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1

Danilov, Igor G., and Alexander O. Averianov. "New Data on the Turtles from the Early Eocene of Kirghizia." Russian Journal of Herpetology 4, no. 1 (2011): 40–45. http://dx.doi.org/10.30906/1026-2296-1997-4-1-40-45.

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Based on new material from the Andarak 2 locality in southern Kirghizia (early Eocene, late Ypresian), the testudinid Ergilemys vialovi Ckhikvadze, 1984, is assigned to the subgenus Hadrianus Cope, 1872, of the genus Manouria Gray, 1852. Part of the humerus of the oldest known cheloniine sea turtle is described from the same locality. The cheloniine sea turtles might have evolved during the Ypresian, an interval during which Cenozoic sea turtles were exceptionally diverse.
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2

Gentry, Andrew D. "Prionochelys matutinaZangerl, 1953 (Testudines: Pan-Cheloniidae) from the Late Cretaceous of the United States and the evolution of epithecal ossifications in marine turtles." PeerJ 6 (November 1, 2018): e5876. http://dx.doi.org/10.7717/peerj.5876.

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BackgroundMany neritic to nearshore species of marine adapted turtle from the Late Cretaceous of North America are thought to represent the stem lineage of Cheloniidae but due to fragmentary holotypes, low total specimen counts, and resultantly incomplete morphological character suites, are routinely placed either within or outside of crown group Chelonioidea leaving their precise cladistic affinities uncertain. Despite this systematic ambiguity, the referral of these species to either the stem of Cheloniidae or Chelonioidea belies the critical importance of these taxa in any investigation int
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3

Kitayama, Chiyo, Keiichi Ueda, Mariko Omata, et al. "Morphological features of the nasal cavities of hawksbill, olive ridley, and black sea turtles: Comparative studies with green, loggerhead and leatherback sea turtles." PLOS ONE 16, no. 4 (2021): e0250873. http://dx.doi.org/10.1371/journal.pone.0250873.

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We analyzed the internal structure of the nasal cavities of hawksbill, olive ridley and black sea turtles from computed tomography images. The nasal cavities of all three species consisted of a vestibule, nasopharyngeal duct and cavum nasi proprium that included anterodorsal, posterodorsal and anteroventral diverticula, and a small posteroventral salience formed by a fossa of the wall. These findings were similar to those of green and loggerhead sea turtles (Cheloniidae), but differed from those of leatherback sea turtles (Dermochelyidae). Compared to the Cheloniidae species, the nasal cavity
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4

Chesi, F., M. Delfino, A. Varola, and L. Rook. "Fossil sea turtles (Chelonii, Dermochelyidae and Cheloniidae) from the Miocene of Pietra Leccese (late Burdigalian-early Messinian), Southern Italy." Geodiversitas 29, no. 2 (2007): 321–33. https://doi.org/10.5281/zenodo.5373153.

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Chesi F., Delfino M., Varola A., Rook L. (2007): Fossil sea turtles (Chelonii, Dermochelyidae and Cheloniidae) from the Miocene of Pietra Leccese (late Burdigalian-early Messinian), Southern Italy. Geodiversitas 29 (2): 321-333, DOI: 10.5281/zenodo.5373153
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5

Vilaça, Sibelle Torres, and Fabricio Rodrigues dos Santos. "Molecular Data for the Sea Turtle Population in Brazil." Dataset Papers in Science 2013 (August 22, 2013): 1–7. http://dx.doi.org/10.1155/2013/196492.

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We report here a dataset comprising nine nuclear markers for the Brazilian population of Cheloniidae turtles: hawksbills (Eretmochelys imbricata), loggerheads (Caretta caretta), olive ridleys (Lepidochelys olivacea), and green turtles (Chelonia mydas). Because hybridization is a common phenomenon between the four Cheloniidae species nesting on the Brazilian coast, we also report molecular markers for the hybrids E. imbricata × C. caretta, C. caretta × L. olivacea, and E. imbricata × L. olivacea and for one hybrid E. imbricata × C. mydas and one between three species C. mydas × E. imbricata × C
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6

Zinenko, O., K. A. Vishnyakova, L. Stoyanov, and P. E. Gol'din. "The Northernmost Record Of The Loggerhead Sea Turtle, Caretta Caretta (Testudines, Cheloniidae), In The Black Sea, With The Review Of The Species Occurrence In The Region." Zoodiversity 55, no. 2 (2021): 127–32. https://doi.org/10.15407/zoo2021.02.127.

