Genetics and imaging to assess oocyte and preimplantation embryo health

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dc.contributor Warner, C M
dc.contributor Newmark, J A
dc.contributor Comiskey, M
dc.contributor De Fazio, S R
dc.contributor O?Malley, D M
dc.contributor Rajadhyaksha, M
dc.contributor Townsend, D J
dc.contributor McKnight, S
dc.contributor Roysam, B
dc.contributor Dwyer, P J
dc.contributor DiMarzio, C A
dc.date.accessioned 2012-01-30T16:47:48Z
dc.date.available 2012-01-30T16:47:48Z
dc.date.issued 2004
dc.identifier.citation Rep. Fert. Dev. (2004) 16(7): 729-741
dc.identifier.issn 1031-3613
dc.identifier.uri http://livestocklibrary.com.au/handle/1234/16975
dc.description.abstract Two major criteria are currently used in human assisted reproductive technologies (ART) to evaluate oocyte and preimplantation embryo health: (1) rate of preimplantation embryonic development; and (2) overall morphology. A major gene that regulates the rate of preimplantation development is the preimplantation embryo development (Ped) gene, discovered in our laboratory. In mice, presence of the Ped gene product, Qa-2 protein, results in a fast rate of preimplantation embryonic development, compared with a slow rate of preimplantation embryonic development for embryos that are lacking Qa-2 protein. Moreover, mice that express Qa-2 protein have an overall reproductive advantage that extends beyond the preimplantation period, including higher survival to birth, higher birthweight, and higher survival to weaning. Data are presented that suggest that Qa-2 increases the rate of development of early embryos by acting as a cell-signalling molecule and that phosphatidylinositol-3? kinase is involved in the cell-signalling pathway. The most likely human homologue of Qa-2 has recently been identified as human leukocyte antigen (HLA)-G. Data are presented which show that HLA-G, like Qa-2, is located in lipid rafts, implying that HLA-G also acts as a signalling molecule. In order to better evaluate the second criterion used in ART (i.e. overall morphology), a unique and innovative imaging microscope has been constructed, the Keck 3-D fusion microscope (Keck 3DFM). The Keck 3DFM combines five different microscopic modes into a single platform, allowing multi-modal imaging of the specimen. One of the modes, the quadrature tomographic microscope (QTM), creates digital images of non-stained transparent cells by measuring changes in the index of refraction. Quadrature tomographic microscope images of oocytes and preimplantation mouse embryos are presented for the first time. The digital information from the QTM images should allow the number of cells in a preimplantation embryo to be counted non-invasively. The Keck 3DFM is also being used to assess mitochondrial distribution in mouse oocytes and embryos by using the k-means clustering algorithm. Both the number of cells in preimplantation embryos and mitochondrial distribution are related to oocyte and embryo health. New imaging data obtained from the Keck 3DFM, combined with genetic and biochemical approaches, have the promise of being able to distinguish healthy from unhealthy oocytes and embryos in a non-invasive manner. The goal is to apply the information from our mouse model system to the clinic in order to identify one and only one healthy embryo for transfer back to the mother undergoing an ART procedure. This approach has the potential to increase the success rate of ART and to decrease the high, and undesirable, multiple birth rate presently associated with ART.
dc.publisher CSIRO Publishing
dc.source.uri http://www.publish.csiro.au/?act=view_file&file_id=RD04088.pdf
dc.subject human leukocyte antigen-G
dc.subject k-means clustering algorithm
dc.subject mitochondria
dc.subject Ped gene
dc.title Genetics and imaging to assess oocyte and preimplantation embryo health
dc.type Research
dc.description.version Journal article
dc.identifier.volume 16
dc.identifier.page 729-741
dc.identifier.issue 7


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