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Organic geochemistry of sediments from chemosynthetic communities, Gulf of Mexico slope

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Abstract

We used a research submersible to obtain 33 sediment samples from chemosynthetic communities at 541–650 m water depths in the Green Canyon (GC) area of the Gulf of Mexico slope. Sediment samples from beneath an isolated mat of H2S-oxidizing bacteria at GC 234 contain oil (mean = 5650 ppm) and C1–C5 hydrocarbons (mean = 12,979 ppm) that are altered by bacterial oxidation. Control cores away from the mat contain lower concentrations of oil (mean = 2966 ppm) and C1–C5 hydrocarbons (mean = 83.6 ppm). Bacterial oxidation of hydrocarbons depletes O2 in sediments and triggers bacterial sulfate reduction to produce the H2S required by the mats. Sediment samples from GC 185 (Bush Hill) contain high concentrations of oil (mean = 24,775 ppm) and C1–C5 hydrocarbons (mean = 11,037 ppm) that are altered by bacterial oxidation. Tube worm communities requiring H2S occur at GC 185 where the sea floor has been greatly modified since the Pleistocene by accumulation of oil, thermogenic gas hydrates, and authigenic carbonate rock. Venting to the water column is suppressed by this sea-floor modification, enhancing bacterial activity in sediments. Sediments from an area with vesicomyid clams (GC 272) contain lower concentrations of oil altered by bacterial oxidation (mean = 1716 ppm) but C1–C5 concentrations are high (mean = 28,766 ppm). In contrast to other sampling areas, a sediment associated with the methanotrophic Seep Mytilid I (GC 233) is characterized by low concentration of oil (82 ppm) but biogenic methane (C1) is present (8829 ppm).

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References

  • Behrens EW (1988) Geology of a continental slope oil seep. American Association of Petroleum Geologists Bulletin 72:105–114

    Google Scholar 

  • Brooks JM, Kennicutt MC, Fay RR, McDonald TJ, and Sassen R (1984) Thermogenic gas hydrates in the Gulf of Mexico. Science 225:409–411

    Google Scholar 

  • Brooks JM, Cox HB, Bryant WR, Kennicutt MC, Mann RG, and McDonald TJ (1986) Association of gas hydrates and oil seepage in the Gulf of Mexico. Organic Geochemistry 10:221–234

    Google Scholar 

  • Brooks JM, Kennicutt MC, Fisher CR, Macko SA, Cole K, Childress JJ, Bidigare RR, and Vetter RD (1987) Deep-sea hydrocarbon seep communities: Evidence for energy and nutritional carbon sources. Science 238:1138–1142

    Google Scholar 

  • James AT and Burns BJ (1984) Microbial alteration of subsurface gas accumulations. AAPG Bulletin 68:957–960

    Google Scholar 

  • Kennicutt MC, Brooks JM, and Denoux GJ (1988) Leakage of deep, reservoired petroleum to the near surface of the Gulf of Mexico continental slope. Marine Chemistry 24:39–59

    Google Scholar 

  • Kennicutt MC, McDonald TJ, Comet PA, Denoux GJ, and Brooks JM (1992a) The origins of petroleum in the northern Gulf of Mexico. Geochimica et Cosmochimica Acta 56:1256–1280

    Google Scholar 

  • Kennicutt MC, Burke RA, MacDonald IR, Brooks JM, Denoux GJ, and Macko SA (1992b) Stable isotope partitioning in seep and vent organisms: chemical and ecological significance. Chemical Geology 101:293–310

    Google Scholar 

  • MacDonald IR, Boland GS, Baker JS, Brooks JM, Kennicutt MC, and Bidigare RR (1989) Gulf of Mexico hydrocarbon seep communities II. Spatial distribution of seep organisms and hydrocarbons at Bush Hill. Marine Biology 101:235–247

    Google Scholar 

  • MacDonald IR, Guinasso NL, Reilly JF, Brooks JM, Callender WR, and Gabrielle SG (1990a) Gulf of Mexico hydrocarbon seep communities: VI. Patterns in community structure and habitat. Geo-Marine Letters 10:244–252

