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Australian Journal of Zoology Australian Journal of Zoology Society
Evolutionary, molecular and comparative zoology
RESEARCH ARTICLE

Construction of a marsupial bacterial artificial chromosome library from the model Australian marsupial, the tammar wallaby (Macropus eugenii)

Natasha Sankovic A C E , Wayne Bawden B , John Martyn B , Jennifer A. M. Graves A and Kurt Zuelke B D
+ Author Affiliations
- Author Affiliations

A Comparative Genomics Group, Research School of Biological Sciences, Australian National University, Canberra, ACT 2601, Australia.

B Victorian Institute of Animal Science, Attwood, Vic. 3049, Australia.

C Present address: Department of Zoology, University of Melbourne, Parkville, Vic. 3010, Australia.

D Present address: Biotechnology and Germplasm Laboratory, USDA Agricultural Research Service, Beltsville, MD 20705, USA.

E Corresponding author. Email: sankovic@unimelb.edu.au

Australian Journal of Zoology 53(6) 389-393 https://doi.org/10.1071/ZO05033
Submitted: 24 June 2005  Accepted: 10 October 2005   Published: 6 January 2006

Abstract

With the accelerating recognition of the power of comparative genomics, there is now enormous interest in sequencing the genomes of a broad range of species. Marsupials diverged at an important evolutionary time. The model Australian marsupial, the tammar wallaby (Macropus eugenii), has long been a resource for biological and genetic studies of marsupials, and the availability of a bacterial artificial chromosome (BAC) library will be a valuable resource in these studies. A tammar wallaby BAC library was constructed using pRazorBAC vector. It contains 55 296 clones with an average insert size of 108 kb, representing 2.2 times coverage of the wallaby genome (based on an estimated 2.7 × 109 bp haploid genome size). The library was arrayed in 384-well plates, and spotted in duplicate onto nylon membranes. Screening these membranes has yielded clones containing 34 single-copy genes distributed over the genome, while it failed for only one gene. Each probe isolated 1–12 BAC clones and, to date, no chimeric clones have been found. This BAC library will constitute an invaluable resource for creating physical maps, positional cloning of genes and other sequences in the tammar wallaby, as well as comparative mapping studies in mammals.


Acknowledgments

We thank the Victorian Institute of Animal Science for financial assistance and instruction in the construction of the BAC library.


References

Bawden, W. , Martyn, J. , Webster, T. , Nguyen, N. , and Zuelke, K. (2000). Construction of a bovine Bacterial Artificial Chromosome (BAC) library from an elite Holstein bull utilising a modified BAC vector. Asian–Australasian Journal of Animal Science 13, 136.
Hope R., and Cooper D. W. (1990). Marsupial and monotreme breeding in wild and captive populations: towards a laboratory marsupial. In ‘Mammals from Pouches and Eggs: Genetics, Breeding and Evolution of Marsupials and Monotremes’. (Eds J. A. Graves, R. M. Hope and D. W. Cooper.) pp. 157–160. (CSIRO Publishing: Melbourne.)

Ioannou P., and de Jong P. (1996). In ‘Current Protocols In Human Genetics’. (Ed. N. Dracopoli.) pp. 5.15.1–5.15.24. (Wiley: New York.)

Kim, U. J. , Birren, B. W. , Slepak, T. , Mancino, V. , Boysen, C. , Kang, H. L. , Simon, M. I. , and Shizuya, H (1996). Construction and characterisation of a human bacterial artificial chromosome library. Genomics 34, 213–218.
Crossref | GoogleScholarGoogle Scholar | PubMed | Ross M. T., LaBrie S., McPherson J., and Stanton V. P. J. R. (1999). Screening large-insert libraries by hybridization. In ‘Current Protocols in Human Genetics’. (Ed. A. Boyl.) pp. 5.6.1–5.6.52. (Wiley: New York.)

Strong, S. J. , Ohta, Y. , Litman, G. W. , and Amemiya, C. T. (1997). Marked improvement of PAC and BAC cloning is achieved using electroelution of pulsed-field gel-separated partial digests of genomic DNA. Nucleic Acids Research 25, 3959–3961.
Crossref | GoogleScholarGoogle Scholar | PubMed |

Tyndale-Biscoe, C. H. , Hearn, J. P. , and Renfree, M. B. (1974). Control of reproduction in macropodid marsupials. Journal of Endocrinology 63, 589–614.
PubMed |

Wakefield, M. J. , and Graves, J. A. (2003). The kangaroo genome: leaps and bounds in comparative genomics. European Molecular Biology Organisation Reports 4, 143–147.


Woodburne, M. O. , Rich, T. H. , and Springer, M. S. (2003). The evolution of tribospheny and the antiquity of mammalian clades. Molecular and Phylogenetic Evolution 28, 360–385.
Crossref | GoogleScholarGoogle Scholar |