and depositional setting of teepee-buttes, Cretaceous submarine springs between Colorado Springs and Boone, Colorado, p. 155175. In Kauffman, E. G. (ed.), Cretaceous Biofacies of the Central Part of the Western Interior Seaway: a Field Guidebook. Fourth North American Paleontological Convention, Boulder, Colorado.Google Scholar
Jenkins, O. P. 1931. Stratigraphic significance of the Kreyenhagen Shale of California. Mining in California, California Department of Natural Resources Division of Mines State Mineral Reports, 27:141186.Google Scholar
Johnson, H. R. 1909. Geology of the McKittrick-Sunset district, California. Science, New Series, 30:6364.Google Scholar
Kamada, Y. 1962. Tertiary marine Mollusca from the Joban coal-field, Japan. Palaeontological Society of Japan Special Papers, 8:1187.Google Scholar
Kanno, S. 1971a. The ecological significance of Thyasira bisecta Conrad. Nautilus, 84:96101.Google Scholar
Kanno, S. 1971b. Tertiary molluscan fauna from the Yakataga district and adjacent areas of southern Alaska. Palaeontological Society of Japan Special Paper, 16:1154.Google Scholar
Kennicutt, M. C. II, Brooks, J. M., Bidigare, R. R., Fay, R. R., Wade, T. L., and McDonald, T. J. 1985. Vent-type taxa in a hydrocarbon seep region on the Louisiana slope. Nature, 317:351353.Google Scholar
Krishtofovich, L. V. 1936. Shells of the group Thyasira bisecta (Conrad) from the Tertiary deposits of the west coast of Kamchatka. Transactions of the Geological Oil Institute, Series A, part 88:1676. [In Russian, with English summary.]Google Scholar
Kuroda, T. 1931. Fossil Mollusca, p. 190. In Honma, F., Shinano Chǔbu Chishitsu-shi (Geology of Central Sinano). [In Japanese.]Google Scholar
Makiyama, J. 1934. The Asagaian molluscs of Yotsukura and Matchgar. Memoirs of College of Science, Kyoto Imperial University, Series B, 10:127167.Google Scholar
Marincovich, L. Jr. 1979. Miocene mollusks of the Topsy Formation, Lituya district, Gulf of Alaska Tertiary province, Alaska. U.S. Geological Survey Professional Paper, 1125-C:C1-C4.Google Scholar
Marsaglia, K. M., and Carozzi, A. V. 1990. Depositional environment, sand provenance, and diagenesis of the basal Salina Formation (lower Eocene), northwestern Peru. Journal of South American Earth Sciences, 3:253267.Google Scholar
Mayer, L. A., Shor, A. N., Clarke, J. H., and Piper, D. J. W. 1988. Dense biological communities at 3850 m on the Laurentian fan and their relationship to the deposits of the 1929 Grand Banks earthquake. Deep-Sea Research, 35:12351246.Google Scholar
Miller, D. J. 1975. Geologic map and sections of the central part of Katella district, Alaska. U.S. Geological Survey Miscellaneous Field Studies Map, MF-722.Google Scholar
Moore, E. J. 1963. Miocene marine mollusks from the Astoria Formation in Oregon. U.S. Geological Survey Professional Paper, 419:1109.Google Scholar
Moore, E. J. 1984. Molluscan paleontology and biostratigraphy of the lower Miocene upper part of the Lincoln Creek Formation in southwestern Washington. Natural History Museum of Los Angeles County Contributions in Science, 351, 42 p.Google Scholar
Moore, E. J. 1988. Tertiary marine pelecypods of California and Baja California: Lucinidae through Chamidae. U.S. Geological Survey Professional Paper, 1228-D, 46 p.Google Scholar
Morton, S. G. 1842. Description of some new species of organic remains of the Cretaceous group of the United States. Journal of the Academy of Natural Sciences of Philadelphia, 8:207227.Google Scholar
Nesbitt, E. A., Campbell, K. A., and Goedert, J. L. 1994. Paleogene cold seeps and macroinvertebrate faunas in a forearc sequence of Oregon and Washington, p. 1D-1-D-11. In Swanson, D. A. and Haugerud, R. A. (eds.), Geologic field trips in the Pacific Northwest. Geological Society of America Annual Meeting, Seattle, Washington.Google Scholar
Ogle, B. A. 1953. Geology of the Eel River valley area, Humboldt County, California. California Division of Mines Bulletin, 164, 128 p.Google Scholar
Okada, H., and Bukry, D. 1980. Supplementary modification and introduction of code numbers to the low-latitude coccolith biostratigraphic zonation. Marine Micropaleontology, 5:321325.Google Scholar
Olsson, A. A. 1931. Contributions to the Tertiary Paleontology of northern Peru: Part 4, the Peruvian Oligocene. Bulletins of American Paleontology, 17:99264.Google Scholar
Oyama, K., and Mizuno, A. 1958. On the new forms of Paleogene molluscs from Japan. Bulletin of the Geological Survey of Japan, 9:589606.Google Scholar
Reagan, A. B. 1909. Some notes on the Olympic Peninsula, Washington. Transactions of the Kansas Academy of Science, 22:131238.Google Scholar