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Zinenko, O., Vishnyakova, K. A., Stoyanov, L., Gol'din, P. E. (2021): The Northernmost Record Of The Loggerhead Sea Turtle, Caretta Caretta (Testudines, Cheloniidae), In The Black Sea, With The Review Of The Species Occurrence In The Region. Zoodiversity 55 (2): 127-132, DOI: 10.15407/zoo2021.02.127, URL: http://dx.doi.org/10.15407/zoo2021.02.127
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7

Chang, Glenn, Samantha Jones, Sreeja Leelakumari, et al. "The genome sequence of the Loggerhead sea turtle, Caretta caretta Linnaeus 1758." F1000Research 12 (March 27, 2023): 336. http://dx.doi.org/10.12688/f1000research.131283.1.

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We present a genome assembly of Caretta caretta (the Loggerhead sea turtle; Chordata, Testudines, Cheloniidae), generated from genomic data from two unrelated females. The genome sequence is 2.13 gigabases in size. The majority of the assembly is scaffolded into 28 chromosomal representations with a remaining 2% of the assembly being excluded from these.
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8

Das, Ashis Kumar, Sandeep Kumar Mohapatra, Basudev Tripathy, Anil Mohapatra, and B. Anjan. "Short Communication A note on the nesting of Green sea turtle Chelonia mydas Linnaeus, 1758 (Testudines: Cheloniidae) at Rushikulya Rookery, Odisha coast of India." Records of the Zoological Survey of India 124, no. 1 (2024): 99–101. https://doi.org/10.26515/rzsi/v124/i1/2024/172651.

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Das, Ashis Kumar, Mohapatra, Sandeep Kumar, Tripathy, Basudev, Mohapatra, Anil, Anjan, B. (2024): Short Communication A note on the nesting of Green sea turtle Chelonia mydas Linnaeus, 1758 (Testudines: Cheloniidae) at Rushikulya Rookery, Odisha coast of India. Records of the Zoological Survey of India 124 (1): 99-101, DOI: 10.26515/rzsi/v124/i1/2024/172651
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9

Tong, Haiyan, Ren Hirayama, and Jérôme Tabouelle. "Puppigerus camperi (Testudines: Cryptodira: Cheloniidae) from the Ypresian (Early Eocene) of Ouled Abdoun basin, Morocco." Bulletin de la Société Géologique de France 183, no. 6 (2012): 635–40. http://dx.doi.org/10.2113/gssgfbull.183.6.635.

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Abstract A well preserved skull of Puppigerus camperi (Testudines: Cryptodira: Cheloniidae) is reported from the Ypresian (Early Eocene) phosphate deposits of the Ouled Abdoun basin, Morocco. This discovery adds an additional element to the rich turtle assemblages hitherto known in the Ouled Abdoun basin, suggesting further close relationships with the Paleogene sea turtle fauna from northwestern Europe.
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10

Cavaco, B., L. M. Madeira De Carvalho, and M. R. Werneck. "Some digenetic trematodes found in a loggerhead sea turtle (Caretta caretta) from Brazil." Helminthologia 58, no. 2 (2021): 217–24. http://dx.doi.org/10.2478/helm-2021-0023.

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Summary This paper reports three recovered species of digeneans from an adult loggerhead sea turtle - Caretta caretta (Testudines, Cheloniidae) in Brazil. These trematodes include Diaschistorchis pandus (Pronocephalidae), Cymatocarpus solearis (Brachycoeliidae) and Rhytidodes gelatinosus (Rhytidodidae) The first two represent new geographic records. A list of helminths reported from the Neotropical region, Gulf of Mexico and USA (Florida) is presented.
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11

Olgun, Kurtuluş, Emin Bozkurt, Süleyman Ceylan, et al. "Nesting activity of sea turtles, Caretta caretta (Linnaeus, 1758) and Chelonia mydas (Linnaeus, 1758) (Reptilia, Cheloniidae), at Patara Beach (Antalya, Turkey) over four nesting seasons." Turkish Journal of Zoology 40, no. 3 (2015): 215–22. https://doi.org/10.3906/zoo-1505-8.

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Olgun, Kurtuluş, Bozkurt, Emin, Ceylan, Süleyman, Tural, Mehmet, Özcan, Serdar, Karasüleymanoğlu, Kazım Şahin, Geroğlu, Yusuf (2016): Nesting activity of sea turtles, Caretta caretta (Linnaeus, 1758) and Chelonia mydas (Linnaeus, 1758) (Reptilia, Cheloniidae), at Patara Beach (Antalya, Turkey) over four nesting seasons. Turkish Journal of Zoology 40 (3): 215-222, DOI: 10.3906/zoo-1505-8, URL: http://dx.doi.org/10.3906/zoo-1505-8
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12

Chang, Glenn, Samantha Jones, Sreeja Leelakumari, et al. "The genome sequence of the Loggerhead sea turtle, Caretta caretta Linnaeus 1758." F1000Research 12 (June 27, 2023): 336. http://dx.doi.org/10.12688/f1000research.131283.2.

