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1

Martin, Joel W., and Ana Dittel. "The megalopa stage of the hydrothermal vent crab genus Bythograea (Crustacea, Decapoda, Bythograeidae)." Zoosystema 29, no. 2 (2007): 365–79. https://doi.org/10.5281/zenodo.5391255.

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2

Leignel, V., L. A. Hurtado, and M. Segonzac. "Ecology, adaptation and acclimatisation mechanisms of Bythograeidae Williams, 1980, a unique endemic hydrothermal vent crabs family: current state of knowledge." Marine and Freshwater Research 69, no. 1 (2018): 1. http://dx.doi.org/10.1071/mf17007.

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Diversified fauna have colonised the deep-sea hydrothermal vents, an environment characterised by high metallic concentrations and sulfide-rich waters. In 1977–79, brachyuran crabs were collected in hydrothermal vents around the Galapagos Rift, allowing description in 1980 of Bythograea thermydron and the new family Bythograeidae (and the superfamily Bythogreoidea). This family has a worldwide distribution and currently includes 13 species classified in 6 genera: Allograea (1 species), Austinograea (3 species), Bythograea (5 species), Cyanagraea (1 species), Gandalfus (2 species) and Segonzaci
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3

Martinez, Anne-Sophie, Jean-Yves Toullec, Bruce Shillito, Mireille Charmantier-Daures, and Guy Charmantier. "Hydromineral Regulation in the Hydrothermal Vent Crab Bythograea thermydron." Biological Bulletin 201, no. 2 (2001): 167–74. http://dx.doi.org/10.2307/1543331.

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4

DEMIDOW, OLGA, TERUE C. KIHARA, PEDRO MARTÍNEZ ARBIZU, and PAUL F. CLARK. "The megalopal stage of the hydrothermal vent crab Austinograea rodriguezensis Tsuchida & Hashimoto, 2002 (Decapoda: Bythograeidae): a morphological description based on CLSM images." Zootaxa 5040, no. 3 (2021): 365–87. http://dx.doi.org/10.11646/zootaxa.5040.3.3.

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The Bythograeidae is unique amongst brachyuran crab taxa as it is the only family where all 6 genera and 16 species are endemic to hydrothermal vents. During the research conducted by German Federal Institute for Geosciences and Natural Resources to identify inactive polymetallic sulphide deposits along Central and Southeast Indian Ridges, the INDEX project collected from hydrothermal vent fields 6 Bythograeidae megalopae. Entire specimens and dissected appendages were stained, mounted on slides and examined using Light Microscopy and Confocal Laser Scanning Microscopy. Additional molecular an
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5

DitteL, Ana I., Gina Perovich, and Charles E. Epifanio. "Biology of the Vent Crab Bythograea thermydron: A Brief Review." Journal of Shellfish Research 27, no. 1 (2008): 63–77. http://dx.doi.org/10.2983/0730-8000(2008)27[63:botvcb]2.0.co;2.

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6

Vetter, R. D., M. E. Wells, Aaron L. Kurtsman, and G. N. Somero. "Sulfide Detoxification by the Hydrothermal Vent Crab Bythograea thermydron and Other Decapod Crustaceans." Physiological Zoology 60, no. 1 (1987): 121–37. http://dx.doi.org/10.1086/physzool.60.1.30158634.

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7

Perovich, GM, CE Epifanio, AI Dittel, and PA Tyler. "Spatial and temporal patterns in development of eggs in the vent crab Bythograea thermydron." Marine Ecology Progress Series 251 (2003): 211–20. http://dx.doi.org/10.3354/meps251211.

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8

MCLAY, COLIN. "New crabs from hydrothermal vents of the Kermadec Ridge submarine volcanoes, New Zealand: Gandalfus gen. nov. (Bythograeidae) and Xenograpsus (Varunidae) (Decapoda: Brachyura)." Zootaxa 1524, no. 1 (2007): 1–22. http://dx.doi.org/10.11646/zootaxa.1524.1.1.

