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K. L. Smith, Metabolism of the abyssopelogic rattail Conyphaenoides anmatus measured in situ, Nature, vol. 274, pp. 362–364, 1978.
K. L. Smith, Metabolism of two dominant epibenthic echinoderms measured at bathyal depths in the Santa Catalina Basin, Marine Biology, vol. 72, pp. 249–256, 1982.
P. R. Girguis and Childress, J. J., Metabolite uptake, stoichiometry and chemoautotrophic function of the hydrothermal vent tubeworm Riftia pachyptila: responses to environmental variations in substrate concentrations and temperature, Journal of Experimental Biology, vol. 209, pp. 3516–3528, 2006.
Y. He, Xiao, X., and Wang, F., Metagenome reveals potential microbial degradation of hydrocarbon coupled with sulfate reduction in an oil-immersed chimney from Guaymas Basin, FRONTIERS IN MICROBIOLOGY, vol. 4, 2013.
J. Reveillaud, Anderson, R., Reves-Sohn, S., Cavanaugh, C., and Huber, J. A., Metagenomic investigation of vestimentiferan tubeworm endosymbionts from Mid-Cayman Rise reveals new insights into metabolism and diversity, Microbiome, vol. 6, no. Journal Article, pp. 19 - 19, 2018.
K. Anantharaman, Breier, J. A., and Dick, G. J., Metagenomic resolution of microbial functions in deep-sea hydrothermal plumes across the Eastern Lau Spreading Center, ISME JOURNAL, vol. 10, pp. 225–239, 2016.
A. Koschinsky, Kausch, M., and Borowski, C., Metal concentrations in the tissues of the hydrothermal vent mussel Bathymodiolus: Reflection of different metal sources, Marine Environmental Research, vol. 95, pp. 62–73, 2014.
H. Q. Yao, Zhou, H. Y., Peng, X. T., Bao, S. X., Wu, Z. J., Li, J. T., Sun, Z. L., Chen, Z. Q., Li, J. W., and Chen, G. Q., Metal sources of black smoker chimneys, Endeavour Segment, Juan de Fuca Ridge: Pb isotope constraints, Applied Geochemistry, vol. 24, pp. 1971–1977, 2009.
G. W. Luther and Rickard, D. T., Metal sulfide cluster complexes and their biogeochemical importance in the environment, Journal of Nanoparticle Research, vol. 7, pp. 389–407, 2005.
P. F. Lonsdale, Batiza, R., and Simkin, T., Metallogenesis at seamounts on the East Pacific Rise, Marine Technology Society Journal, vol. 16, pp. 54–61, 1982.
O. Brevart, Dupre, B., and Allegre, C. J., Metallogenesis at spreading centers: Lead isotope systematics for sulfides, manganese-rich crusts, basalts, and sediments from the Cyamex and Alvin areas (East Pacific Rise), Economic Geology, vol. 76, pp. 1205–1210, 1981.
J. A. Vargas, Hilton, D. R., Ramirez, C., and Molina, J., Metals in bivalve mollusks from the Jaco Scar seep, Pacific, Costa Rica, Revista de biologia tropical, vol. 66, no. Journal Article, pp. S269 - S279, 2018.
D. S. Jones, Flood, B. E., and Bailey, J. V., Metatranscriptomic insights into polyphosphate metabolism in marine sediments, ISME JOURNAL, vol. 10, pp. 1015–1019, 2016.
J. G. Sanders, Beinart, R. A., Stewart, F. J., Delong, E. F., and Girguis, P. R., Metatranscriptomics reveal differences in in situ energy and nitrogen metabolism among hydrothermal vent snail symbionts, ISME JOURNAL, vol. 7, pp. 1556–1567, 2013.
E. R. McMullin, Bergquist, D. C., and Fisher, C. R., Metazoans in Extreme Environments: Adaptations of Hydrothermal Vent and Hydrocarbon Seep Fauna, Gravitational and Space Biology Bulletin, vol. 13, pp. 13–23, 2000.
J. M. Bernhard, Morrison, C. R., Pape, E., Beaudoin, D. J., M Todaro, A., Pachiadaki, M. G., Kormas, K. Ar, and Edgcomb, V. P., Metazoans of redoxcline sediments in Mediterranean deep-sea hypersaline anoxic basins, BMC BIOLOGY, vol. 13, 2015.
R. L. Hansman, Thurber, A. R., Levin, L. A., and Aluwihare, L. I., Methane fates in the benthos and water column at cold seep sites along the continental margin of Central and North America, Deep Sea Research Part I: Oceanographic Research Papers, vol. 120, pp. 122–131, 2017.
J. A. Welhan and Craig, H., Methane, hydrogen and helium in hydrothermal fluids at 21 degrees N on the East Pacific Rise, in Hydrothermal processes at seafloor spreading centers, P. A. Rona, Ed. New York, N.Y.: Plenum Press, 1983, pp. 391–409.
R. Kochevar, Childress, J. J., Fisher, C. R., and Minnich, E., The methane mussel: roles of symbiont and host in the metabolic utilization of methane, Marine Biology, vol. 112, pp. 389–401, 1992.
L. A. Levin, Mendoza, G. F., and Grupe, B. M., Methane seepage effects on biodiversity and biological traits of macrofauna inhabiting authigenic carbonates, Deep Sea Research Part II: Topical Studies in Oceanography, vol. 137, pp. 26–41, 2017.
J. Labidi, Young, E. D., Giunta, T., Kohl, I. E., Seewald, J., Tang, H., Lilley, M. D., and Früh-Green, G. L., Methane thermometry in deep-sea hydrothermal systems: evidence for re-ordering of doubly-substituted isotopologues during fluid cooling, Geochimica et Cosmochimica Acta, 2020.
C. Joseph, Campbell, K. A., Torres, M. E., Martin, R. A., Pohlman, J. W., Riedel, M., and Rose, K., Methane-derived authigenic carbonates from modern and paleoseeps on the Cascadia margin: Mechanisms of formation and diagenetic signals, Tracing Phanerozoic hydrocarbon seepage from local basins to the global Earth system, vol. 390, pp. 52–67, 2013.
G. Aloisi, Pierre, C., Rouchy, J. M., Foucher, J. P., and Woodside, J., Methane-related authigenic carbonates of eastern Mediterranean Sea mud volcanoes and their possible relation to gas hydrate destabilisation, Earth and Planetary Science Letters, vol. 184, pp. 321–338, 2000.
W. J. Jones, Leigh, J. A., Mayer, F., Woese, C. R., and Wolfe, R. S., Methanococcus jannaschii sp. nov., an extremely thermophilic methanogen from a submarine hydrothermal vent, Archives of Microbiology, vol. 136, pp. 254–261, 1983.
M. Kurr, Huber, R., Konig, H., Jannasch, H. W., Fricke, H., Trincone, A., Kristiansson, J. K., and Stetter, K. O., Methanopyrus kandleri, gen. and sp. nov. represents a novel group of hyperthermophilic methanogens growing at 110C, Archives of Microbiology, vol. 156, pp. 239–247, 1991.

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