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We present a genome assembly of Caretta caretta (the Loggerhead sea turtle; Chordata, Testudines, Cheloniidae), generated from genomic data from two unrelated females. The genome sequence is 2.13 gigabases in size. The assembly has a busco completion score of 96.1% and N50 of 130.95 Mb. The majority of the assembly is scaffolded into 28 chromosomal representations with a remaining 2% of the assembly being excluded from these.
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13

Aloufi, Abdulhadi, Mohammed Al Zayer, and Zuhair S. Amr. "Reptiles and Amphibians along the Coastal Area of the Eastern Province, Saudi Arabia." Ecologica Montenegrina 68 (November 8, 2023): 66–87. http://dx.doi.org/10.37828/em.2023.68.7.

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Thirty-two species of amphibians and reptiles were reported during this study, including 16 families (Ranidae, Geoemydidae, Cheloniidae, Gekkonidae, Sphaerodactylidae, Phyllodactylidae, Agamidae, Lacertidae, Scincidae, Varanidae, Trogonophidae, Boidae, Colubridae, Psammophiidae, Viperidae and Elapidae). Family Geckkonidae was represented by the highest number of species (8), followed by families Agamidae and Scincidae (four species for each). Trachylepis tessellata is reported for the first time to the herpetofauna of Saudi Arabia.
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14

Saint-Girons, H. "Histologie comparée des fosses nasales de quelques Tortues marines (Dermochelys coriacea et Chelonia mydas) et d’eaux douces (Emys orbicularis et Pseudemys scripta) (Reptilia, Dermochelyidae, Cheloniidae, Emydidae)." Bijdragen tot de Dierkunde 61, no. 1 (1991): 51–61. http://dx.doi.org/10.1163/26660644-06101005.

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Comparative histological studies carried out on the nasal cavity of four species of turtles showed that the sea turtles have a more or less regressed olfactive epithelium compared to that of the Emydidae but that their vomeronasal epithelium is more developed. The location of the vomeronasal epithelium in the cavum also differs. The data suggest that the Dermochelyidae were adapted to a strict aquatic life a long time before the Cheloniidae.
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15

Wetterer, James K., Michael J. Liles, José M. Sermeño, et al. "Predaceous fire ants (Hymenoptera: Formicidae) at sea turtle (Testudines: Cheloniidae) nesting beaches and hatcheries in El Salvador." Florida Entomologist 99, no. 1 (2016): 106. https://doi.org/10.1653/024.099.0119.

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Wetterer, James K., Liles, Michael J., Sermeño, José M., Cervantes, Leopoldo Serrano, Echeverria, Eunice E., Hernández, Rosa María Estrada, Henriquez, Ana, Pérez, Dagoberto, García, Doris Argentina Sánchez, Gómez Peralta, Carlos E., Sorto, Rubén López, Melendez, Glenda (2016): Predaceous fire ants (Hymenoptera: Formicidae) at sea turtle (Testudines: Cheloniidae) nesting beaches and hatcheries in El Salvador. Florida Entomologist 99 (1): 106, DOI: 10.1653/024.099.0119, URL: http://www.bioone.org/doi/10.1653/024.099.0119
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16

Collareta, Alberto, Rafael Varas-Malca, Giulia Bosio, Mario Urbina, and Giovanni Coletti. "Ghosts of the Holobiont: Borings on a Miocene Turtle Carapace from the Pisco Formation (Peru) as Witnesses of Ancient Symbiosis." Journal of Marine Science and Engineering 11, no. 1 (2022): 45. http://dx.doi.org/10.3390/jmse11010045.

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In spite of the widespread occurrence of epibiotic turtle barnacles (Coronuloidea: Chelonibiidae and Platylepadidae) on extant marine turtles (Chelonioidea: Cheloniidae and Dermochelyidae), and although the association between these cirripedes and their chelonian hosts has existed for more than 30 million years, only a few studies have investigated the deep past of this iconic symbiotic relationship on palaeontological grounds. We describe probable platylepadid attachment scars in the form of hemispherical/hemiellipsoidal borings on an Upper Miocene (Tortonian) fragmentary turtle carapace, ide
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17

Janssen, R., R. R. van Baal, and A. S. Schulp. "Bone damage in Allopleuron hofmanni (Cheloniidae, Late Cretaceous)." Netherlands Journal of Geosciences - Geologie en Mijnbouw 92, no. 2-3 (2013): 153–57. http://dx.doi.org/10.1017/s0016774600000081.

