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❓ Why are mitochondria in oocytes different from other cells? Also, why do they appear differently?

❕ The unique features of mitochondria (mtDNA copy number, morphology and functionality) in the oocyte have been determined by evolution. Specifically, the number of mitochondria within cells is often an indication of the activity of that cell. The capability to generate ATP in an oocyte is critical for successful maturation of the cytoplasm and nucleus in preparation for fertilization and completion of meiosis II.1 In addition, as the female germ cell the oocyte provides all the mitochondria required for embryo development because mitochondria from sperm are degenerated immediately after fertilization. Good quality oocytes containing optimal mitochondrial numbers and sufficient levels of ATP (at least 2 pM)2 produce higher quality blastocysts after fertilization.3

The mitochondria in the oocyte are structurally distinct – they are spherical with few truncated cristae surrounding a matrix of high electron density.4 The mitochondria in the oocyte are the primary source of ATP required for early embryo development2,5 since early embryos do not express the replication factors required to increase copy numbers of mitochondria until around the time of implantation.

These mitochondria are then able to undergo stage-specific structural transformations during the preimplantation phase, including elongation and development of an extensive array of cristae that completely traverse a matrix of progressively lower electron density.6-10 Replication of the mtDNA then occurs around the time of blastocyst formation – first in the trophectoderm and then within the overall embryo.1,11

Taken together, the unique features of oocyte make its mitochondria very different from other somatic cells. The morphology, number and activity of mitochondria in oocytes are indispensable for fertilization and early embryo development.

 

References
  1. St John JC, Facucho‐Oliveira J, Jiang Y, Kelly R, and Salah R. "Mitochondrial DNA transmission, replication and inheritance: a journey from the gamete through the embryo and into offspring andembryonic stem cells," Human Reproduction Update 2010; 16(5): 488–509.
  2. Van Blerkom J, Davis PW, and Lee J. "ATP content of human oocytes and developmental potential andoutcome after in‐vitro fertilization and embryo transfer," Human Reproduction 1995, 10(2): 415–424.
  3. Takeuchi T, Q. V. Neri, Y. Katagiri, Z. Rosenwaks, and G. D. Palermo, "Effect of treating inducedmitochondrial damage on embryonic development and epigenesis," Biology of Reproduction 2005,72(3): 584–592.
  4. Motta, P, Nottola, S, Makabe, S, Heyn, R. Mitochondrial morphology in human fetal and adult femalegerm cells. Hum. Reprod. 2000, 15(suppl 2), 129–147.
  5. Dumollard, R, Duchen, M, Carroll, J. The role of mitochondrial function in the oocyte and embryo.Curr. Top. Dev. Biol. 2007, 77: 21–49.
  6. Van Blerkom, J., Manes, C., Daniel, J.C., 1973. Development of preimplantation rabbit embryos in vivoand in vitro. I. An ultrastructural comparison. Dev. Biol. 35, 262–282.
  7. Van Blerkom J., Motta P. The cellular basis of mammalian reproduction, Urban & Schwarzenberg,Baltimore – Munich 1979, 2 (3): 185.
  8. Van Blerkom, J., 1989. Developmental failure in human reproduction associated with preovulatoryoogenesis and preimplantation embryogenesis. In: Van Blerkom, J., Motta, P. (Eds.), Ultrastructure of Human Gametogenesis and Embryogenesis. Kluwer Acad. Pub, pp. 125–180.
  9. Van Blerkom, J., 1993. Development of human embryos to the hatched blastocyst stage in the presence or absence of a monolayer of Vero cells. Hum. Reprod. 8, 1525–1539.
  10. Sathananthan, H., Trounson, A., 2000. Mitochondrial morphology during human preimplantation embryogenesis. Hum. Reprod. 15 (Suppl. 2), 148–159.
  11. Thouas GA, Trounson AO, and Jones GM. “Effect of female age on mouse oocyte developmental competence following mitochondrial injury,” Biology of Reproduction, vol. 73, no. 2, pp. 366–373, 2005.

 

❓ Do mitochondria change when they are diluted in somatic cells during life?

❕ Once the embryo begins to replicate its own mitochondria and those mitochondria begin to divide into specific cell types during gastrulation, those mitochondria develop in a manner consistent with the function of that cell.

Over the course of a lifetime, mitochondria in all cells, including somatic cells, undergo mutations and deletions. Mitochondrial DNA resides close to the electron transport chain which produces reactive oxygen species (ROS) as a byproduct of ATP production. This causes damage to mitochondrial DNA (mtDNA) which accumulates with age. While there are many known/reported mtDNA mutations the most common mtDNA deletion in human cells results from a 4977-base pair deletion. The ‘common deletion’ has not been observed in mitochondria from EggPCSM cells.1

 

References
  1. Woods DC, Tilly JL. Autologous germline mitochondrial energy transfer (AUGMENT℠) in human assisted reproduction. Semin Reprod Med 2015; 33(06): 410‐421.

