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1

Walden, Michael, and Mark A. Mitchell. "Pathogenesis of Isospora amphiboluri in Bearded Dragons (Pogona vitticeps)." Animals 11, no. 2 (February 8, 2021): 438. http://dx.doi.org/10.3390/ani11020438.

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Isospora amphiboluri is a common coccidian found in captive bearded dragons (Pogona vitticeps). To minimize the impact of this parasite, it is important to characterize its pathogenesis so that we can develop appropriate methods for diagnosis and treatment. Forty-five juvenile bearded dragons were used for this two-part study. In the first part, ten bearded dragons were infected with 20,000 oocysts per os, while a control group of five animals received only water. Feces were collected over 45 days and screened for oocysts. In the second part, thirty bearded dragons were used to characterize th
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2

Chang, Wei-Shan, Ci-Xiu Li, Jane Hall, John-Sebastian Eden, Timothy H. Hyndman, Edward C. Holmes, and Karrie Rose. "Meta-Transcriptomic Discovery of a Divergent Circovirus and a Chaphamaparvovirus in Captive Reptiles with Proliferative Respiratory Syndrome." Viruses 12, no. 10 (September 25, 2020): 1073. http://dx.doi.org/10.3390/v12101073.

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Viral pathogens are being increasingly described in association with mass morbidity and mortality events in reptiles. However, our knowledge of reptile viruses remains limited. Herein, we describe the meta-transcriptomic investigation of a mass morbidity and mortality event in a colony of central bearded dragons (Pogona vitticeps) in 2014. Severe, extensive proliferation of the respiratory epithelium was consistently found in affected dragons. Similar proliferative lung lesions were identified in bearded dragons from the same colony in 2020 in association with increased intermittent mortality.
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3

Plothe, Theo. "Bearded Dragons at Play." Exchanges: The Interdisciplinary Research Journal 7, no. 3 (June 24, 2020): 1–13. http://dx.doi.org/10.31273/eirj.v7i3.523.

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Animals have long appeared as the subjects and characters in digital games, but game studies scholars have rarely considered animals as players of digital games. This paper examines the mobile digital game Ant Smasher and YouTube videos of bearded dragons playing the game. This article advocates for the inclusion of these bearded dragons in gamerspace as not only a personification of the gamer within the space but as a conduit for play, a channel for gamers to breach the boundaries of gamerspace – the cultural and discursive space surrounding digital games that negotiates the relationship betw
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4

Knotek, Z. "Induction to inhalation anaesthesia in agamid lizards with alfaxalone." Veterinární Medicína 62, No. 1 (January 27, 2017): 41–43. http://dx.doi.org/10.17221/91/2016-vetmed.

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The aim of this study was to evaluate intravenous anaesthesia with alfaxalone for tracheal tube insertion in three species of agamid lizards. Alfaxalone, at a dose rate of 5 mg/kg, was administered intravenously to 80 inland bearded dragons (Pogona vitticeps), 10 Rankin’s dragons (Pogona henrylawsoni) and 10 Chinese water dragons (Physignathus cocincinus) following 24 h of fasting. The righting reflex in inland bearded dragons, Rankin’s dragons and Chinese water dragons was lost within 12–45 s (17.52 ± 8.80 s), 15–40 s (24.60 ± 9.61 s) and 12–40 s (21.70 ± 9.53 s), respectively. The mean trach
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5

Schmidt-Ukaj, S., M. Hochleithner, B. Richter, C. Hochleithner, D. Brandstetter, and Z. Knotek. "A survey of diseases in captive bearded dragons: a retrospective study of 529 patients." Veterinární Medicína 62, No. 9 (September 20, 2017): 508–15. http://dx.doi.org/10.17221/162/2016-vetmed.

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The aim of this clinical retrospective study was to analyse the prevalence of common disorders in 529 captive bearded dragons that were presented to three exotic animal clinics in Central Europe (Austria and Czech Republic) over a period of three years. A diagnosis was made on the basis of the presenting clinical signs and physical examination in 30.8% of the cases, whereas various additional diagnostic tests were performed in the other cases (69.2%). These included diagnostic imaging (radiography, ultrasound and computed tomography), examination of faecal samples for the presence of parasites
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6

Rowland, Mark. "Veterinary care of bearded dragons." In Practice 31, no. 10 (November 2009): 506–11. http://dx.doi.org/10.1136/inpract.31.10.506.

