Uneingeschränkter Zugang

A new sperm selection criterion for cryopreservation of boar semen


Zitieren

Berger B., Fischerleitner F. (1992). On deep freezing of boar semen: Investigations on the effects of different straw volumes, methods of freezing and thawing extenders. Reprod. Domest. Anim., 27: 266–270. Search in Google Scholar

Buranaamnuay K., Grossfeld R., Struckmann C., Rath D. (2011). Influence of cryoprotectants glycerol and amides, combined with antioxidants on quality of frozen-thawed boar sperm. Anim. Reprod. Sci., 127: 56–61. Search in Google Scholar

Casas I., Sancho S., Ballester J., Briz M., Pinart E., Bussalleu E., Yeste M., Fab-rega A., Rodriguez-Gil J. E., Bonet S. (2010). The HSP90AA1 sperm content and the prediction of the boar ejaculate freezability. Theriogenology, 74: 940–950. Search in Google Scholar

Cerolini S., Maldjian A., Pizzi F., Gliozzi T. M. (2001). Changes in sperm quality and lipid composition during cryopreservation of boar semen. Reproduction, 121: 323–336. Search in Google Scholar

Curry M. R. (2000). Cryopreservation of semen from domestic livestock. Rev. Reprod., 5: 46–52. Search in Google Scholar

Flores E., Fernández-Novell J. M., Peña A., Rodríguez-Gil J. E. (2009). The degree of resistance to freezing-thawing is related to specific changes in the structures of motile sperm sub-populations and mitochondrial activity in boar spermatozoa. Theriogenology, 72: 784–797. Search in Google Scholar

Guimarães D. B., Barros T. B., Tilburg M. F., Martins J. A. M., Moura A. A., More-no F. B., Monteiro-Moreira A. C., Moreira R. A., Toniolli R. (2017). Sperm membrane proteins associated with the boar semen cryopreservation. Anim. Reprod. Sci., 183: 27–38. Search in Google Scholar

Hammitt D., Martin P. (1989). Fertility of frozen-thawed porcine semen following controlled rate freezing in straws. Theriogenology, 32: 369–384. Search in Google Scholar

Hernandez M., Roca J., Gil M. A., Vazquez J. M., Martinez E. A. (2007). Adjustments on the cryopreservation conditions reduce the incidence of boar ejaculates with poor sperm freezability. Theriogenology, 67: 1436–1445. Search in Google Scholar

Holt W. V., Medrano A., Thurston L. M., Watson P. F. (2005). The significance of cooling rates and animal variability for boar sperm cryopreservation: insights from the cryomicroscope. Theriogenology, 63: 370–382. Search in Google Scholar

Hossain M. D. S., Johannisson A., Wallgren M., Nagy S., Pimenta Siqueira A., Rodriguez-Martinez H. (2011). Flow cytometry for the assessment of animal sperm integrity and functionality: state of the art. Asian J. Androl., 13: 406–419. Search in Google Scholar

Johnson L., Weitze K., Fiser P., Maxwell W. M. (2000). Storage of boar semen. Anim. Re-prod. Sci., 62: 143–172. Search in Google Scholar

Moura A. A., Koc H., Chapman D. A., Killian G. J. (2006). Identification of proteins in the accessory sex gland fluid associated with fertility indexes of dairy bulls: a proteomic approach. J. Androl., 27: 201–211. Search in Google Scholar

Petrunkina A., Volker G., Weitze K., Beyerbach M., Töpfer-Petersen E., Wa-berski D. (2005). Detection of cooling-induced membrane changes in the response of boar sperm to capacitating conditions. Theriogenology, 63: 2278–2299. Search in Google Scholar

Pursel V. G., Johnson L. A. (1975). Freezing of boar spermatozoa: fertilizing capacity with concentrated semen and a new thawing procedure. J. Anim. Sci., 40: 99–102. Search in Google Scholar

Thurston L. M., Siggins K., Mileham A. J., Watson P. F., Holt W. V. (2002). Identification of amplified restriction fragment length polymorphism markers linked to genes controlling boar sperm viability following cryopreservation. Biol. Reprod., 66: 545–554. Search in Google Scholar

Trzcińska M., Bryła M. (2015). Apoptotic-like changes of boar spermatozoa in freezing media supplemented with different antioxidants. Pol. J. Vet. Sci., 18: 473–480. Search in Google Scholar

Trzcińska M., Bryła M., Gajda B., Gogol P. (2015). Fertility of boar semen cryopreserved in extender supplemented with butylated hydroxytoluene. Theriogenology, 83: 307–313. Search in Google Scholar

Trzcińska M., Bryła M., Smorąg Z. (2008). Effect of liquid storage on membrane integrity and mitochondrial activity: a new diagnostic method of evaluating boar sperm quality. J. Anim. Feed Sci., 17: 372–380. Search in Google Scholar

Vilagran I., Yeste M., Sancho S., Casas I., Riveradel Álamo M., Bonet S. (2014). Relationship of sperm small heat-shock protein 10 and voltage-dependent anion channel 2 with semen freezability in boars. Theriogenology, 82: 418–426. Search in Google Scholar

Westendorf P., Richter L., Treu H. (1975). Deep freezing of boar sperma. Laboratory and insemination results using the Hülsenberger paillete method. Dtsch. Tierarztl. Wochenschr., 82: 261–267. Search in Google Scholar

Yeste M., Estrada E., Casas I., Bonet S., Rodriguez-Gil J. E. (2013). Good and bad freezability boar ejaculates differ in the integrity of nucleoprotein structure after freeze-thawing but not in ROS levels. Theriogenology, 79: 929–939. Search in Google Scholar

Yeste M., Estrada E., Pinart E., Bonet S., Miró J., Rodríguez-Gil J. E. (2014). The improving effect of reduced glutathione on boar sperm cryotolerance is related with the intrinsic ejaculate freezability. Cryobiology, 68: 251–261. Search in Google Scholar

Zalazar L., Ledesma A., Hozbor F., Cesari A. (2016). Heterologous recombinant protein with decapacitating activity prevents and reverts cryodamage in ram sperm: an emerging biotechno-logical tool for cryobiology. Anim. Reprod. Sci., 164: 31–39. Search in Google Scholar

Zhang X. Z., Xiong C. L. (2013). Proteins in sperm and seminal plasma associated with human sperm resistance to cryopreservation. Zhonghua Nan Ke Xue, 19: 214–217. Search in Google Scholar

eISSN:
2300-8733
Sprache:
Englisch
Zeitrahmen der Veröffentlichung:
4 Hefte pro Jahr
Fachgebiete der Zeitschrift:
Biologie, Biotechnologie, Zoologie, Medizin, Veterinärmedizin