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Application of The UV-Irradiated Homologous and Heterologous Sperm for Activa Tion of the Rainbow Trout (Oncorhynchus Mykiss) Eggs and Production of the Gynogenetic Stocks Cover

Application of The UV-Irradiated Homologous and Heterologous Sperm for Activa Tion of the Rainbow Trout (Oncorhynchus Mykiss) Eggs and Production of the Gynogenetic Stocks

Open Access
|Oct 2015

References

  1. Arai K. (2001). Genetic improvement of aquaculture finfish species by chromosome manipulation techniques in Japan. Aquaculture, 197: 205-228.
  2. Billard R. (1992). Reproduction in rainbow trout: sex differentiation, dynamics of gametogenesis, biology and preservation of gametes. Aquaculture, 100: 263-298.
  3. Chourrout D. (1984). Pressure-induced retention of second polar and suppression of first cleavage in rainbow trout. Production of all triploids, all tetraploids, and heterozygous and homozygous diploid gynogenesis. Aquaculture, 36: 111-126.
  4. Chourrout D. (1986). Use of grayling sperm (Thymallus thymallus) asamarker for the production of gynogenetic rainbow trout (Salmo gairdneri). Theor. Appl. Genet., 72: 633-636.
  5. Chourrout D., Quillet E. (1982). Induced gynogenesis in rainbow trout: Sex and survival of progenies. Production of all triploid populations. Theor. Appl. Genet., 63: 201-205.
  6. Dabrowski K., Rinchard J., Lin F., Garcia-Abiado M.A., Schmidt D. (2000). Induction of gynogenesis in muskellunge with irradiated sperm of yellow perch proves diploid muskellunge male homogamety. J. Exp. Zool., 287: 96-105.
  7. Donaldson E.M. (1996). Manipulation of reproduction in farmed fish. Anim. Reprod. Sci., 42: 381-392.
  8. Feist G., Yeoh C.G., Fitzpatrick M.S., Schreck C.B. (1995). The production of functional sex-reversed male rainbow trout with 17a-methyltestosterone and 11b-hydroxyandrostenedione. Aquaculture, 131: 145-152.
  9. Fujiwara A., Abe S., Yamaha E., Yamazaki F., Yoshida M.C. (1997). Uniparental chromosome elimination in the early embryogenesis of the inviable salmonid hybrids between masu salmon female and rainbow trout male. Chromosoma, 106: 44-52.
  10. Goryczko K., Dobosz S., Mäkinen T., Tomasik L. (1991). UV-irradiation of rainbow trout sperm asapractical method for induced gynogenesis. J. Appl. Ichthyol., 7: 136-146.
  11. Jankun M., Ocalewicz K., Pardo B.G., Martinez P., Woźnicki P., Sanchez L. (2003). Chromosomal characteristics of r DNAin European grayling Thymallus thymallus (Salmonidae). Genetica, 119: 219-224.
  12. Komen H., Thorgaard G.H. (2007). Androgenesis, gynogenesis and the production of clones in fishes:areview. Aquaculture, 269: 150-173.
  13. Krisfalusi M., Wheeler P.A., Thorgaard G.H., Cloud J.G. (2000). Gonadal morphology of female diploid gynogenetic and triploid rainbow trout. J. Exp. Zool., 286: 505-512.
  14. Ocalewicz K. (2002). Cytogenetic markers for Xchromosome in karyotype of rainbow trout from Rutki strain. Folia Biol. (Krakow), 50: 10-14.
  15. Ocalewicz K., Babiak I., Dobosz S., Nowaczyk J., Goryczko K. (2004). The stability of telomereless chromosome fragments in adult androgenetic rainbow trout. J. Exp. Biol., 207: 2229-2236.
  16. Ocalewicz K., Dobosz S., Kuzminski H., Goryczko K. (2009). Formation of chromosome aberrations in androgenetic rainbow trout (Oncorhynchus mykiss, Walbaum). J. Fish Biol., 75: 2373-2379.
  17. Ocalewicz K., Dobosz S., Kuzminski H., Nowosad J., Goryczko K. (2010). Chromosome rearrangements and survival of androgenetic rainbow trout (Oncorhynchus mykiss). J. Appl. Genet., 51: 309-317.
  18. Ocalewicz K., Dobosz S., Kuzminski H. (2012). Distribution of telomeric DNAsequences on the X-radiation-induced chromosome fragments in the genome of androgenetic brook trout (Salvelinus fontinalis, Mitchill 1814). Cytogenet. Genome Res., 137: 1-6.
  19. Pandian T.J., Koteeswaran R. (1998). Ploidy induction and sex control in fish. Hydrobiologia, 384: 167-243.
  20. Paschos I., Natsis L., Nathanailides C., Kagalou I., Kolettas E. (2001). Induction of gynogenesis and androgenesis in goldfish Carassius auratus (var. oranda). Reprod. Domest. Anim., 36: 195-198.
  21. Pelegri F. (2003). Maternal factors in zebrafish development. Dev. Dynam., 228: 535-554.
  22. Reading B.J., Wills P.S., Heidinger R.C., Heist E.J. (2015). Genetic variability in meioticgynogenetic muskellunge, Esox masquinongy (Mitchell), estimated from segregation of microsatellite alleles. Aquaculture Res. (in press), doi:10.1111/are.12718.10.1111/are.12718
  23. Thorgaard G.H. (1986). Ploidy manipulation and performance. Aquaculture, 57: 57-64.
  24. Thorgaard G.H. (1992). Application of genetic technologies to rainbow trout. Aquaculture, 100: 85-97.
  25. Webb T.A., Kowalski W.J., Fluck R.A. (1995). Microtubule-based movements during ooplasmic segregation in the medaka fish egg (Oryzias latipes). Biol. Bull., 188: 146-156.
  26. Yamaha E., Otani S., Minami A., Arai K. (2002). Dorso-ventral axis perturbation in goldfish embryos caused by heat- and pressure-shock treatments for chromosomes set manipulation. Fish Sci., 68: 313-319.
DOI: https://doi.org/10.1515/aoas-2015-0032 | Journal eISSN: 2300-8733 | Journal ISSN: 1642-3402
Language: English
Page range: 919 - 928
Submitted on: Jan 8, 2015
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Accepted on: Apr 24, 2015
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Published on: Oct 29, 2015
In partnership with: Paradigm Publishing Services
Publication frequency: Volume open

© 2015 Stefan Dobosz, Marta Dębowska, Janusz Krom, Małgorzata Jankun, Tomasz Zalewski, Konrad Ocalewicz, published by National Research Institute of Animal Production
This work is licensed under the Creative Commons Attribution-NonCommercial-NoDerivatives 4.0 License.