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7

Barboza, Trinita K., Leonardo Susta, Alex zur Linden, Sara Gardhouse, and Hugues Beaufrère. "Association of plasma metabolites and diagnostic imaging findings with hepatic lipidosis in bearded dragons (Pogona vitticeps) and effects of gemfibrozil therapy." PLOS ONE 18, no. 2 (February 3, 2023): e0274060. http://dx.doi.org/10.1371/journal.pone.0274060.

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Objectives To evaluate the association between plasma metabolites, biochemical analytes, diagnostic imaging findings, and the histologic diagnosis of hepatic lipidosis in bearded dragons. To assess the effects of gemfibrozil therapy on hepatic lipid accumulation and associated diagnostic tests. Animals Fourteen bearded dragons (Pogona vitticeps) with varying severity of hepatic lipid accumulation (with and without hepatic lipidosis) were included. Procedures Animals underwent coelomic ultrasound, computed tomography (CT) scans, and coelioscopic hepatic biopsies. Clinical pathology tests includ
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8

Wünschmann, Arno, Aníbal G. Armién, April L. Childress, James F. X. Wellehan, and Federico Giannitti. "Intrapericardial Encephalitozoon pogonae–associated arteritis with fatal hemopericardium in two juvenile central bearded dragons." Journal of Veterinary Diagnostic Investigation 31, no. 3 (February 22, 2019): 467–70. http://dx.doi.org/10.1177/1040638719834330.

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Two male juvenile central bearded dragons ( Pogona vitticeps) were submitted for postmortem examination after dying at their respective homes. Dragon 1 had marked hemopericardium with restrictive epicarditis. The inner aspect of the distended pericardial sac was lined by a fibrinoheterophilic membrane. In addition, granulomas abutted the testes. Dragon 2 had acute hemopericardium and granulomatous arteritis of the great vessels exiting the heart. Histologically, both animals had granulomatous arteritis of the large arteries with intrahistiocytic gram-positive, slightly elongated, up to 2 μm lo
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9

KADEKARU, Sho, Tetsuya SUZUKI, and Yumi UNE. "Gastric Carcinoid in Three Bearded Dragons." Journal of the Japan Veterinary Medical Association 63, no. 12 (2010): 945–49. http://dx.doi.org/10.12935/jvma.63.945.

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10

Bucy, Daniel S., David Sanchez-Migallon Guzman, and Allison L. Zwingenberger. "Ultrasonographic anatomy of bearded dragons (Pogona vitticeps)." Journal of the American Veterinary Medical Association 246, no. 8 (April 15, 2015): 868–76. http://dx.doi.org/10.2460/javma.246.8.868.

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11

Knight, Kathryn. "Bearded dragons colour match their home territory." Journal of Experimental Biology 220, no. 6 (March 15, 2017): 954. http://dx.doi.org/10.1242/jeb.158667.

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12

Johnston, Sonya D., Sandra Orgeig, Olga V. Lopatko, and Christopher B. Daniels. "Development of the pulmonary surfactant system in two oviparous vertebrates." American Journal of Physiology-Regulatory, Integrative and Comparative Physiology 278, no. 2 (February 1, 2000): R486—R493. http://dx.doi.org/10.1152/ajpregu.2000.278.2.r486.

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In birds and oviparous reptiles, hatching is often a lengthy and exhausting process, which commences with pipping followed by lung clearance and pulmonary ventilation. We examined the composition of pulmonary surfactant in the developing lungs of the chicken, Gallus gallus, and of the bearded dragon, Pogona vitticeps. Lung tissue was collected from chicken embryos at days 14, 16, 18 (prepipped), and 20(postpipped) of incubation and from 1 day and 3 wk posthatch and adult animals. In chickens, surfactant protein A mRNA was detected using Northern blot analysis in lung tissue at all stages sampl
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13

Monahan, Colleen F., Anne Meyer, Michael M. Garner, and Matti Kiupel. "Gross, histologic, and immunohistochemical characteristics of cutaneous chromatophoromas in captive bearded dragons." Journal of Veterinary Diagnostic Investigation 33, no. 5 (July 2, 2021): 932–38. http://dx.doi.org/10.1177/10406387211025651.