    Google Scholar 

  • MacDonald IR, Reilly JF, Guinasso NL, Brooks JM, Carney RS, Bryant WA, and Bright TJ (1990b) Chemosynthetic mussels at a brine-filled pockmark in the northern Gulf of Mexico. Science 248:1096–1099

    Google Scholar 

  • MacDonald IR, Guinasso NL, Ackleson SG, Amos JF, Duckworth R, Sassen R, and Brooks JM (1993) Natural oil slicks in the Gulf of Mexico are visible from space. Journal of Geophysical Research 98(C9):16351–16364

    Google Scholar 

  • MacDonald IR, Guinasso NL, Sassen R, Brooks JM, and Lee L (1994) Gas hydrate that breaches the sea floor on the continental slope of the Gulf of Mexico. Geology, in press

  • Nunn JA and Sassen R (1986) The framework of hydrocarbon generation and migration, Gulf of Mexico continental slope. Transactions, Gulf Coast Association of Geological Societies 36:257–262

    Google Scholar 

  • Ripmeester JA and Ratcliffe CI (1991) Solid state NMR studies of inclusion compounds. In: Atwood JL, Davies JED, and MacNicol DD (Eds.), Inclusion Compounds, vol 5, Inorganic and Physical Aspects of Inclusion. New York: Oxford University Press pp 37–85

    Google Scholar 

  • Roberts HH and Neurauter TW (1990) Direct observations of a large active mud vent on the Louisiana continental slope. American Association of Petroleum Geologists Bulletin 74:1508

    Google Scholar 

  • Roberts HH, Sassen R, Carney R, and Aharon P (1989)13C depleted authigenic carbonate buildups from hydrocarbon seeps, Louisiana continental slope. Transactions, Gulf Coast Association of Geological Societies 39:523–530

    Google Scholar 

  • Roberts HH, Sassen R, Carney R, and Aharon P (1990a) The role of hydrocarbons in creating sediment and small-scale topography of the Louisiana continental slope. In: Schumacher D and Perkins BF (Eds.), Gulf Coast Oils and Gases, Proceedings Ninth Annual Research Conference, GCSSEPM Foundation pp 311–324

  • Roberts HH, Aharon P, Carney R, Larkin J, and Sassen R (1990b) Seafloor responses to hydrocarbon seeps, Louisiana continental slope. Geo-Marine Letters 10:232–243

    Google Scholar 

  • Salvador A (1987) Late Triassic-Jurassic paleogeography and origin of Gulf of Mexico basin. Bulletin, American Association of Petroleum Geologists 71:419–451

    Google Scholar 

  • Sassen R, McCabe C, Kyle JR, and Chinn EW (1988) Deposition of magnetic pyrrhotite during alteration of crude oil and reduction of sulfate. Orgainc Geochemistry 14:381–392

    Google Scholar 

  • Sassen R, Brooks JM, MacDonald IR, Kennicutt MC, Guinasso NL, and Requejo AG (1993a) Association of oil seeps and chemosynthetic communities with oil discoveries, upper continental slope, Gulf of Mexico. Transactions, Gulf Coast Association Geological Societies 43:349–355

    Google Scholar 

  • Sassen R, Roberts HH, Aharon P, Larkin J, Chinn EW, and Carney R (1993b) Chemosynthetic bacterial mats at cold hydrocarbon seeps, Gulf of Mexico continental slope. Organic Geochemistry 20:77–89

    Google Scholar 

  • Winters JC and Williams JA (1969) Microbiological alteration of petroleum in the reservoir. Division of Petroleum Geochemistry, New York City Meeting. Washington, DC: American Chemical Society, Preprints pp E22-E31

    Google Scholar 

  • Worrall DM and Snelson S (1989) Evolution of the northern Gulf of Mexico, with emphasis on Cenozoic growth faulting and the role of salt. In: Bally AW and Palmer AR (Eds.), The Geology of North America—An Overview, The Geology of North America. Geological Society of America pp A97–A138

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Sassen, R., MacDonald, I.R., Requejo, A.G. et al. Organic geochemistry of sediments from chemosynthetic communities, Gulf of Mexico slope. Geo-Marine Letters 14, 110–119 (1994). https://doi.org/10.1007/BF01203722

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