Export 2610 results:
Author Title [ Type(Asc)] Year
Journal Article
A. D. Thaler, Van Dover, C. L., and Vilgalys, R., Ascomycete phylotypes recovered from a Gulf of Mexico methane seep are identical to an uncultured deep-sea fungal clade from the Pacific, Fungal Ecology, vol. 5, pp. 270–273, 2012.
W. A. Maher, Duncan, E., Dilly, G., Foster, S., Krikowa, F., Lombi, E., Scheckel, K., and Girguis, P., Arsenic concentrations and species in three hydrothermal vent worms, Ridgeia piscesae, Paralvinella sulficola and Paralvinella palmiformis, Deep Sea Research Part I: Oceanographic Research Papers, vol. 116, pp. 41–48, 2016.
O. Matsubayashi, Nishimura, K., Kinoshita, M., and Urabe, T., Array observation of seabottom temperature at a diffusive hydrothermal area within DESMOS Caldera in Manus Basin, JAMSTEC Journal of Deep Sea Research, pp. 117–126, 1998.
F. E. Goetz and Jannasch, H. W., Aromatic hydrocarbon degrading bacteria in the petroleum-rich sediments of the Guaymas Basin hydrothermal vent site: Preference for aromatic hydroxylic acids, Geomicrobiology Journal, vol. 11, pp. 1–18, 1993.
R. D. Ballard, Argo and Jason, Oceanus, vol. 25, pp. 30–35, 1982.
J. J. Childress, Are there physiological and biochemical adaptations of metabolism in deep-sea animals?, Trends in Ecology and Evolution, vol. 10, pp. 30–36, 1995.
C. T. S. Little and Vrijenhoek, R. C., Are hydrothermal vent animals living fossils?, Trends in Ecology and Evolution, vol. 18, pp. 582–588, 2003.
J. N. Bentley, G. Ventura, T., Dalzell, C. J., Walters, C. C., Peters, C. A., Mennito, A. S., Nelson, R. K., Reddy, C. M., Seewald, J. S., and Sievert, S. M., Archaeal lipid diversity, alteration, preservation at Cathedral Hill, Guaymas Basin, Gulf of California, and its link to the deep time preservation paradox, Organic Geochemistry, p. 104302, 2021.
J. N. Bentley, Ventura, G. T., Dalzell, C. J., Walters, C. C., Peters, C. A., Mennito, A. S., Nelson, R. K., Reddy, C. M., Seewald, J. S., and Sievert, S. M., Archaeal lipid diversity, alteration, and preservation at the Cathedral Hill deep sea hydrothermal vent, Guaymas Basin, Gulf of California, and its implications regarding the deep time preservation paradox, Organic Geochemistry, vol. 163, 2022.
B. D. Lanoil, La Duc, M. T., Wright, M., Kastner, M., Nealson, K. H., and Bartlett, D. H., Archaeal diversity in ODP legacy borehole 892b and associated seawater and sediments of the Cascadia Margin, FEMS Microbiology Ecology, vol. 54, pp. 167–177, 2005.
S. A. Lincoln, Bradley, A. S., Newman, S. A., and Summons, R. E., Archaeal and bacterial glycerol dialkyl glycerol tetraether lipids in chimneys of the Lost City Hydrothermal Field, ORGANIC GEOCHEMISTRY, vol. 60, pp. 45–53, 2013.
A. R. Thurber, Levin, L. A., Orphan, V. J., and Marlow, J. J., Archaea in metazoan diets: implications for food webs and biogeochemical cycling, ISME Journal, vol. 6, pp. 1602–1612, 2012.
W. J. Brazelton, Ludwig, K. A., Sogin, M. L., Andreishcheva, E. N., Kelley, D. S., Shen, C. C., Edwards, R. L., and Baross, J. A., Archaea and bacteria with surprising microdiversity show shifts in dominance over 1,000-year time scales in hydrothermal chimneys, Proceedings of the National Academy of Sciences of the United States of America, vol. 107, pp. 1612–1617, 2010.
J. S. Seewald, Cruse, A. M., and Saccocia, P. J., Aqueous volatiles in hydrothermal fluids from the Main Endeavour Field, northern Juan de Fuca ridge: Temporal variability following earthquake activity, Earth and Planetary Science Letters, vol. 216, pp. 575–590, 2003.
E. E. Davis, Heesemann, M., Farrugia, J. J., Johnson, G., and Paros, J., APT: An Instrument for Monitoring Seafloor Acceleration, Pressure, and Temperature with Large Dynamic Range and Bandwidth, Bulletin of the Seismological Society of America, vol. 109, pp. 448-462, 2019.
H. W. Jannasch, Cuhel, R. L., Wirsen, C. O., and Taylor, C. D., An approach for in situ studies of deep-sea amphipods and their microbial gut flora, Deep-Sea Research. Part A, Oceanographic Research Papers, vol. 27, pp. 867–872, 1980.
M. Taillefert, Luther, G. W., and Nuzzio, D. B., The application of electrochemical tools for in situ measurements in aquatic systems, Electroanalysis, vol. 12, pp. 401–412, 2000.
F. K. Wilckens, Reeves, E. P., Bach, W., Seewald, J. S., and Kasemann, S. A., Application of B, Mg, Li, and Sr Isotopes in Acid-Sulfate Vent Fluids and Volcanic Rocks as Tracers for Fluid-Rock Interaction in Back-Arc Hydrothermal Systems, Geochemistry Geophysics Geosystems, 2019.
S. Helmreich, An anthropologist underwater: Immersive soundscapes, submarine cyborgs, and transductive ethnography, American Ethnologist, vol. 34, pp. 621–641, 2007.
A. Streep, Another league under the sea: tomorrow's research subs open earth's final frontier, Popular Science, vol. 274, 2009.
J. F. Grassle, Animals in the soft sediment near the hydrothermal vents, Oceanus, vol. 27, pp. 63–66, 1984.
E. Uchupi, Schwab, W. C., Ballard, R. D., Francheteau, J. F., Hekinian, R., Blackman, D. K., and Sigurdsson, H., An Angus/Argo study of the neovolcanic zone along the East Pacific rise from the Clipperton fracture zone to 12 degrees N, Geo-Marine Letters, vol. 8, pp. 131–138, 1988.
P. Chevaldonne, Desbruyeres, D., and Childress, J. J., .. And some even hotter, Nature, vol. 359, pp. 593–594, 1992.
R. G. Waller, Adkins, J. F., Robinson, L. F., and Shank, T. M., Ancient DNA techniques : applications for deep-water corals, Bulletin of Marine Science, vol. 81, pp. 351–359, 2007.
C. E. J. de Ronde, Walker, S. L., Ditchburn, R. G., F Tontini, C., Hannington, M. D., Merle, S. G., Timm, C., Handler, M. R., Wysoczanski, R. J., Dekov, V. M., Kamenov, G. D., Baker, E. T., Embley, R. W., Lupton, J. E., and Stoffers, P., The Anatomy of a Buried Submarine Hydrothermal System, Clark Volcano, Kermadec Arc, New Zealand, ECONOMIC GEOLOGY, vol. 109, pp. 2261–2292, 2014.

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