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Chromatophoromas are neoplasms that develop from the dermal pigment-bearing and light-reflecting cells (chromatophores) in the skin of reptiles, fish, and amphibians. Seventeen cutaneous chromatophoromas were identified from 851 bearded dragon submissions (2%) to a private diagnostic laboratory in a 15-y period. No sex predilection was found. Ages ranged from 9 mo to 11 y. Chromatophoromas most commonly were single, raised, variably pigmented masses or pigmented scales on the trunk, and less commonly the extremities or head. Microscopically, iridophoromas, melanophoromas, mixed chromatophoroma
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14

Hepps Keeney, Caitlin M., Joanne L. Intile, Cory S. Sims, and Tara M. Harrison. "Lymphoid leukemia in five bearded dragons (Pogona vitticeps)." Journal of the American Veterinary Medical Association 258, no. 7 (April 1, 2021): 748–57. http://dx.doi.org/10.2460/javma.258.7.748.

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15

Oldfield, Clare Louise. "Bearded Dragons: common husbandry and nutrition-related problems." Veterinary Nursing Journal 29, no. 11 (November 2014): 354–57. http://dx.doi.org/10.1111/vnj.12190.

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16

Ritter, J. M., M. M. Garner, J. A. Chilton, E. R. Jacobson, and M. Kiupel. "Gastric Neuroendocrine Carcinomas in Bearded Dragons (Pogona vitticeps)." Veterinary Pathology 46, no. 6 (July 15, 2009): 1109–16. http://dx.doi.org/10.1354/vp.09-vp-0019-k-fl.

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17

Black, Ian R. G., and Glenn J. Tattersall. "Thermoregulatory behavior and orientation preference in bearded dragons." Journal of Thermal Biology 69 (October 2017): 171–77. http://dx.doi.org/10.1016/j.jtherbio.2017.07.009.

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18

Richter, B., J. Csokai, I. Graner, T. Eisenberg, N. Pantchev, H. U. Eskens, and N. Nedorost. "Encephalitozoonosis in Two Inland Bearded Dragons (Pogona vitticeps)." Journal of Comparative Pathology 148, no. 2-3 (February 2013): 278–82. http://dx.doi.org/10.1016/j.jcpa.2012.05.009.

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19

Grosset, Claire, James F. X. Wellehan, Sean D. Owens, Sabrina McGraw, Patricia M. Gaffney, Janet Foley, April L. Childress, et al. "Intraerythrocytic iridovirus in central bearded dragons (Pogona vitticeps)." Journal of Veterinary Diagnostic Investigation 26, no. 3 (May 2014): 354–64. http://dx.doi.org/10.1177/1040638714534851.

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20

Kim, Dae Young, Mark A. Mitchell, Rudy W. Bauer, Rob Poston, and Doo-Youn Cho. "An Outbreak of Adenoviral Infection in Inland Bearded Dragons (Pogona Vitticeps) Coinfected with Dependovirus and Coccidial Protozoa (Isospora Sp.)." Journal of Veterinary Diagnostic Investigation 14, no. 4 (July 2002): 332–34. http://dx.doi.org/10.1177/104063870201400411.

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Thirty of 200 (15%) hatchling inland bearded dragons were found dead after a short period (48 hours) of weakness and lethargy. The most common clinical signs were head tilt and circling. Six bearded dragons with neurological signs were euthanized, and postmortem examination revealed no gross abnormalities. Microscopically, severe, randomly distributed hepatocellular necrosis with large basophilic intranuclear inclusion bodies in numerous hepatocytes was noted. Small-intestinal enterocytes contained intracytoplasmic coccidial protozoa ( Isospora sp.) and occasional enterocytes had basophilic in
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21

Stockley, Victoria R., Anna Wilkinson, and Oliver H. P. Burman. "How to Handle Your Dragon: Does Handling Duration Affect the Behaviour of Bearded Dragons (Pogona Vitticeps)?" Animals 10, no. 11 (November 15, 2020): 2116. http://dx.doi.org/10.3390/ani10112116.