 

❓ What is the patient profile for the AUGMENTSM treatment?

❕ The AUGMENT treatment is recommended for patients diagnosed with poor egg health or undiagnosed infertility and who want to have their own biological child.

 

❓ Is there a means of checking mitochondrial activity prior to transfer?

❕ There are currently no assays available that assess mitochondrial activity and still allow for the mitochondria to be transferred.

 

❓ Where is the AUGMENT treatment available?

❕ The AUGMENT treatment is available in select countries globally and is not available in the United States. More information about the availability of AUGMENT is available at www.augmenttreatment.com.

Mitochondrial Transfer Referencesh

  • Acton, B., Jurisicova, A., Ahmady, A., et al., Microinjection of mitochondrial fractions into FVB oocytes: influences in vitro survival rates. 34th Annual Society Study Reproductions 17: 440, 2001.
  • Anderson, R., Telfer, E., Replenishing the adult ovarian follicle population: a fresh look at dogma. Molecular Human Reproduction, 22: 5, 313-315, 2016.
  • Barritt, J.A., Willadsen, S., Brenner, C., et al., Epigenetic and experimental modifications in early mammalian development: Part II. Human Reproduction Update 7: 428-435, 2001.
  • Cagnon, G., Tsai, T., Makanji, Y., et. Al., Restoration of normal embryogenesis by mitochondrial supplementation in pig oocytes exhibiting mitochondrial DNA deficiency. Nature. March 18, 2016.
  • Chappel, S., The Role of Mitochondria from Mature Oocyte to Viable Blastocyst, Obstetrics and Gynecology International 2013:1-10, 2013.
  • Cheng, Y., Wang. K., Kellam, L., et al., Effects of ooplasm manipulation on DNA methylation and growth of progeny in mice. Biology Reproduction 80: 464-472, 2009.
  • Cohen, J., Scott, R., Alikani, M., et al., Ooplasmic transfer in mature human oocytes. Molecular Human Reproduction 4: 269-280, 1998.
  • Dumolland, R., Duchen, M., and Carroll, J., The role of mitochondrial function in the oocyte and embryo. Current Topics in Developmental Biology 77: 21-49, 2007.
  • Duran, H.E., Simsek-Duran, F., Oeringer, S.C., et al., The association of reproductive senescence with mitochondrial quality function and DNA integrity in human oocytes at different stages of development. Fertility and Sterility 96: 384-388, 2011.
  • El Shourbagy, S., Spikings, E., Freitas, M., St John, J., Mitochondria directly influence fertilization outcome in the pig, Reproduction Research 131: 233245, 2006.
  • Fakih, M.H., El Shmoury, M., Szeptycki, J., et al., The AUGMENT treatment: physician reported outcomes of the initial global patient experience. Journal of Fertilization: In Vitro, ICF-Worldwide, Reproductive medicine Genetics & Stem Cell Biology 3: 1-7, 2015.
  • Ferreira, C.R., Burgstaller, J.P., and Perecin F. Pronounced segregation of donor mitochondria introduced by bovine ooplasmic transfer to the female germ-line. Biology of Reproduction 82: 563-571, 2010.
  • Fragouli, E., Spath, K., Alfarawati, S., et al. Altered Levels of Mitochondrial DNA are Associated with Female Age, Aneuploidy, and Provide an Independent Measure of Embryonic Implantation Potential. Plos Genetics. 1-18. June 3, 2015
  • Hua, S., Zhang, Y., Li, X., et al., Effects of granulosa cell mitochondria transfer on the early development of bovine embryos in vitro. Cloning and Stem Cells 9: 237-246, 2007.
  • Huang, C., Cheng, T., Chang, H., et al., Birth after the injection of sperm and the cytoplasm of tripronucleate zygotes into metaphase II oocytes in patients with repeated implantation failure after assisted fertilization procedures. Fertility and Sterility 72: 702-706, 1999.
  • Ishihara, N., Jofuku, A., Eura, Y., Mihara, K., Regulation of mitochondrial morphology by membrane potential and DRP1 dependent division and FZO1 dependent fusion reaction in mammalian cells. Biochemical Biophysical Res Communications 301: 891-898, 2003.
  • Johnson, J., Canning, J., Kaneko, T., et al., Germ-line stem cells and follicular renewal in the postnatal mammalian ovary. Nature 428: 145-150, 2004.
  • Keefe, D., Niven-Fairchild, T., Powell, S., and Buradagunta, S. Mitochondrial deoxyribonucleic acid deletions in oocytes and reproductive aging women. Fertility and Sterility 64: 577-583, 1995.
  • Lagouge M., Argmann C., Gerhart-Hines Z., et al., Resveratrol improves mitochondrial function and protects against metabolic disease by activating SIRT1 and PGC-1alpha. Cell.127:1109-22, 2006.
