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Vertebrate reproductive science and technology
RESEARCH ARTICLE

The development of a testosterone stimulation test in the Virginia opossum (Didelphis virginiana) and its use in evaluating deslorelin contraception

S. D. Johnston A D , F. C. Camacho B , L. Carrillo B , N. Guy A , J. Govea B , O. Martinez B , A. Parãs B , A. T. Lisle C and M. D’Occhio A
+ Author Affiliations
- Author Affiliations

A School of Animal Studies, The University of Queensland, Gatton, Queensland 4343, Australia.

B Africam Safari, Puebla 72960, Mexico.

C School of Agronomy and Horticulture, The University of Queensland, Gatton, Queensland 4343, Australia.

D Corresponding author. Email: s.johnston1@uq.edu.au

Reproduction, Fertility and Development 20(5) 563-569 https://doi.org/10.1071/RD07215
Submitted: 1 December 2007  Accepted: 4 March 2008   Published: 28 April 2008

Abstract

The aims of the present study were to examine the variability of testosterone secretion in the Virginia Opossum over a 24 h period and to develop a testosterone stimulation test that would provide an index of the prevailing testosterone biosynthetic capacity of the testes; the latter was used to clinically evaluate the efficacy of a gonadotrophin-releasing hormone agonist contraceptive. Sexually-mature captive opossums (n = 12) located in Africam Safari (Mexico) sampled every 12 h over 24 h consistently showed basal (<0.21 ng mL–1) blood testosterone concentrations. Intra-muscular injection of buserelin (2 μg mL–1) and human chorionic gonadotrophin (hCG; 1000 IU) resulted in an increase (P < 0.05) of plasma testosterone concentrations with maximal concentrations (3.9 ng mL–1 and 5.8 ng mL–1 respectively) occurring 120 min after injection. Plasma testosterone declined relatively rapidly to basal concentrations after 240 min with hCG but remained elevated after the same period of time with buserelin. Male opossums treated with (n = 6) and without (n = 6) a controlled-release deslorelin implant (Suprelorin; 4.7 mg deslorelin) were evaluated over a 10-week period for changes in testosterone secretion (hCG stimulation test) and sperm production (spermatorrhea). At the end of this period, the animals were hemi-castrated and their relative testicular quantitative histology compared. Testosterone concentration decreased over the course of the study in both treated and control animals (P < 0.0001) but there was no apparent effect of deslorelin on testosterone secretion, testicular histology (relative proportions of testicular cell types and seminiferous tubule diameter), or sperm production (presence of sperm in the cauda epididymis or urine)

Additional keywords: buserelin, GnRH, hCG, Suprelorin, testicular histology.


References

Allen, C. D. , McKinnon, A. J. , Lisle, A. T. , D’Occhio, M. J. , and Johnston, S. D. (2006). Testosterone secretion in the koala (Phascolarctos cinereus). J. Androl. 27, 720–724.
Crossref | GoogleScholarGoogle Scholar | PubMed | Asa C. S. (2005). Contraception choices. In ‘Wildlife Contraception – Issues, Methods and Applications’. (Eds C. Asa and I. Porton.) pp. 29–53. (The John Hopkins University Press: Baltimore.)

Barfield, J. P. , Nieschlag, E. , and Cooper, T. G. (2006). Fertility control in wildlife: humans as a model. Contraception 73, 6–22.
Crossref | GoogleScholarGoogle Scholar | PubMed | Handasyde K. A., McDonald I. R., Than K. A., Michaelides J., and Martin R. W. (1990). Reproductive hormones in the koala. In ‘Biology of the Koala’. (Eds A. K. Lee, K. A. Handasyde and G. D. Sanson.) pp. 203–210. (Surrey Beatty & Sons Pty Ltd.: Chipping North, New South Wales.)

Herbert C. A., Webley L. S., Trigg T. E., Francis K., Lunney D. H., and Cooper D. W. (2001). Preliminary trials of the GnRH superagonist deslorelin as a safe, long-acting and reversible contraceptive for koalas. Conference on the status of the koala in 2001. The National Koala Act, Canberra.

Herbert, C. A. , Trigg, T. E. , and Cooper, D. W. (2004a). Effect of deslorelin implant on follicular development, parturition and post-partum oestrus in the tammar wallaby. Reproduction 127, 265–273.
Crossref | GoogleScholarGoogle Scholar | PubMed | Salmon T., Whisson D., and Marsh R. (2005). ‘Opossum – Integrated Pest Management for Home Gardeners and Landscape Professionals.’ (University of California, IPM Education and Publications: California.)

Sundy, A. , and Torjesen, P. A. (1978). Plasma levels of testosterone in bulls. Response to repeated hCG injections. Acta Endocrinol. (Copenh.) 88, 787–792.
PubMed | Weibel E. R. (1979) ‘Stereological Methods. Vol.1. Practical Methods for Biological Morphometry.’ (Academic Press: London.)

Wildt D. E. (1996). Male reproduction: assessment management and control of fertility. In ‘Wild Mammals in Captivity – Principles and Techniques’. (Eds D. G. Kleiman, M. E. Allen, K. V. Thompson and S. Lumpkin.) pp. 429–450. (University of Chicago Press: Chicago.)

Woods, H. A. , and Hellgren, E. C. (2003). Seasonal changes in physiology of male Virginia opossums (Didelphis virginiana): signs of the dasyurid semelparity syndrome? Physiol. Biochem. Zool. 76, 406–417.
Crossref | GoogleScholarGoogle Scholar | PubMed |

Woodward, R. , Herberstein, M. E. , and Herbert, C. A. (2006). Fertility control in female eastern grey kangaroos using the GnRH agonist deslorelin. 2. Effects on behaviour. Wildl. Res. 33, 47–55.
Crossref | GoogleScholarGoogle Scholar |