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Reptiles are popular as pets and it is, therefore, important to understand how different aspects of housing and husbandry impact on their behaviour and welfare. One potential cause of stress in captive reptiles is interaction with humans; in particular, the effect of handling. However, little research on handling has been carried out with reptiles, particularly relating to the type of gentle handling likely to be experienced by pet animals. The aim of this study was therefore to determine whether the amount of time that bearded dragons (Pogona vitticeps), a commonly kept pet species, experienc
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22

Renfert, Kevin, Wolfgang Rabsch, Angelika Fruth, Stephanie Speck, and Michael Pees. "The use of a salmonella bacteriophage in bearded dragons: application, passage time and reisolation." Tierärztliche Praxis Ausgabe K: Kleintiere / Heimtiere 47, no. 04 (August 2019): 247–56. http://dx.doi.org/10.1055/a-0959-5528.

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Abstract Objective This study determined the passage time and phage propagation time of a salmonella specific phage, Felix O1, in bearded dragons, based on reisolation from cloacal swabs and faecal samples following oral administration, as a possible tool for reducing the zoonotic risk of salmonella from pet reptiles. An application scheme for this phage in bearded dragons was developed. Material and methods Ten healthy bearded dragons (Pogona vitticeps) were used in the study. The pH tolerance of the phage was tested and drugs were used to evaluate their influence on the gastric pH of the rep
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23

LaDouceur, Elise EB, Alexandria Argue, and Michael M. Garner. "Alimentary Tract Neoplasia in Captive Bearded Dragons (Pogona spp)." Journal of Comparative Pathology 194 (June 2022): 28–33. http://dx.doi.org/10.1016/j.jcpa.2022.03.007.

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24

Hannon, David E., Michael M. Garner, and Drury R. Reavill. "Squamous Cell Carcinomas in Inland Bearded Dragons (Pogona vitticeps)." Journal of Herpetological Medicine and Surgery 21, no. 4 (December 1, 2011): 101. http://dx.doi.org/10.5818/1529-9651-21.4.101.

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25

FROHNWIESER, Anna, Thomas W. PIKE, John C. MURRAY, and Anna WILKINSON. "Perception of artificial conspecifics by bearded dragons ( Pogona vitticeps )." Integrative Zoology 14, no. 2 (March 2019): 214–22. http://dx.doi.org/10.1111/1749-4877.12303.

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26

Ferreira, Tatiana H., and Christoph Mans. "Evaluation of neuraxial anesthesia in bearded dragons (Pogona vitticeps)." Veterinary Anaesthesia and Analgesia 46, no. 1 (January 2019): 126–34. http://dx.doi.org/10.1016/j.vaa.2018.09.001.

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27

HELLEBUYCK, T., A. MARTEL, K. CHIERS, F. HAESEBROUCK, and F. PASMANS. "Devriesea agamarum causes dermatitis in bearded dragons (Pogona vitticeps)." Veterinary Microbiology 134, no. 3-4 (March 2, 2009): 267–71. http://dx.doi.org/10.1016/j.vetmic.2008.08.021.

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28

Hyndman, Timothy H., Jonathon G. Howard, and Robert JT Doneley. "Adenoviruses in free-ranging Australian bearded dragons (Pogona spp.)." Veterinary Microbiology 234 (July 2019): 72–76. http://dx.doi.org/10.1016/j.vetmic.2019.05.014.

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29

Khan, Jameel J., Jean M. L. Richardson, and Glenn J. Tattersall. "Thermoregulation and aggregation in neonatal bearded dragons (Pogona vitticeps)." Physiology & Behavior 100, no. 2 (May 2010): 180–86. http://dx.doi.org/10.1016/j.physbeh.2010.02.019.

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30

Jakab, Csaba, Miklós Rusvai, Zoltán Szabó, Péter Gálfi, Miklós Marosán, Janina Kulka, and János Gál. "Claudin-7-positive synchronous spontaneous intrahepatic cholangiocarcinoma, adenocarcinoma and adenomas of the gallbladder in a Bearded dragon (Pogona vitticeps)." Acta Veterinaria Hungarica 59, no. 1 (March 1, 2011): 99–112. http://dx.doi.org/10.1556/avet.59.2011.1.9.