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Gandalfus puia gen. et sp. nov. (Bythograeidae) is reported from submarine volcanoes near the Kermadec Islands. The genus Austinograea is revised with the result that A. yunohana Takeda, Hashimoto & Ohta, 2000 is transferred to the new genus. Both of these species occur in relatively shallow waters (240–1650 m) compared to other bythograeids. A sister group hypothesis of the modern genera, Allograea + (Segonzacia + (Cyanagraea + (Bythograea + (Gandalfus + Austinograea)))) is presented to provide an interpretation of variation in eye regression and male gonopods; Austinograea and Gandalfus
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9

Epifanio, CE, G. Perovich, AI Dittel, and SC Cary. "Development and behavior of megalopa larvae and juveniles of the hydrothermal vent crab Bythograea thermydron." Marine Ecology Progress Series 185 (1999): 147–54. http://dx.doi.org/10.3354/meps185147.

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10

Airriess, C. N., and J. J. Childress. "Homeoviscous Properties Implicated by the Interactive Effects of Pressure and Temperature on the Hydrothermal Vent Crab Bythograea thermydron." Biological Bulletin 187, no. 2 (1994): 208–14. http://dx.doi.org/10.2307/1542243.

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11

Dittel, Ana I., Charles E. Epifanio, and Gina Perovich. "Food sources for the early life history stages of the hydrothermal vent crab Bythograea thermydron: a stable isotope approach." Hydrobiologia 544, no. 1 (2005): 339–46. http://dx.doi.org/10.1007/s10750-005-1699-7.

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12

Toullec, Jean-Yves, Joëlle Vinh, Jean-Pierre Le Caer, Bruce Shillito, and Daniel Soyez. "Structure and phylogeny of the crustacean hyperglycemic hormone and its precursor from a hydrothermal vent crustacean: the crab Bythograea thermydron." Peptides 23, no. 1 (2002): 31–42. http://dx.doi.org/10.1016/s0196-9781(01)00576-9.

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13

Gorodezky, L. A., and J. J. Childress. "Effects of sulfide exposure history and hemolymph thiosulfate on oxygen-consumption rates and regulation in the hydrothermal vent crab Bythograea thermydron." Marine Biology 120, no. 1 (1994): 123–31. http://dx.doi.org/10.1007/bf00381948.

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14

Decelle, Johan, Ann Andersen, and Stéphane Hourdez. "Morphological adaptations to chronic hypoxia in deep-sea decapod crustaceans from hydrothermal vents and cold seeps." Marine biology 157 (March 6, 2010): 1259–69. https://doi.org/10.1007/s00227-010-1406-8.

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Animals inhabiting hydrothermal vents and cold seeps face conditions that are challenging for survival. In particular these two habitats are characterized by chronic hypoxia, sometimes reaching complete anoxia. The characteristics of the scaphognathite and gills were studied in 4 species of shrimp and 3 species of crabs from hydrothermal vents and cold seeps, in order to highlight potential adaptations that could enhance oxygen acquisition in comparison to shallow-water relatives. All the vent and seep species studied here exhibit significantly larger scaphognathites, likely allowing more wate
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15

Guinot, Danièle, and Michel Segonzac. "Description d'un crabe hydrothermal nouveau du genre Bythograea (Crustacea Decapoda Brachyura) et remarques sur les Bythograeidae de la dorsale du Pacifique oriental." Zoosystema 19, no. 1 (1997): 121–49. http://dx.doi.org/10.5962/p.268849.

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16

Halaimia-Toumi, N., N. Casse, M. V. Demattei, et al. "The GC-Rich Transposon Bytmar1 from the Deep-Sea Hydrothermal Crab, Bythograea thermydron, May Encode Three Transposase Isoforms from a Single ORF." Journal of Molecular Evolution 59, no. 6 (2004): 747–60. http://dx.doi.org/10.1007/s00239-004-2665-0.