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AbstractWe describe pathologies and post-mortem damage observed in specimens of the late Maastrichtian marine cheloniid turtle Allopleuron hofmanni. Shallow circular lesions on carapace bones are common and possibly illustrate barnacle attachment/embedment. Deep, pit-like marks are confined to the neural rim and the inner surface of peripheral elements; these may have been caused either by barnacle attachment or disease. A number of linear marks found on outer carapace surfaces are identified as tooth marks of scavengers, others as possible domichnia of boring bivalves. A fragmentary scapula a
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18

Pestov, M. V., D. A. Denisov, A. E. Karpukhin, and A. N. Gnetneva. "Current state of internet trading of sea turtle (Cheloniidae) derivatives in Russia." Current Studies in Herpetology 23, no. 1/2 (2023): 36–43. http://dx.doi.org/10.18500/1814-6090-2023-23-1-2-36-43.

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This paper reports the results of our monitoring the presence of advertisements for the sale of sea turtle (Cheloniidae) derivatives on the Internet in Russia in 2021 and 2023. Data on species, number, region of origin, market price and turnover rate of these derivatives are summarized. A brief analysis of the regulatory framework governing the turnover of sea turtle derivatives is given and the conclusion on the necessity of its adjustment is provided.
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Diedrich, C., and R. Hirayama. "Turtle remains (Testudines, Chelonioidea) from the Middle Turonian of northwest Germany." Netherlands Journal of Geosciences 82, no. 2 (2003): 161–67. http://dx.doi.org/10.1017/s0016774600020710.

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AbstractTurtle remains ascribed to the family Cheloniidae (Testudines, Cryptodira, Chelonioidea), collected from the lamarcki zone (Middle Turonian) at Wüllen (NW Germany) are described. The material consists of a right humerus, a scapula, a complete costalia, and costalia fragments of a single individual with the humerus indicating a primitive cheloniid of the ‘toxochelyid grade’. The present material, as well as previously recorded chelonioid humeri from the Cenomanian and Turonian of Germany illustrate a progressive diversification of chelonioids during the early Late Cretaceous.
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20

Davenport, John. "A cleaning association between the oceanic crab Planes minutus and the loggerhead sea turtle Caretta caretta." Journal of the Marine Biological Association of the United Kingdom 74, no. 3 (1994): 735–37. http://dx.doi.org/10.1017/s0025315400047780.

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Columbus crabs, Planes minutus (L.) (Crustacea: Brachyura) are often found on the postero-ventral surfaces of sea turtles, particularly the loggerhead Caretta caretta (L.) (Testudines: Cheloniidae). There has been a general acceptance of a hypothesis that the crabs feed upon turtle faeces. However, evidence is presented here to demonstrate that Planes has a ‘cleaning’ role, feeding on other epibionts (e.g. barnacle cyprids, parasitic amphipods) during daylight hours. At night it is likely that the crabs feed on neustonic animals (e.g. euphausids). The species is also cannibalistic.
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21

Werneck, M. R., A. Mastrangelli, R. Velloso, P. Baldassin, H. Jerdy, and E. C. Q. Carvalho. "The genus Rhytidodoides Price, 1939 (Digenea: Rhytidodidae) in Brazil: New geographic occurrence and report of pathology in the gallbladder." Helminthologia 56, no. 2 (2019): 175–82. http://dx.doi.org/10.2478/helm-2019-0004.

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SummaryThe present note describes the occurrence of Rhytidodoides intestinalis and Rhytidodoides similis (Digenea: Rhytidodidae) in the gallbladder of two juvenile green turtles (Chelonia mydas - Testu- dines, Cheloniidae) found on the coast of Brazil. Both were detected in gallbladder and intestine of green turtles: Rhytidodoides similis (United States, Panama, Costa Rica and Brazil) and R. intestinais (United States, Panama and Costa Rica). This note is the first report of R. intestinalis in Brazil and South-West Atlantic Ocean. Also the histological lesions caused by the parasites in one ga
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22

Tomás, J., J. L. Mons, J. J. Martín, J. J. Bellido, and J. J. Castillo. "Study of the first reported nest of loggerhead sea turtle, Caretta caretta, in the Spanish Mediterranean coast." Journal of the Marine Biological Association of the United Kingdom 82, no. 6 (2002): 1005–7. http://dx.doi.org/10.1017/s0025315402006537.