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In this study, synchronous spontaneous, independent liver and gallbladder tumours were detected in a Bearded dragon (Pogona vitticeps). The multiple tumours consisted of intrahepatic cholangiocarcinoma as well as in situ adenocarcinoma and two adenomas of the gallbladder. The biliary epithelial cells and the cholangiocarcinoma showed membranous cross-immunoreactivity for claudin-7. The gallbladder epithelial cells, its adenoma and adenocarcinoma showed basolateral cross-reactivity for claudin-7. We think that the humanised anti-claudin-7 antibody is a good marker for the detection of different
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31

Gimmel, A., H. Kempf, S. Öfner, D. Müller, and A. Liesegang. "Cholelithiasis in adult bearded dragons: retrospective study of nine adult bearded dragons (Pogona vitticeps) with cholelithiasis between 2013 and 2015 in southern Germany." Journal of Animal Physiology and Animal Nutrition 101 (June 2017): 122–26. http://dx.doi.org/10.1111/jpn.12616.

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32

Stahl, Scott J. "General Husbandry and Captive Propagation of Bearded Dragons, Pogona vitticeps." Bulletin of the Association of Reptilian and Amphibian Veterinarians 9, no. 4 (January 1999): 12–17. http://dx.doi.org/10.5818/1076-3139.9.4.12.

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33

Christiansen, Emily F., Michael K. Stoskopf, and Craig A. Harms. "Pre- and Post-Surgical Evaluation of Bearded Dragons Undergoing Sterilization." Journal of Herpetological Medicine and Surgery 23, no. 3 (September 1, 2013): 83. http://dx.doi.org/10.5818/1529-9651-23.3.83.

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34

Rooney, Tess, Alexandra K. Ford, Brandon L. Plattner, Margaret A. Highland, and David Eshar. "Pax5 and CD3 immunophenotyping of lymphoma in 2 central bearded dragons." Journal of Veterinary Diagnostic Investigation 34, no. 2 (March 2022): 258–62. http://dx.doi.org/10.1177/10406387221078608.

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Two central bearded dragons ( Pogona vitticeps), a 3-y-old male and a 5-y-old female, were diagnosed with different manifestations of lymphoma at the Kansas State Veterinary Diagnostic Laboratory between 2019 and 2020. The 3-y-old male was presented for postmortem evaluation and was in poor body condition. Microscopically, nearly all examined organs contained variable numbers of neoplastic round cells. Neoplastic cells in the stomach and liver had moderate immunoreactivity to CD3 consistent with multicentric T-cell lymphoma, and non-neoplastic lymphocytes infiltrating the stomach mass had stro
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35

Ferreira, Tatiana H., Dustin M. Fink, and Christoph Mans. "Evaluation of neuraxial administration of bupivacaine in bearded dragons (Pogona vitticeps)." Veterinary Anaesthesia and Analgesia 48, no. 5 (September 2021): 798–803. http://dx.doi.org/10.1016/j.vaa.2021.06.012.

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36

Frohnwieser, A., T. W. Pike, J. C. Murray, and A. Wilkinson. "Lateralized Eye Use Towards Video Stimuli in Bearded Dragons (Pogona vitticeps)." Animal Behavior and Cognition 4, no. 3 (August 1, 2017): 340–48. http://dx.doi.org/10.26451/abc.04.03.11.2017.

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37

Tattersall, G. J. "Hypoxia progressively lowers thermal gaping thresholds in bearded dragons, Pogona vitticeps." Journal of Experimental Biology 208, no. 17 (September 1, 2005): 3321–30. http://dx.doi.org/10.1242/jeb.01773.

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38

Hedley, J., K. Eatwell, and L. Hume. "Necrotising fungal dermatitis in a group of bearded dragons (Pogona vitticeps)." Veterinary Record 166, no. 15 (April 10, 2010): 464–65. http://dx.doi.org/10.1136/vr.b4816.

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39

Oonincx, D. G. A. B., J. P. van Leeuwen, W. H. Hendriks, and A. F. B. van der Poel. "The diet of free-roaming Australian Central Bearded Dragons (Pogona vitticeps)." Zoo Biology 34, no. 3 (March 12, 2015): 271–77. http://dx.doi.org/10.1002/zoo.21209.