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17

Phleger, Charles F., Matthew M. Nelson, Ami K. Groce, S. Craig Cary, Kathryn J. Coyne, and Peter D. Nichols. "Lipid composition of deep-sea hydrothermal vent tubeworm Riftia pachyptila, crabs Munidopsis subsquamosa and Bythograea thermydron, mussels Bathymodiolus sp. and limpets Lepetodrilus spp." Comparative Biochemistry and Physiology Part B: Biochemistry and Molecular Biology 141, no. 2 (2005): 196–210. http://dx.doi.org/10.1016/j.cbpc.2005.03.001.

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18

Guinot, Danièle, and Luis Alberto Hurtado. "Two new species of hydrothermal vent crabs of the genus Bythograea from the southern East Pacific Rise and from the Galapagos Rift (Crustacea Decapoda Brachyura Bythograeidae)." Comptes Rendus Biologies 326, no. 4 (2003): 423–39. http://dx.doi.org/10.1016/s1631-0691(03)00126-4.

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19

Zal, Franck, Guiomar Rotllant, James Childress, Joan Company, and Erik Thuesen. "Effects of Food Deprivation on Enzymatic Activities of the Mediterranean Deep-sea Crab, Geryon Longipes A. Milne-Edwards, 1882 and the Pacific Hydrothermal Vent Crab, Bythograea Thermydron Williams, 1980 (Decapoda, Brachyura)." Crustaceana 81, no. 1 (2008): 67–85. http://dx.doi.org/10.1163/156854008783244771.

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20

Cho, Boongho, Dongsung Kim, Hyeonmi Bae, and Taewon Kim. "Unique Characteristics of the Exoskeleton of Bythograeid Crab, Austinograea rodriguezensis in the Indian Ocean Hydrothermal Vent (Onnuri Vent Field)." Integrative and Comparative Biology 60, no. 1 (2019): 24–32. http://dx.doi.org/10.1093/icb/icz150.

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Abstract The Indian Ocean hydrothermal vent is a region where a new oceanic crust is formed by magma at the interface of the deep-sea bed over 2000 m in depth. Here we examined for the first time the exoskeleton structure and mechanical properties of the bythograeid crab Austinograea Rodriguezensis living in hydrothermal vents. Scanning electron microscope and energy dispersive x-ray were used for structural analysis, and a nanoindentation system was used for mechanical analysis. The exoskeleton was divided into four layers: epicuticle, exocuticle, endocuticle, and membrane. The thickness of e
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21

Tsuchida, Shinji, and Katsunori Fujikura. "HETEROCHELY, RELATIVE GROWTH, AND GONOPOD MORPHOLOGY IN THE BYTHOGRAEID CRAB, AUSTINOGRAEA WILLIAMSI (DECAPODA, BRACHYURA)." Journal of Crustacean Biology 20, no. 2 (2000): 407–14. http://dx.doi.org/10.1651/0278-0372(2000)020[0407:hrgagm]2.0.co;2.

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22

Shields, Jeffrey D., and Michel Segonzac. "New Nemertean Worms (Carcinonemertidae) on Bythograeid Crabs (Decapoda: Brachyura) from Pacific Hydrothermal Vent Sites." Journal of Crustacean Biology 27, no. 4 (2007): 681–92. http://dx.doi.org/10.1651/s-2794.1.

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23

Tsuchida, Shinji, and Katsunori Fujikura. "Heterochely, Relative Growth, and Gonopod Morphology in the Bythograeid Crab, Austinograea Williamsi (Decapoda, Brachyura)." Journal of Crustacean Biology 20, no. 2 (2000): 407–14. http://dx.doi.org/10.1163/20021975-99990052.

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24

Hilário, A., S. Vilar, MR Cunha, and P. Tyler. "Reproductive aspects of two bythograeid crab species from hydrothermal vents in the Pacific-Antarctic Ridge." Marine Ecology Progress Series 378 (March 12, 2009): 153–60. http://dx.doi.org/10.3354/meps07858.

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25

Cho, Boongho, Sook-Jin Jang, Hee-seung Hwang, and Taewon Kim. "Convergent Evolution of Armor: Thermal Resistance in Deep-Sea Hydrothermal Vent Crustaceans." Biology 13, no. 12 (2024): 956. http://dx.doi.org/10.3390/biology13120956.

