DOI QR코드

DOI QR Code

Effect of 7,8-Dihydroxyflavone on In Vitro Maturation of Oocytes in Pigs

  • Received : 2014.02.17
  • Accepted : 2014.03.12
  • Published : 2014.03.31

Abstract

In porcine embryo culture, one of reactive oxygen species (ROS) is harmful factors that are made during in vitro culture. To decrease the detrimental effect of ROS on embryo development, superoxide dismutase, catalase and glutathione peroxidase could be used in the embryo culture. Out of these antioxidants, 7,8-dihydroxyflavone (7,8-DHF) was reported its antioxidant effects to prevent the glutamine-triggered apoptosis. Therefore, this study was performed to investigate the most appropriate concentration of 7,8-DHF in porcine embryonic development. For that, 5 different concentration (0, 0.1, 0.5, 1, $2{\mu}m$) of 7,8-DHF was supplemented in the porcine IVM media and then maturation and blastocyst formation rates were compared among 5 groups. In maturation rates of porcine oocytes, significant higher maturation rates was shown in the $1.0{\mu}m$ group compared with another 4 groups ($83.3{\pm}2.1$ vs. $80.7{\pm}1.4$, $79.8{\pm}1.4$, $78.3{\pm}1.2$, $79.4{\pm}1.6$), respectively (P<0.05). In the embryo culture, $1.0{\mu}m$ group also showed the significant higher cleavage rates ($76.8{\pm}3.1$ vs. $62.1{\pm}5.0$, $65.7{\pm}4.0$, $68.6{\pm}3.7$, $64.6{\pm}4.0%$) and blastocyst formation rates - ($39.6{\pm}4.0%$ vs. $28.6{\pm}3.3$, $31.1{\pm}3.9$, $29.3{\pm}2.5$, $39.6{\pm}4.0$, $26.4{\pm}3.2%$), respectively (P<0.05). There was no significant difference among 5 groups in the cell number of blastocyst (P<0.05). In conclusion, supplement of $1.0{\mu}m$ of 7,8-DHF was effective to increase the porcine embryonic development competence as antioxidant to ROS.

Keywords

References

  1. Booth PJ, Holm P and Callesen H. 2005. The effect of oxygentension on porcine embryonic development is dependent on embryo type. Theriogenology 63: 2040-2052. https://doi.org/10.1016/j.theriogenology.2004.10.001
  2. Choe C, Shin YW, Kim EJ, Cho SR, Kim HJ, et al. 2010. Synergistic effects of glutathione and beta-mercaptoethanol treatment during in vitro maturation of porcine oocytes on early embryonic development in a culture system supplemented with L-cysteine. The Journal of Reproduction and Development 56: 575-582. https://doi.org/10.1262/jrd.09-214H
  3. Guerin P, El Mouatassim S and Menezo Y. 2001. Oxidative stress and protection against reactive oxygen species in the preimplantation embryo and its surroundings. Human Reproduction Update 7: 175-189. https://doi.org/10.1093/humupd/7.2.175
  4. Hu J, Cheng D, Gao X, Bao J, Ma X and Wang H. 2012. Vitamin C enhances the in vitro development of porcine preimplantation embryos by reducing oxidative stress. Reproduction in Domestic Animals = Zuchthygiene 47: 873-879. https://doi.org/10.1111/j.1439-0531.2011.01982.x
  5. Lunney JK. 2007. Advances in swine biomedical model genomics. International Journal of Biological Sciences 3: 179-184.
  6. Luvoni GC, Keskintepe L and Brackett BG. 1996. Improvement in bovine embryo production in vitro by glutathionecontaining culture media. Molecular Reproduction and Development 43: 437-443. https://doi.org/10.1002/(SICI)1098-2795(199604)43:4<437::AID-MRD5>3.0.CO;2-Q
  7. Nabenishi H, Ohta H, Nishimoto T, Morita T, Ashizawa K and Tsuzuki Y. 2012. The effects of cysteine addition during in vitro maturation on the developmental competence, ROS, GSH and apoptosis level of bovine oocytes exposed to heat stress. Zygote 20: 249-259. https://doi.org/10.1017/S0967199411000220
  8. O'Neill CA, Halliwell B, van der Vliet A, Davis PA, Packer L, et al. 1994. Aldehyde-induced protein modifications in human plasma: protection by glutathione and dihydrolipoic acid. The Journal of Laboratory and Clinical Medicine 124: 359-370.
  9. Sirard MA, Richard F, Blondin P and Robert C. 2006. Contribution of the oocyte to embryo quality. Theriogenology 65: 126-136. https://doi.org/10.1016/j.theriogenology.2005.09.020
  10. Suzuki C, Yoshioka K, Sakatani M and Takahashi M. 2007. Glutamine and hypotaurine improves intracellular oxidative status and in vitro development of porcine preimplantation embryos. Zygote 15: 317-124. https://doi.org/10.1017/S0967199407004273
  11. Thirupathy KP, Tulshkar A and Vijaya C. 2011. Neuropharmacological activity of Lippia nodiflora Linn. Pharmacognosy Research 3: 194-200. https://doi.org/10.4103/0974-8490.85007
  12. Thouas GA, Korfiatis NA, French AJ, Jones GM and Trounson AO. 2001. Simplified technique for differential staining of inner cell mass and trophectoderm cells of mouse and bovine blastocysts. Reproductive Biomedicine Online 3: 25-29. https://doi.org/10.1016/S1472-6483(10)61960-8
  13. Tsai T, Klausmeyer A, Conrad R, Gottschling C, Leo M, et al. 2013. 7,8-Dihydroxyflavone leads to survival of cultured embryonic motoneurons by activating intracellular signaling pathways. Molecular and Cellular Neurosciences 56: 18-28. https://doi.org/10.1016/j.mcn.2013.02.007
  14. Wu GQ, Jia BY, Li JJ, Fu XW, Zhou GB, et al. 2011. LCarnitine enhances oocyte maturation and development of parthenogenetic embryos in pigs. Theriogenology 76: 785-793. https://doi.org/10.1016/j.theriogenology.2011.04.011
  15. Yoshioka K. 2011. Development and application of a chemically defined medium for the in vitro production of porcine embryos. The Journal of Reproduction and Development 57: 9-16. https://doi.org/10.1262/jrd.10-196E
  16. You J, Kim J, Lim J and Lee E. 2010. Anthocyanin stimulates in vitro development of cloned pig embryos by increasing the intracellular glutathione level and inhibiting reactive oxygen species. Theriogenology 74: 777-785. https://doi.org/10.1016/j.theriogenology.2010.04.002