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40

Li, Hong, Clare E. Holleley, Melanie Elphick, Arthur Georges, and Richard Shine. "The behavioural consequences of sex reversal in dragons." Proceedings of the Royal Society B: Biological Sciences 283, no. 1832 (June 15, 2016): 20160217. http://dx.doi.org/10.1098/rspb.2016.0217.

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Sex differences in morphology, physiology, and behaviour are caused by sex-linked genes, as well as by circulating sex-steroid levels. Thus, a shift from genotypic to environmental sex determination may create an organism that exhibits a mixture of male-like and female-like traits. We studied a lizard species (Central Bearded Dragon, Pogona vitticeps ), in which the high-temperature incubation of eggs transforms genetically male individuals into functional females. Although they are reproductively female, sex-reversed dragons (individuals with ZZ genotype reversed to female phenotype) resemble
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41

Howard, JG, and S. Jaensch. "Haematology and plasma biochemistry reference intervals in wild bearded dragons ( Pogona vitticeps )." Australian Veterinary Journal 99, no. 6 (February 10, 2021): 236–41. http://dx.doi.org/10.1111/avj.13060.

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42

Sladky, Kurt K., Matthew E. Kinney, and Stephen M. Johnson. "Analgesic efficacy of butorphanol and morphine in bearded dragons and corn snakes." Journal of the American Veterinary Medical Association 233, no. 2 (July 15, 2008): 267–73. http://dx.doi.org/10.2460/javma.233.2.267.

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43

Grosset, Claire, Alain Villeneuve, Andreas Brieger, and Stéphane Lair. "Cryptosporidiosis in Juvenile Bearded Dragons (Pogona vitticeps): Effects of Treatment with Paromomycin." Journal of Herpetological Medicine and Surgery 21, no. 1 (March 1, 2011): 10. http://dx.doi.org/10.5818/1529-9651-21.1.10.

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44

Paoloni, Melissa C., Lisa M. Freeman, Gregory A. Mertz, and Moshen Meydani. "Glutathione Peroxidase Activity and Vitamin E Concentrations in Bearded Dragons, Pogona vitticeps." Journal of Herpetological Medicine and Surgery 10, no. 1 (January 2000): 21–25. http://dx.doi.org/10.5818/1529-9651.10.1.21.

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45

Doneley, RJT, KN Buckle, and L. Hulse. "Adenoviral infection in a collection of juvenile inland bearded dragons (Pogona vitticeps)." Australian Veterinary Journal 92, no. 1-2 (January 2014): 41–45. http://dx.doi.org/10.1111/avj.12136.

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46

McDermott, Colin T. "External coaptation for mandibular fractures in bearded dragons (Pogona vitticeps): 2 cases." Journal of Exotic Pet Medicine 36 (January 2021): 28–33. http://dx.doi.org/10.1053/j.jepm.2020.10.006.

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47

Couture, Émilie L., Beatriz P. Monteiro, Jessica Aymen, Eric Troncy, and Paulo V. Steagall. "Validation of a thermal threshold nociceptive model in bearded dragons (Pogona vitticeps)." Veterinary Anaesthesia and Analgesia 44, no. 3 (May 2017): 676–83. http://dx.doi.org/10.1016/j.vaa.2016.07.005.

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48

Schuster, Eva J., Julia Strueve, Michael J. Fehr, and Karina A. Mathes. "Measurement of intraocular pressure in healthy unanesthetized inland bearded dragons (Pogona vitticeps)." American Journal of Veterinary Research 76, no. 6 (June 2015): 494–99. http://dx.doi.org/10.2460/ajvr.76.6.494.

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49

Parkinson, Lily A., and Christoph Mans. "Effects of furosemide administration to water-deprived inland bearded dragons (Pogona vitticeps)." American Journal of Veterinary Research 79, no. 11 (November 2018): 1204–8. http://dx.doi.org/10.2460/ajvr.79.11.1204.

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TAMUKAI, Kenichi, and Yuko KANAZAWA. "Plasma Biochemistry Reference Values for Bearded Dragons Using the Dry Chemistry Method." Journal of the Japan Veterinary Medical Association 62, no. 7 (2009): 553–58. http://dx.doi.org/10.12935/jvma.62.553.

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