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Dive into the research topics where Cathy Ramsey is active.

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Featured researches published by Cathy Ramsey.


Nature | 2009

Mitochondrial gene replacement in primate offspring and embryonic stem cells

Masahito Tachibana; Michelle Sparman; Hathaitip Sritanaudomchai; Hong Ma; Lisa Clepper; Joy Woodward; Ying Li; Cathy Ramsey; Olena Kolotushkina; Shoukhrat Mitalipov

Mitochondria are found in all eukaryotic cells and contain their own genome (mitochondrial DNA or mtDNA). Unlike the nuclear genome, which is derived from both the egg and sperm at fertilization, the mtDNA in the embryo is derived almost exclusively from the egg; that is, it is of maternal origin. Mutations in mtDNA contribute to a diverse range of currently incurable human diseases and disorders. To establish preclinical models for new therapeutic approaches, we demonstrate here that the mitochondrial genome can be efficiently replaced in mature non-human primate oocytes (Macaca mulatta) by spindle–chromosomal complex transfer from one egg to an enucleated, mitochondrial-replete egg. The reconstructed oocytes with the mitochondrial replacement were capable of supporting normal fertilization, embryo development and produced healthy offspring. Genetic analysis confirmed that nuclear DNA in the three infants born so far originated from the spindle donors whereas mtDNA came from the cytoplast donors. No contribution of spindle donor mtDNA was detected in offspring. Spindle replacement is shown here as an efficient protocol replacing the full complement of mitochondria in newly generated embryonic stem cell lines. This approach may offer a reproductive option to prevent mtDNA disease transmission in affected families.


Nature | 2012

Towards germline gene therapy of inherited mitochondrial diseases

Masahito Tachibana; Paula Amato; Michelle Sparman; Joy Woodward; Dario Melguizo Sanchis; Hong Ma; Nuria Marti Gutierrez; Rebecca Tippner-Hedges; Eunju Kang; Hyo Sang Lee; Cathy Ramsey; Keith Masterson; David Battaglia; David M. Lee; Diana Wu; Jeffrey T. Jensen; Phillip E. Patton; Sumita Gokhale; Richard L. Stouffer; Shoukhrat Mitalipov

Mutations in mitochondrial DNA (mtDNA) are associated with severe human diseases and are maternally inherited through the egg’s cytoplasm. Here we investigated the feasibility of mtDNA replacement in human oocytes by spindle transfer (ST; also called spindle–chromosomal complex transfer). Of 106 human oocytes donated for research, 65 were subjected to reciprocal ST and 33 served as controls. Fertilization rate in ST oocytes (73%) was similar to controls (75%); however, a significant portion of ST zygotes (52%) showed abnormal fertilization as determined by an irregular number of pronuclei. Among normally fertilized ST zygotes, blastocyst development (62%) and embryonic stem cell isolation (38%) rates were comparable to controls. All embryonic stem cell lines derived from ST zygotes had normal euploid karyotypes and contained exclusively donor mtDNA. The mtDNA can be efficiently replaced in human oocytes. Although some ST oocytes displayed abnormal fertilization, remaining embryos were capable of developing to blastocysts and producing embryonic stem cells similar to controls.


Cell Stem Cell | 2012

Spermatogonial Stem Cell Transplantation into Rhesus Testes Regenerates Spermatogenesis Producing Functional Sperm

Brian P. Hermann; Meena Sukhwani; Felicity Winkler; Julia N. Pascarella; Karen A. Peters; Yi Sheng; Hanna Valli; Mario Rodriguez; Mohamed Ezzelarab; Gina Dargo; Kim Peterson; Keith Masterson; Cathy Ramsey; Thea Ward; Maura Lienesch; Angie Volk; David K. C. Cooper; Angus W. Thomson; Joseph E. Kiss; M. C. T. Penedo; Gerald Schatten; Shoukhrat Mitalipov; Kyle E. Orwig