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We summarize all the data of nest placement, incubation period, emergence of hatchlings and nest study of the first reported nesting event of a loggerhead turtle Caretta caretta (Reptilia: Cheloniidae) in the Spanish Mediterranean coast. The nest was laid in a beach of Almería province (south-east Spain) in July 2001. The incubation period was 58 days. Forty-two hatchlings emerged from a total of 97 eggs laid. Future beach surveys will determine whether this is a sporadic nesting event or whether loggerheads nest frequently in these coasts.
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Tong, Haiyan, and Ren Hirayama. "A new species of Argillochelys (Testudines: Cryptodira: Cheloniidae) from the Ouled Abdoun phosphate basin, Morocco." Bulletin de la Société Géologique de France 179, no. 6 (2008): 623–30. http://dx.doi.org/10.2113/gssgfbull.179.6.623.

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AbstractA new species of Argillochelys (Testudines: Cryptodira: Cheloniidae), A. africana n. sp. is described on the basis of three skulls and a lower jaw from the Lower Tertiary beds of the Ouled Abdoun phosphate basin, Morocco. It differs from A. cuneiceps, A. antiqua and A. athersuchi essentially in the frontal well retracted from the orbital margin, with a broad prefrontal/postorbital contact, a more developed secondary palate, and the anterior part of the lower jaw more dorsoventrally flattened, with a wider triturating surface and a longer symphysis, without lingual ridge. This is the fi
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24

Krahl, Anna, Andreas Lipphaus, Martin P. Sander, Fulvio Maffucci, Sandra Hochscheid, and Ulrich Witzel. "Humerus osteology, myology, and finite element structure analysis of Cheloniidae." Anatomical Record 303, no. 8 (2019): 2177–91. http://dx.doi.org/10.1002/ar.24311.

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Simões, Thyara Noely, da Silva Arley Candido, and Melo Moura Carina Carneiro de. "Influence of artificial lights on the orientation of hatchlings of Eretmochelys imbricata in Pernambuco, Brazil." Zoologia 34 (June 6, 2017): 1–6. https://doi.org/10.3897/zoologia.34.e13727.

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Sea turtle hatchlings, in natural abiotic conditions, emerge from their nests at night and go directly to the sea, following the moonlight's reflection in the ocean. Increased human activities such as tourism and artificial lights on the coasts, however, have interfered with the ability of sea turtle neonates to find their correct destination, negatively affecting their survival rates. Here we endeavored to assess the influence of artificial lights on the hatchlings of the sea turtle Eretmochelys imbricata (Linnaeus, 1766) in the south coast of the state of Pernambuco, Brazil. To that end, 10
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Beltrán-Torres, G. C., and J. Hernández-Fernández. "NEW MITOCHONDRIAL MARKERS IMPROVE THE PHYLOGENY OF THE HAWKSBILL TURTLE Eretmochelys imbricata (TESTUDINES: CHELONIIDAE)." Journal of Basic and Applied Genetics 29, no. 2 (2018): 21–31. http://dx.doi.org/10.35407/bag.2018.29.02.03.

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The sea turtles (Cheloniidae) are a group of seven species of cretaceous origin. Analyses of partial mitochondrial sequences have revealed phylogenetic inconsistences within this group. Nevertheless, these mitochondrial markers have allowed us to understand, explain and clarify population composition in areas of foraging, reproductive habits, inferences of migration patterns and, also, to define management units in the world, in order to trace conservation and monitoring plans. In this study, four methods were evaluated and compared for phylogenetic inference (Neighbor-Joining-NJ, Maximum Like
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Cadena, Edwin, Juan Abella, and Maria Gregori. "The first Oligocene sea turtle (Pan-Cheloniidae) record of South America." PeerJ 6 (March 23, 2018): e4554. http://dx.doi.org/10.7717/peerj.4554.

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The evolution and occurrence of fossil sea turtles at the Pacific margin of South America is poorly known and restricted to Neogene (Miocene/Pliocene) findings from the Pisco Formation, Peru. Here we report and describe the first record of Oligocene (late Oligocene, ∼24 Ma) Pan-Cheloniidae sea turtle remains of South America. The fossil material corresponds to a single, isolated and well-preserved costal bone found at the Montañita/Olón locality, Santa Elena Province, Ecuador. Comparisons with other Oligocene and extant representatives allow us to confirm that belongs to a sea turtle character
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Persichetti, Maria Flaminia, Viviana Giangreco, Antonio Gentile, Tiziana Lupo, Gabriele Ciaccio, and Santo Caracappa. "Molecular barcoding applied to the Mediterranean turtles biological matrices (Reptilia Cheloniidae)." Biodiversity Journal 10, no. 4 (2019): 457–61. http://dx.doi.org/10.31396/biodiv.jour.2019.10.4.457.461.

