9129767 WQH5BE2T 1 apa 50 date desc year Felbeck 18 https://hfelbeck.scrippsprofiles.ucsd.edu/wp-content/plugins/zotpress/
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Dufour, S. C., & Felbeck, H. (2003). Sulphide mining by the superextensile foot of symbiotic thyasirid bivalves. Nature, 426(6962), 65–67. https://doi.org/10.1038/nature02095
Gros, O., Liberge, M., Heddi, A., Khatchadourian, C., & Felbeck, H. (2003). Detection of the free-living forms of sulfide-oxidizing gill endosymbionts in the lucinid habitat (Thalassia testudinum environment). Applied and Environmental Microbiology, 69(10), 6264–6267. https://doi.org/10.1128/aem.69.10.6264-6267.2003
Gros, O., Liberge, M., & Felbeck, H. (2003). Interspecific infection of aposymbiotic juveniles of Codakia orbicularis by various tropical lucinid gill-endosymbionts. Marine Biology, 142(1), 57–66. https://doi.org/10.1007/s00227-002-0921-7
Bright, M., Arndt, C., Keckeis, H., & Felbeck, H. (2003). A temperature-tolerant interstitial worm with associated epibiotic bacteria from the shallow water fumaroles of Deception Island, Antarctica. Deep-Sea Research Part Ii-Topical Studies in Oceanography, 50(10–11), 1859–1871. https://doi.org/10.1016/s0967-0645(03)00095-x
Garcia-Esquivel, Z., Bricelj, V. M., & Felbeck, H. (2002). Metabolic depression and whole-body response to enforced starvation by Crassostrea gigas postlarvae. Comparative Biochemistry and Physiology A-Molecular and Integrative Physiology, 133(1), 63–77. https://doi.org/10.1016/s1095-6433(02)00112-5
Arndt, C., Gaill, F., & Felbeck, H. (2001). Anaerobic sulfur metabolism in thiotrophic symbioses. Journal of Experimental Biology, 204(4), 741–750.
Girguis, P. R., Lee, R. W., Desaulniers, N., Childress, J. J., Pospesel, M., Felbeck, H., & Zal, F. (2000). Fate of nitrate acquired by the tubeworm Riftia pachyptila. Applied and Environmental Microbiology, 66(7), 2783–2790. https://doi.org/10.1128/aem.66.7.2783-2790.2000
Hentschel, U., Millikan, D. S., Arndt, C., Cary, S. C., & Felbeck, H. (2000). Phenotypic variations in the gills of the symbiont-containing bivalve Lucinoma aequizonata. Marine Biology, 136(4), 633–643. https://doi.org/10.1007/s002270050723
Gros, O., Frenkiel, L., & Felbeck, H. (2000). Sulfur-oxidizing endosymbiosis in Divaricella quadrisulcata (Bivalvia : Lucinidae): Morphological, ultrastructural, and phylogenetic analysis. Symbiosis, 29(4), 293–317.
Gros, O., Duplessis, M. R., & Felbeck, H. (1999). Embryonic development and endosymbiont transmission mode in the symbiotic clam Lucinoma aequizonata (Bivalvia : Lucinidae). Invertebrate Reproduction & Development, 36(1–3), 93–103. https://doi.org/10.1080/07924259.1999.9652683
Millikan, D. S., Felbeck, H., & Stein, J. L. (1999). Identification and characterization of a flagellin gene from the endosymbiont of the hydrothermal vent tubeworm Riftia pachyptila. Applied and Environmental Microbiology, 65(7), 3129–3133.
Hentschel, U., Berger, E. C., Bright, M., Felbeck, H., & Ott, J. A. (1999). Metabolism of nitrogen and sulfur in ectosymbiotic bacteria of marine nematodes (Nematoda, Stilbonematinae). Marine Ecology-Progress Series, 183, 149–158. https://doi.org/10.3354/meps183149
Pospesel, M. A., Hentschel, U., & Felbeck, H. (1998). Determination of nitrate in the blood of the hydrothermal vent tubeworm Riftia pachyptila using a bacterial nitrate reduction assay. Deep-Sea Research Part I-Oceanographic Research Papers, 45(12), 2189–2200. https://doi.org/10.1016/s0967-0637(98)00054-5
Felbeck, H., & Jarchow, J. (1998). Carbon release from purified chemoautotrophic bacterial symbionts of the hydrothermal vent tubeworm Riftia pachyptila. Physiological Zoology, 71(3), 294–302.
Maxwell, B., & Felbeck, H. (1998). An abundant heme protein in Riftia pachyptila symbionts is a nitrite reductase. Cahiers De Biologie Marine, 39(3–4), 317–320.
Hughes, D. S., Felbeck, H., & Stein, J. L. (1998). Signal transduction and motility genes from the bacterial endosymbionts of Riftia pachyptila. Cahiers De Biologie Marine, 39(3–4), 305–308.
Hentschel, U., Pospesel, M. A., & Felbeck, H. (1998). Evidence for a nitrate uptake mechanism in the hydrothermal vent tube-worm Riftia pachyptila. Cahiers De Biologie Marine, 39(3–4), 301–304.
Felbeck, H., & Jarchow, J. (1998). The influence of different incubation media on the carbon transfer from the bacterial symbionts to the hydrothermal vent tube-worm Riftia pachyptila. Cahiers De Biologie Marine, 39(3–4), 279–282.
Arndt, C., Schiedek, D., & Felbeck, H. (1998). Metabolic responses of the hydrothermal vent tube worm Riftia pachyptila to severe hypoxia. Marine Ecology-Progress Series, 174, 151–158. https://doi.org/10.3354/meps174151
Arndt, C., Schiedek, D., & Felbeck, H. (1998). Anaerobiosis in the hydrothermal vent tube-worm Riftia pachyptila. Cahiers De Biologie Marine, 39(3–4), 271–273.
Hughes, D. S., Felbeck, H., & Stein, J. L. (1997). A histidine protein kinase homolog from the endosymbiont of the hydrothermal vent tubeworm Riftia pachyptila. Applied and Environmental Microbiology, 63(9), 3494–3498.
Hentschel, U., Hand, S. C., & Felbeck, H. (1996). The contribution of nitrate respiration to the energy budget of the symbiont-containing clam Lucinoma aequizonata: A calorimetric study. Journal of Experimental Biology, 199(2), 427–433.
Felbeck, H., & Turner, P. J. (1995). CO2 transport in catheterized hydrothermal vent tubeworms, Riftia pachyptila (vestimentifera). Journal of Experimental Zoology, 272(2), 95–102. https://doi.org/10.1002/jez.1402720203
Hentschel, U., & Felbeck, H. (1995). Nitrate respiration in chemoautotrophic symbionts of the bivalve Lucinoma aequizonata is not regulated by oxygen. Applied and Environmental Microbiology, 61(4), 1630–1633.
Boetius, A., & Felbeck, H. (1995). Digestive enzymes in marine invertebrates from hydrothermal vents and other reducing environments. Marine Biology, 122(1), 105–113. https://doi.org/10.1007/bf00349283
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