Ride, W. D. L., Sabrosky, C. W., Bernardi, G., Melville, R. V., Corliss, J. O., Forest, J., Key, K. H. L., and Wright, C. W. 1985. International Code of Zoological Nomenclature (third edition). International Trust for Zoological Nomenclature, 338 p.Google Scholar
Schenck, H. G., and Kleinpell, R. M. 1936. Refugian Stage of Pacific coast Tertiary. The Bulletin of the American Association of Petroleum Geologists, 20:215225.Google Scholar
Smith, E. A. 1885. Report on the Lamellibranchiata collected by H.M.S. Challenger during the years 1873-1876. Report on the Scientific Results of the Voyage of H.M.S. Challenger, Zoology, 13, 341 p.Google Scholar
Smith, H. P. 1956. Foraminifera from the Wagonwheel Formation, Devils Den district, California. University of California Publications in Geological Sciences, 32:65126.Google Scholar
Snavely, P. D. Jr., Niem, A. R., and Pearl, J. E. 1977. Twin River Group (upper Eocene to lower Miocene)—defined to include the Hoko River, Makah and Pysht Formations, Clallam County, Washington. U.S. Geological Survey Bulletin, 1457-A:A111-A120.Google Scholar
Squires, R. L. 1990. New Paleogene Fimbria (Mollusca: Bivalvia) from the Pacific coast of southwestern North America. Journal of Paleontology, 64:552556.Google Scholar
Squires, R. L. 1995a. First fossil species of the chemosynthetic community gastropod Provanna: localized cold-seep limestones in upper Eocene and Oligocene rocks, Washington. The Veliger, 38:3036.Google Scholar
Squires, R. L. 1995b. An extant species of Leptochiton sensu stricto (Mollusca: Polyplacophora) in Eocene and Oligocene cold-seep limestones, Olympic Peninsula, Washington. The Veliger, 38:5456.Google Scholar
Squires, R. L., and Goedert, J. L. 1991. New late Eocene mollusks from localized limestone deposits formed by subduction-related methane seeps, southwestern Washington. Journal of Paleontology, 65:412416.Google Scholar
Squires, R. L., and Goedert, J. L. 1994. A new species of the volutid gastropod Fulgoraria (Musashia) from the Oligocene of Washington. The Veliger, 37:400409.Google Scholar
Stewart, R. 1930. Gabb's California Cretaceous and Tertiary type lamellibranchs. Academy of Natural Sciences of Philadelphia Special Publication, 3, 314 p.Google Scholar
Tegland, N. M. 1928. Thyasira disjuncta Gabb not Thyasira bisecta Conrad the Recent west coast shell. The Nautilus, 41:129131.Google Scholar
Tegland, N. M. 1933. The fauna of the type Blakeley upper Oligocene of Washington. University of California Publications Bulletin of the Department of Geological Sciences, 23:81174.Google Scholar
Tipton, A. 1980. Foraminiferal zonation of the Refugian Stage, latest Eocene of California. Cushman Foundation Special Publication, 19:258277.Google Scholar
Turner, R. D. 1985. Notes on mollusks of deep-sea vents and reducing sediments. American Malacological Bulletin, Special Edition Number, 1:2234.Google Scholar
Van Couvering, M., and Allen, H. B. 1943. Devils Den oil field. California Division of Mines Bulletin, 118:496501.Google Scholar
Van Winkle, K. 1919. Remarks on some new species from Trinidad. Bulletins of American Paleontology, 8:1927.Google Scholar
Wagner, C. M., and Schilling, K. H. 1923. The San Lorenzo Group of the San Emigdio region, California. University of California Publications Bulletin of the Department of Geological Sciences, 14:235276.Google Scholar
Waterfall, L. N. 1929. A contribution to the paleontology of the Fernando Group, Ventura County, California. University of California Publications Bulletin of the Department of Geological Sciences, 18:7192.Google Scholar
Weaver, C. E. 1942 [1943]. Paleontology of the marine Tertiary formations of Oregon and Washington. University of Washington Publications Geology, 5:1789 [reprinted, 1958].Google Scholar
Weaver, D. W., and Kleinpell, R. M. 1963. Oligocene biostratigraphy of the Santa Barbara embayment, California. II. Mollusca of the Turritella variata Zone. University of California Publications in Geologica. Sciences, 43:81118.Google Scholar
Woodring, W. P. M., Bramlette, M. N., and Kew, W. S. W. 1946. Geology and paleontology of Palos Verdes Hills, California. U.S. Geological Survey Professional Paper, 207, 145 p.Google Scholar
Yabe, H., and Nomura, S. 1925. Notes on the Recent and Tertiary species of Thyasira from Japan. Science Reports of the Tohoku University, Second Series, (Geology), 7:8495.Google Scholar
Yokoyama, M. 1924. Molluscan remains from the lowest part of the Jo-ban coal-field. Journal of the College of Science Imperial University of Tokyo, 45:122.Google Scholar
Yoon, S. 1976. Geology and paleontology of the Tertiary Pohang Basin, Pohang district, Korea. Geological Society of Korea Journal, 12:122.Google Scholar