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Werneck, M. R., and R. J. Silva. "Helminth Parasites of Juvenile Green TurtlesChelonia mydas(Testudines: Cheloniidae) in Brazil." Journal of Parasitology 101, no. 6 (2015): 713–16. http://dx.doi.org/10.1645/15-780.

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Zvonok, E. A., E. V. Syromyatnikova, I. G. Danilov, and A. F. Bannikov. "A Sea Turtle (Cheloniidae) from the Middle Eocene of North Caucasus." Paleontological Journal 53, no. 5 (2019): 530–39. http://dx.doi.org/10.1134/s0031030119050137.

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Zvonok, E. A., K. S. Benitskiy, and I. G. Danilov. "A Sea Turtle <i>Tasbacka aldabergeni</i> Nessov, 1987 from the Lower Paleogene Deposits of the Kudinovka Locality (Rostov Province, Russia)." Палеонтологический журнал, no. 2 (March 1, 2023): 100–114. http://dx.doi.org/10.31857/s0031031x23020149.

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The article describes fossil remains of turtles from the Kudinovka locality (Paleogene, Paleocene or Ypresian; Millerovo District, Rostov Province, Russia). These remains, represented by 16 specimens, are referred to the sea turtle Tasbacka aldabergeni Nessov, 1987 (Cheloniidae), previously reliably known only from the type locality Zhylga 1 (Paleogene, Late Thanetian–Early Ypresian; southern Kazakhstan). One of the described specimens represents the most part of the postcranial skeleton in the phosphate nodule and appears to be the most complete postcranial specimen of Tasbacka aldabergeni, w
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Ehrenfeld, David, B. Groombridge, and R. Luxmoore. "The Green Turtle and Hawksbill (Reptilia: Cheloniidae): World Status, Exploitation and Trade." Copeia 1990, no. 3 (1990): 898. http://dx.doi.org/10.2307/1446466.

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Werneck, M. R., E. H. S. M. Lima, T. Pires, and R. J. Silva. "Helminth Parasites of the Juvenile Hawksbill TurtleEretmochelys imbricata(Testudines: Cheloniidae) in Brazil." Journal of Parasitology 101, no. 4 (2015): 500–503. http://dx.doi.org/10.1645/13-479.1.

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Melo, Luana Félix De, Ana Clara Bastos Rodrigues, Marisol León Cabrera, et al. "Analysis of the Green Turtle Esophagus Chelonia Mydas (Linnaeus, 1758), Testudines, Cheloniidae." International Journal of Morphology 37, no. 4 (2019): 1391–96. http://dx.doi.org/10.4067/s0717-95022019000401391.

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da Silva Mendes, Sarah, Robson Henrique de Carvalho, Adriana Fonseca de Faria, and Bernadete Maria de Sousa. "Marine debris ingestion by Chelonia mydas (Testudines: Cheloniidae) on the Brazilian coast." Marine Pollution Bulletin 92, no. 1-2 (2015): 8–10. http://dx.doi.org/10.1016/j.marpolbul.2015.01.010.

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Devin, Mehran Loghmani, Ahmad Savari, and Parvin Sadeghi. "Nesting of Hawksbill Turtle,Eretmochelys imbricataLinnaeus, 1766, on Hormoz Island, Iran (Cheloniidae)." Zoology in the Middle East 45, no. 1 (2008): 111–14. http://dx.doi.org/10.1080/09397140.2008.10638316.

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Fitzgerald, Erich M. G., and Lesley Kool. "The first fossil sea turtles (Testudines: Cheloniidae) from the Cenozoic of Australia." Alcheringa: An Australasian Journal of Palaeontology 39, no. 1 (2014): 142–48. http://dx.doi.org/10.1080/03115518.2015.964047.

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Conceição, M. B., J. A. Levy, L. F. Marins, and M. A. Marcovaldi. "Electrophoretic characterization of a hybrid between Eretmochelys imbricata and Caretta caretta (Cheloniidae)." Comparative Biochemistry and Physiology Part B: Comparative Biochemistry 97, no. 2 (1990): 275–78. http://dx.doi.org/10.1016/0305-0491(90)90280-7.

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Setiawan, Ari, Siti Rohmah, Basuki Rachmad, and Awaludin Syamsuddin. "IDENTIFIKASI DAN STUDI KARAKTERISTIK BIOFISIK HABITAT PENELURAN PENYU (Cheloniidae) DI JAWA BARAT." Jurnal Marshela (Marine and Fisheries Tropical Applied Journal) 1, no. 2 (2023): 73–87. http://dx.doi.org/10.25181/marshela.v1i2.3269.

