References

 

 
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The Genus Cyclorana
Aestivation Ecology
Water Loss During Aestivation
Effects to Muscle Structure
Effects to Skeletal Structure
Effects to Digestive System
Waste Collection
Arousal and Re-feeding
Other Information
References

Barker, J.S.F., Grigg, G., and Tyler, M. 1995. A field guide to Australian frogs. Surrey Beatty & Sons, 407

Bayomy, M.F.F., Shalan, A.G., Bradshaw, S.D., Withers, P.C., Stewart, T., and Thompson, G. (2002). Water content, body weight, and acid mucopolysaccharides, hyaluronidase and beta-glucuronidase in response to aestivation in Australian desert frogs. Comparative Biochemistry and Physiology Part A 131: 881-892

Cartledge, V.A., Withers, P.C., and Bradshaw, S.D. (2008). Water balance and arginine vasotocin in the cocooning frog Cyclorana platycephala (Hylidae). Physiological and Biochemical Zoology 81(1): 43-53

Cramp, R.L., Franklin, C.E., and Meyer, E.A. 2005. The impact of prolonged fasting during aestivation on the structure of the small intestine in the green-striped burrowing frog, Cyclorana alboguttata. Acta Zoologica 86:13-24

Cramp, R.L. and Franklin, C.E. 2003. Is re-feeding efficiency compromised by prolonged starvation during aestivation in the green striped burrowing frog, Cyclorana alboguttata? Journal of Experimental Zoology m300A: 126-132

Cramp, R.L. and Franklin, C.E. 2005. Arousal and re-feeding rapidly restores digestive tract morphology following aestivation in green-striped burrowing frogs. Comparative Biochemsitry and Physiology, Part A 142: 451-460

Hudson, N.J. and Franklin, C.E. 2002a. Effect of aestivation on muscle characteristics and locomotor performance in the Green-striped burrowing frog, Cyclorana alboguttata. Journal of Comparative Physiology, B 172: 177-182

Hudson, N.J. and Franklin, C.E. 2002b. Maintaining muscle mass during extended disuse: aestivating frogs as a model species. The Journal of Experimental Biology 205: 2297-2303

Hudson, N.J. and Franklin, C.E. 2003. Preservation of three-dimensional capillary structure in frog muscle during aestivation. Journal of Anatomy 202: 471-474

Hudson, N.J., Bennett, M.B., Franklin, C.E. 2004. Effect of aestivation on long bone mechanical properties in the green-striped burrowing frog, Cyclorana albuguttata. The Journal of Experimental Biology 207:475-482

Hudson, N.J., Lavidis, N.A., Choy, P.T., and Franklin, C.E. 2005. Effect of prolonged inactivity on skeletal motor nerve terminals during aestivation in the burrowing frog, Cyclorana albogutatta. Journal of Comparative Physiology A 191: 373-379

Hudson, N.J., Lehnert, S.A., Ingham, A.B., Symonds, B., Franklin, C.E., and Harper, G.S. 2006. Lessons from an estivating frog: sparing muscle protein despite starvation and disuse. American Journal of Physiology - Regulatory, Integrative, Comparative Physiology 290: R836-R843

Hudson, N.J., Harper, G.S., Allingham, P.G., Franklin, C.E., Barris, W., and Lehnert, S.A. 2007. Skeletal muscle extracellular matrix remodelling after aestivation in the green striped burrowing frog, Cyclorana alboguttata. Comparative Biochemistry and Physiology, Part A 146: 440-445

Lavidis, N.A., Hudson, N.J., Choy, P.T., Lehnert, S.A., Franklin, C.E. 2008. Role of calcium and vesicle-docking proteins in remobilising dormant neuromuscular junctions in desert frogs. Journal of Comparative Physiology A 194: 27-37

Starck, J.M. and Beese, K. 2001. Structural flexibility of the intestine of burmese python in response to feeding. The Journal of Experimental Biology 204: 325-335

Symonds, B., Franklin, C. James, R. 2007. Prolonged aestivation causes little change in skeletal muscle morphology or contractile performance in the anuran Cyclorana alboguttata. Comparative Biochemistry and Physiology, Part A 146: S107-S127

Symonds, B., James, R.S., and Franklin, C.E. 2007. Getting the jump on skeletal muscle disuse atrophy: preservation of contractile performance in aestivating Cyclorana alboguttata (Gunther 1867). The Journal of Experimental Biology 210: 825-835

Tracy, C.R., Reynoulds, S.J., McArthur, L., Tracy, C.R., and Christian, K.A. 2007. Ecology of aestivation in a cocoon-forming frog, Cyclorana Australis (Hylidae). Copeia 2007(4) 901-912

van Breukelen, F. and Martin, S. L. 2001. Translational initiation is uncoupled from elongation at 18°C during mammalian hibernation. American Journal of Physiology - Regulatory, Integrative, Comparative Physiology 281: R1374–R1379

Withers, P.C. 1993. Metabloic depression during aestivation in the Australian frogs, Neobatrachus and Cyclorana. Australian Journal of Zoology 41: 467-473

Withers, P.C. 1995. Cocoon formation and structure in the aestivating Australian desert frogs, Neobatrachus and Cyclorana. Australian Journal of Zoology 43: 429-441

Withers, P.C. 1998. Evaporative water loss and the role of cocoon formation in Australian frogs. Australian Journal of Zoology 46: 405-418

Withers, P.C. 1998. Urea: Diverse functions of a 'waste' product. Clinical and Experimental Pharmacology and Physiology 25: 722-727

Withers, P.C. and Guppy, M. 1996. Do Australian desert frogs co-accumulate counteracting solutes with urea during aestivation? The Journal of Experimental Biology 199:1809-1816

Withers, P.C. and Thompson, G.G. 2000. Cocoon formation and metabolic depression by the aestivating hylid frogs Cyclorana cultripes (Amphibia: Hylidae). Journal of the Royal Society of Western Australia 83: 39-40

 

 

 

 

 

 
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