  • Lanzendorf, S.E., Mayer, J., Toner, J., et al., Pregnancy following transfer of ooplasm from cryopreserved-thawed donor oocytes into recipient oocytes. Fertility and Sterility 71: 575-577, 1999.
  • Levron, J., Willadsen, S., Bertoli M., and Cohen, J. The development of mouse zygotes after fusion with synchronous and asynchronous cytoplasm. Human Reproduction 11: 1287-1292, 1996.
  • May-Panloup, P.M., Chretien, M.F., Jacques, C., et al., Low oocyte mitochondrial DNA content in ovarian insufficiency. Human Reproduction 20: 593-597, 2005.
  • Meirelles, F.V. and Smith, L.C. Mitochondrial genotype segregation during preimplantation development in mouse heteroplasmic embryos. Genetics 148: 877-883, 1998.
  • Meldrum, D., Casper, R., Diez-Juan, A., et al. Aging and the environment affect gamete and embryo potential: can we intervene? Fertility and Sterility 105: 3, 2016.
  • Moren, C., Hernandez, S., et al. Mitochondrial Toxicity in Human Pregnancy: An Update on Clinical and Experimental Approaches in the Last 10 Years. International Journal of Environmental Research and Public Health 11: 9897-9918, 2014.
  • Nagai, S., Mabuchi, T., Hirata, S., et al., Oocyte Mitochondria: Strategies to improve embryogenesis. Human Cell 17: 195-201, 2004.
  • Pinckert. C.A., Irwin, M., Johnson, L., Moffatt, R., Mitochondria transfer into mouse ova by microinjection. Transgenic Research 6: 379-383, 1997.
  • Price N.L., Gomes A.P., Ling A.J., et al. SIRT1 is required for AMPK activation and the beneficial effects of resveratrol on mitochondrial function. Cell Metabolism 15:675-690, 2012
  • Ramalho-Santos, J., Varum, S, Amaral, S., et al., Mitochondrial functionality in reproduction: from gonads and gametes to embryos and embryonic stem cells. Human Reproduction Update 15: 553-572, 2009.
  • Spikings, E.C., Alderson, J., St John, J.C., Regulated mitochondrial DNA replication during oocyte maturation is essential for successful porcine embryonic development. Biology Reproduction 76: 327-335, 2007.
  • St. John, J.C., Ooplasm donation in humans: the need to investigate the transmission of mitochondrial DNA following cytoplasmic transfer. Human Reproduction 17: 1954-1958, 2002.
  • Takeda, K., Tasia, M., Iwamoto, M., et al., Microinjection of cytoplasm or mitochondria derived from somatic cells affects parthenogenetic development of murine oocytes. Biology Reproduction 72: 1397-1404, 2005.
  • Thouas, G.A., Trounson, A.O., Wolvetang, E.J., et al., Mitochondrial dysfunction in mouse oocytes results in preimplantation and arrest. Biology Reproduction 71: 1936-1942, 2004.
  • Tzeng CR, Hsieh RH, Au HK, et al., Mitochondria transfer (MIT) into oocyte from autologous cumulus granulosa cells (cGCs). Fertil Steril 82: S53, 2004.
  • Van Blerkom, J., Davis, P., Alexander, S., Differential mitochondrial distribution in human pronuclear embryos leads to disproportionate inheritance between blastomeres: relationship to microtubular organization, ATP content and competence. Human Reproduction 15: 2621-2633, 2000.
  • Van Blerkom, J., Sinclair, J., and Davis, P. Mitochondrial transfer between oocytes: potential applications of mitochondrial donation and the issue of heteroplasmy. Human Reproduction 13: 2857-2868, 1998.
  • Wai T., Ao A., Zhang X., et al. The role of mitochondrial DNA copy number in mammalian fertility. Biology of Reproduction 83: 52–62, 2010.
  • Wang, J. and Sauer, M.V., In vitro fertilization (IVF): a review of a decades of clinical innovation and technological advancement. Therapeutics and Clinical Risk Management 2: 355-364, 2006.
  • Wang L., Wang D., Zou X., and Xu C. Mitochondrial functions on oocytes and preimplantation embryos. Journal of Zhejiang University SCIENCE B 10: 483-492.
  • White, Y. A., Woods, D., Takai, Y, et al., Oocyte formation by mitotically active germ cells purified from ovaries of reproductive-age women. Nature Medicine 18: 413-421, 2012.
  • Woods, D., Tilly, J., Autologous Germline Mitochondrial Energy Transfer (AUGMENT) in Human Assisted Reproduction. Seminars in Reproductive Medicine. 2016.
  • Yi, Y., Chen, M., Ho, J., et al., Mitochondria transfer can enhance the murine embryo development. J Assisted Reproduction and Genetics 24: 445-449, 2007.

 

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