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Penyu Hijau (Chelonia mydas) adalah reptil laut yang terancam punah karena nilai ekonominya yang tinggi. Informasi tentang karakteristik biologi dan fisika pantai peneluran penyu hijau (Chelonia mydas) sangat dibutuhkan dalam pengelolaan kawasan konservasi. Tujuan penelitian untuk mengetahui klasifikasi dan morfologi penyu, karakteristik pantai, karakteristik sarang, faktor penurunan populasi penyu, hatching rate, survival rate dan masa inkubasi. Lokasi penelitian adalah tiga kabupaten di Provinsi Jawa Barat pada bulan September hingga Oktober 2019. Berdasarkan hasil penelitian penyu yang dite
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40

Myrvold, Kristine Steigardotter, Jesper Milàn, and Jan Audun Rasmussen. "Two new finds of turtle remains from the Danian and Selandian (Paleocene) deposits of Denmark with evidence of predation by crocodilians and sharks." Bulletin of the Geological Society of Denmark 66 (October 4, 2018): 211–18. http://dx.doi.org/10.37570/bgsd-2018-66-11.

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Two new fragments of a turtle carapace and a turtle plastron (hypoplastron) have been recovered from glacially transported boulders of Danian and Selandian age. The hypoplastron is identified as Ctenochelys cf. stenoporus, while the carapace fragment can only be assigned to the family Cheloniidae indet. Both specimens show evidence of predation by crocodilians in the form of rows of circular pits in the bones, and one specimen has rows of elongated scrape traces interpreted as scavenging by sharks. Together with the other, rare finds from the middle Danian of the Faxe Quarry and from late Dani
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Dimarca, Angelo, Vincenzo Billeci, Giulia Casamento, et al. "Protected Natural Areas and sustainable use: the Spiaggia dei Conigli in the “Lampedusa Island” Nature Reserve (Agrigento, Sicily, Italy)." Biodiversity Journal 15, no. 2 (2024): 163–68. http://dx.doi.org/10.31396/biodiv.jour.2024.15.2.163.168.

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The Spiaggia dei Conigli, falling within the “Isola di Lampedusa” Nature Reserve (Agrigento, Sicily, Italy) is of great naturalistic interest due to the presence of various habitats of community importance and as a regular oviposition site of sea turtle Caretta caretta (Linnaeus, 1758) (Reptilia Cheloniidae). Since its establishment, the Nature Reserve has activated numerous conservation and protection interventions and actions, renaturalization and re-orientation of seaside use, becoming a concrete example of integration between nature protection and territorial promotion. Over the last three
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Machado, Caroline Regina Dias, Camila Domit, Marcela Baer Pucci, et al. "Citogenética comparativa em tartarugas marinhas da família Cheloniidae (Reptilia: Testudines): diversificação cariotípica microestrutural." Semina: Ciências Biológicas e da Saúde 38, no. 1supl (2018): 130. http://dx.doi.org/10.5433/1679-0367.2017v38n1suplp130.

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As tartarugas marinhas representam um componente primitivo e singular da diversidade biológica. Neste momento evolutivo são reconhecidas sete espécies de tartarugas marinhas no mundo, sendo que cinco delas ocorrem no litoral brasileiro, as quais são: Dermochelys coriacea, Caretta caretta, Chelonia mydas, Eretmochelys imbricata e Lepidochelys olivacea, sendo as três últimas alvo desse estudo. Em tartarugas marinhas a identificação de sequências repetitivas e métodos de citogenética molecular são inexistentes, as análises cromossômicas destas espécies está limitada a descrição do número diploide
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Rosano Hernández, María C., and Cuauhtémoc Deloya. "INTERACCIÓN ENTRE TROGIDOS (COLEOPTERA: TROGIDAE) Y TORTUGAS MARINAS (REPTILIA: CHELONIIDAE) EN EL PACIFICO MEXICANO." ACTA ZOOLÓGICA MEXICANA (N.S.), no. 87 (December 17, 2002): 29–46. http://dx.doi.org/10.21829/azm.2002.87871799.