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Organisms occupy diverse ecological niches worldwide, each with characteristics finely evolved for their environments. Crustaceans residing in deep-sea hydrothermal vents, recognized as one of Earth’s extreme environments, may have adapted to withstand severe conditions, including elevated temperatures and pressure. This study compares the exoskeletons of two vent crustaceans (bythograeid crab Austinograea sp. and squat lobster Munidopsis lauensis) with four coastal species (Asian paddle crabs, blue crab, hermit crab, and mantis shrimp) to identify traits influenced by vent environments. The g
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26

Tsuchida, Shinji, and Jun Hashimoto. "A NEW SPECIES OF BYTHOGRAEID CRAB, AUSTINOGRAEA RODRIGUEZENSIS (DECAPODA, BRACHYURA), ASSOCIATED WITH ACTIVE HYDROTHERMAL VENTS FROM THE INDIAN OCEAN." Journal of Crustacean Biology 22, no. 3 (2002): 642–50. http://dx.doi.org/10.1651/0278-0372(2002)022[0642:ansobc]2.0.co;2.

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27

Tsuchida, Shinji, and Jun Hashimoto. "A New Species of Bythograeid Crab, Austinograea Rodriguezensis (Decapoda, Brachyura), Associated with Active Hydrothermal Vents from the Indian Ocean." Journal of Crustacean Biology 22, no. 3 (2002): 642–50. http://dx.doi.org/10.1163/20021975-99990276.

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28

Davis, Deidric B., and Nancy Smith. "Diet and prey selectivity in co-occurring eelpout fish and bythograeid crabs in a deep-sea hydrothermal vent community." PeerJ 13 (May 27, 2025): e19476. https://doi.org/10.7717/peerj.19476.

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Understanding the trophic ecology of deep-sea communities is central to assessing ecological structure and function, which is often lacking in remote oceanographic environments such as hydrothermal vents. Using stomach content analysis coupled with published stable isotope data, we assessed diet and prey selectivity in two common predators, eelpouts (Pyrolycus manusanus) and crabs (Austinograea alayseae), from a South Pacific deep-sea hydrothermal vent community. Using specimens collected during a cruise in 2007, we found that eelpouts strongly preferred alvinocarididshrimp. This observation i
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29

Yang, Jin-Shu, Bo Lu, Dian-Fu Chen, et al. "When Did Decapods Invade Hydrothermal Vents? Clues from the Western Pacific and Indian Oceans." Molecular Biology and Evolution 30, no. 2 (2012): 305–9. http://dx.doi.org/10.1093/molbev/mss224.

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Abstract Hydrothermal vents are typically located in midocean ridges and back-arc basins and are usually generated by the movement of tectonic plates. Life thrives in these environments despite the extreme conditions. In addition to chemoautotrophic bacteria, decapod crustaceans are dominant in many of the hydrothermal vents discovered to date. Contrary to the hypothesis that these species are remnants of relic fauna, increasing evidence supports the notion that hydrothermal vent decapods have diversified in more recent times with previous research attributing the origin of alvinocarid shrimps
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30

Cruz, Mariana, Nadine Le Bris, and Ana Colaço. "Reproductive Traits of the Vent Crab Segonzacia mesatlantica (Guinot, 1989) From the Mid-Atlantic Ridge." Frontiers in Marine Science 9 (July 13, 2022). http://dx.doi.org/10.3389/fmars.2022.900990.

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Characteristics of the life-history biology of hydrothermal vent species are a prerequisite to understanding the dispersal, population connectivity, and ecology of these insular populations. The vent crab Segonzacia mesatlantica (Guinot, 1989; Brachyuran: Bythograeidae) is one of the most dominant endemic predators at deep-sea hydrothermal vents along the Mid-Atlantic Ridge (MAR). However, the biological life-history characteristics remain poorly understood for this species. The objective of this study was to reveal relevant biological characteristics of the reproductive ecology of S. mesatlan
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