AMB_2024v14n3

Animal Molecular Breeding 2024, Vol.14, No.3, 217-227 http://animalscipublisher.com/index.php/amb 226 Lamas S., Franquinho F., Morgado M., Mesquita J.R., Gärtner F., and Amorim I., 2020, C57BL/6J and B6129F1 embryo transfer: unilateral and bilateral transfer embryo number and recipient female background control for the optimization of embryo survival and litter size, Animals, 10(8): 1424. https://doi.org/10.3390/ani10081424 PMID: 32824021 PMCID: PMC7459990 Ma L.L., Li Z., Ma Z.R., Ma J.B., and Zhao F., 2021, Immunization against inhibin promotes fertility in cattle: a meta-analysis and quality assessment, Frontiers in Veterinary Science, 8: 687923. https://doi.org/10.3389/fvets.2021.687923 PMID: 34621805 PMCID: PMC8490720 Mains L., and van Voorhis B.J., 2010, Optimizing the technique of embryo transfer, Fertility and Sterility, 94(3): 785-790. https://doi.org/10.1016/j.fertnstert.2010.03.030 PMID: 20409543 Michailov Y., Friedler S., and Saar-Ryss B., 2023, Methods to improve frozen-thawed blastocyst transfer outcomes- the IVF laboratory perspective, Journal of IVF-Worldwide, 1(3-1): 1-5. https://doi.org/10.46989/001c.87541 Mogas T., 2018, Update on the vitrification of bovine oocytes and invitro-produced embryos, Reproduction Fertility and Development, 31(1): 105-117. https://doi.org/10.1071/RD18345 Nowak A., Kochan J., Świętek E., Kij B., Prochowska S., Witarski W., Bugno-Poniewierska M., and Niżański W., 2020, Survivability and developmental competences of domestic cat Felis catus) oocytes after Cryotech method vitrification, Reproduction in domestic animals, Zuchthygiene, 55(8): 992-997. https://doi.org/10.1111/rda.13741 PMID: 32516454 Owen C.M., Roberts M.A., Long K.A., Gumber D., Barceló-Fimbres M., Altermatt J.L., and Campos-Chillon L.F., 2022, Novel synthetic oviductal fluid for conventional freezing 1 (SCF1) culture medium improves development and cryotolerance of in vitro produced holstein embryos, Journal of Animal Science, 100(3): skac043. https://doi.org/10.1093/jas/skac043 PMID: 35148394 PMCID: PMC8919821 Pelican K., Wildt D., Pukazhenthi B., and Howard J., 2006, Ovarian control for assisted reproduction in the domestic cat and wild felids, Theriogenology, 66(1): 37-48. https://doi.org/10.1016/J.THERIOGENOLOGY.2006.03.013 PMID: 16630653 Phillips P., and Jahnke M., 2016, Embryo Transfer Techniques Donors and Recipients), The Veterinary clinics of North America., Food animal Practice, 32(2): 365-385. https://doi.org/10.1016/j.cvfa.2016.01.008 Pope C., 2000, Embryo technology in conservation efforts for endangered felids, Theriogenology, 53(1): 163-174. https://doi.org/10.1016/S0093-691X(99)00249-6 PMID: 10735071 Pope C., 2014, Aspects of in vivo oocyte production blastocyst development and embryo transfer in the cat, Theriogenology, 81(1): 126-137. https://doi.org/10.1016/j.theriogenology.2013.09.006 Sala R., Carrenho-Sala L., Absalón-Medina V., Lopez A., Fosado M., Moreno J., Wiltbank M., and Garcia-Guerra A., 2020, 105 Optimization of a five-day fixed-time embryo transfer program in dairy heifers: use of gonadotrophin-releasing hormone at initiation of the protocol, Reproduction Fertility and Development, 32(2): 179. https://doi.org/10.1071/rdv32n2ab105 Sala R., Melo L., Motta J., Leffers-Neto L., Carrenho-Sala L., Fosado M., Moreno J., Baruselli P., Wiltbank M., and Garcia-Guerra A., 2020, Optimization of a 5-day fixed-time embryo transfer FTET) protocol in heifers I., manipulation of circulating progesterone through reutilization of intravaginal progesterone devices during FTET, Theriogenology, 156: 171-180. https://doi.org/10.1016/j.theriogenology.2020.06.002 Swanson W., 2012, Laparoscopic oviductal embryo transfer and artificial insemination in felids-challenges strategies and successes, reproduction in domestic animals, Zuchthygiene, 47(Suppl 6): 136-140. https://doi.org/10.1111/rda.12069 Tandulwadkar S., Patil M., and Naik S., 2019, Optimising the outcome of embryo transfer, EMJ Reproductive Health, 5(1); 110-119. https://doi.org/10.33590/emjreprohealth/10310436 Tharasanit T., Manee-in S., Buarpung S., Chatdarong K., Lohachit C., and Techakumphu M., 2011, Successful pregnancy following transfer of feline embryos derived from vitrified immature cat oocytes using 'stepwise' cryoprotectant exposure technique, Theriogenology, 76(8): 1442-1449. https://doi.org/10.1016/j.theriogenology.2011.06.014 PMID: 21820721 Thongphakdee A., Berg D., Tharasanit T., Thongtip N., Tipkantha W., Punkong C., Tongthainan D., Noimoon S., Maikeaw U., Kajornklin N., Siriaroonrat B., Comizzoli P., and Kamolnorranath S., 2017, The impact of ovarian stimulation protocol on oocyte quality subsequent in vitro embryo development and pregnancy after transfer to recipients in Eld's deer (Rucervus eldii thamin), Theriogenology, 91: 134-144. https://doi.org/10.1016/j.theriogenology.2016.12.021

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