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Desde 1987 a 2000 se ha reportado gran mortalidad (&gt;70%) de tortugas marinas del género Lepidochelys en la playa La Escobilla, en Oaxaca, México. Aunque la causa de tal mortalidad se debe a factores diversos, algunos autores la atribuyen mayormente a la depredación de embriones y crías que hace un escarabajo de la familia Trogidae. La revisión taxonómica confirmó que el escarabajo presente en La Escobilla es Omorgus suberosus Fabricius. Este escarabajo habita también otras playas de anidación de tortugas marinas del Pacífico, pero no del Atlántico. El presente trabajo, basado en la revisión
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Camillo, Cássia Santos, Renato de Mei Romero, Luciano Gerolim Leone, Renata Lucia Guedes Batista, Raquel Sá Velozo, and Sérgio Luiz Gama Nogueira-Filho. "Características da reprodução de tartarugas marinhas (Testudines, Cheloniidae) no litoral sul da Bahia, Brasil." Biota Neotropica 9, no. 2 (2009): 131–37. http://dx.doi.org/10.1590/s1676-06032009000200013.

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Poucos estudos foram realizados sobre a nidificação de tartarugas marinhas no litoral sul da Bahia, região que está passando por um processo rápido de ocupação turística que pode ameaçar ainda mais estas espécies. Por estes motivos, este estudo teve como objetivos identificar as espécies de tartarugas marinhas que desovam no local e descrever as principais características de suas ninhadas. Durante quatro temporadas reprodutivas, de 2004 a 2008, foram identificados e monitorados os ninhos encontrados nas praias localizadas entre Uruçuca e Itacaré no litoral sul da Bahia. As variáveis coletadas
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Jerdy, H., R. B. Ribeiro, M. A. Silva, R. M. Medina, M. R. Werneck, and E. C. Q. Carvalho. "Spirorchiid Infection in Olive Ridley Turtle,Lepidochelys olivacea(Eschscholtz, 1829) (Testudines: Cheloniidae), from Brazil." Journal of Parasitology 102, no. 2 (2016): 290–92. http://dx.doi.org/10.1645/15-801.

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Seminoff, Jeffrey A., Wallace J. Nichols, Antonio Resendiz, and Louise Brooks. "Occurrence of Hawksbill Turtles, Eretmochelys imbricata (Reptilia: Cheloniidae), near the Baja California Peninsula, Mexico." Pacific Science 57, no. 1 (2003): 9–16. http://dx.doi.org/10.1353/psc.2003.0008.

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Hirayama, Ren, and Haiyan Tong. "Osteopygis (Testudines: Cheloniidae) from the Lower Tertiary of the Ouled Abdoun phosphate basin, Morocco." Palaeontology 46, no. 5 (2003): 845–56. http://dx.doi.org/10.1111/1475-4983.00322.

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Hewavisenthi, Suhashini, and C. John Parmenter. "Hydric environment and sex determination in the flatback turtle (Natator depressus Garman) (Chelonia : Cheloniidae)." Australian Journal of Zoology 48, no. 6 (2000): 653. http://dx.doi.org/10.1071/zo00049.

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Eggs of Natator depressus (from eastern Queensland, Australia) were incubated at a constant temperature of 29.5˚C on vermiculite substrate with three different moisture levels: wet (~–180 kPa), intermediate (~–1200 kPa) and dry (~–2000 kPa). The male : female ratios on wet, intermediate and dry substrates were 8 : 7, 5 : 5 and 5 : 8 respectively. Sex determination was not influenced by the hydric environment but was significantly affected by different clutches. A clutch with smaller eggs appeared to produce a higher proportion of females. The pivotal temperature was close to 29.5˚C, with a pos
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Kim, Il-Hun, Chang-Ho Yi, Dong-Jin Han, et al. "First record of the hawksbill turtle (Eretmochelys imbricata, Reptilia: Testudines: Cheloniidae) from South Korea." Journal of Asia-Pacific Biodiversity 13, no. 2 (2020): 151–55. http://dx.doi.org/10.1016/j.japb.2020.02.006.

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Karaa, Sami, Sondes Marouani, Hasna Kadri, Mohamed Nejmeddine Bradaï, and Imed Jribi. "Diet composition of Caretta caretta (Testudines: Cheloniidae) in the Gulf of Gabès, southern Tunisia." Phyllomedusa: Journal of Herpetology 24, no. 1 (2025): 3–23. https://doi.org/10.11606/issn.2316-9079.v24i1p3-23.

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A investigação de aspectos biológicos fundamentais, como os hábitos alimentares de animais marinhos migratórios de longa distância, como as tartarugas marinhas, apresenta desafios signifi­cativos. Esses estudos são essenciais para identificar os locais de alimentação e as presas preferidas desses quelônios, fornecendo assim informações valiosas para embasar decisões de proteção do habitat. Analisamos o conteúdo do tubo digestivo de 132 espécimes de Caretta caretta encalhadas e/ou capturadas acidentalmente ao longo da costa do Golfo de Gabès, de 2004 a 2010. Os itens alimentares foram analisado
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