Spermatogonial stem cells (SSCs) maintain spermatogenesis throughout a mans life and may have application for treating some cases of male infertility, including those caused by chemotherapy before puberty. We performed autologous and allogeneic SSC transplantations into the testes of 18 adult and 5 prepubertal recipient macaques that were rendered infertile with alkylating chemotherapy. After autologous transplant, the donor genotype from lentivirus-marked SSCs was evident in the ejaculated sperm of 9/12 adult and 3/5 prepubertal recipients after they reached maturity. Allogeneic transplant led to donor-recipient chimerism in sperm from 2/6 adult recipients. Ejaculated sperm from one recipient transplanted with allogeneic donor SSCs were injected into 85 rhesus oocytes via intracytoplasmic sperm injection. Eighty-one oocytes were fertilized, producing embryos ranging from four-cell to blastocyst with donor paternal origin confirmed in 7/81 embryos. This demonstration of functional donor spermatogenesis following SSC transplantation in primates is an important milestone for informed clinical translation.


Cell | 2012

Generation of Chimeric Rhesus Monkeys

Masahito Tachibana; Michelle Sparman; Cathy Ramsey; Hong Ma; Hyo Sang Lee; M. C. T. Penedo; Shoukhrat Mitalipov

Totipotent cells in early embryos are progenitors of all stem cells and are capable of developing into a whole organism, including extraembryonic tissues such as placenta. Pluripotent cells in the inner cell mass (ICM) are the descendants of totipotent cells and can differentiate into any cell type of a body except extraembryonic tissues. The ability to contribute to chimeric animals upon reintroduction into host embryos is the key feature of murine totipotent and pluripotent cells. Here, we demonstrate that rhesus monkey embryonic stem cells (ESCs) and isolated ICMs fail to incorporate into host embryos and develop into chimeras. However, chimeric offspring were produced following aggregation of totipotent cells of the four-cell embryos. These results provide insights into the species-specific nature of primate embryos and suggest that a chimera assay using pluripotent cells may not be feasible.


Biology of Reproduction | 2004

Use of Assisted Reproductive Technologies in the Propagation of Rhesus Macaque Offspring

Don P. Wolf; S. Thormahlen; Cathy Ramsey; Richard R. Yeoman; John W. Fanton; Shoukhrat Mitalipov

Abstract The assisted reproductive technologies (ARTs) as tailored to the production of rhesus monkeys at the Oregon National Primate Research Center (ONPRC) are described. Efficient fertilization of mature oocytes recovered by aspiration from females subjected to follicular stimulation was achieved with fresh or frozen sperm by intracytoplasmic sperm injection (ICSI). Embryo development to the early cleavage stage occurred at high frequency. Cryopreserved embryos showed high postthaw survival and were also transferred in efforts to establish pregnancies. Three methods of transfer were evaluated, two involving embryo placement into the oviduct, laparoscopy and minilaparotomy, and a nonsurgical, transcervical approach that resulted in uterine deposition. Early cleaving embryos (Days 1–4) were transferred into the oviducts of synchronized recipients with optimal results and pregnancy rates of up to 36%. Pregnancy rates were similar when two fresh or frozen embryos were transferred (28– 30%), although more than two embryos had to be thawed to compensate for embryo loss during freeze-thawing. Normal gestational lengths, birth weights, and growth curves were seen with ART-produced infants compared with infants produced by natural mating in the timed mated breeding (TMB) colony at the ONPRC. In 72 singleton pregnancies established following the transfer of ART-produced embryos, the live-birth rate, at 87.5%, was statistically identical to that for the TMB colony. Further development of the ARTs should result in increasing use of these techniques to augment conventional approaches to propagating monkeys, especially those of defined genotypes.


Stem Cells | 2009

Epigenetic Reprogramming by Somatic Cell Nuclear Transfer in Primates

Michelle Sparman; Vikas Dighe; Hathaitip Sritanaudomchai; Hong Ma; Cathy Ramsey; Darlene Pedersen; Lisa Clepper; Prashant K. Nighot; Don P. Wolf; Jon D. Hennebold; Shoukhrat Mitalipov

We recently demonstrated that somatic cells from adult primates could be reprogrammed into a pluripotent state by somatic cell nuclear transfer. However, the low efficiency with donor cells from one monkey necessitated the need for large oocyte numbers. Here, we demonstrate nearly threefold higher blastocyst development and embryonic stem (ES) cell derivation rates with different nuclear donor cells. Two ES cell lines were isolated using adult female rhesus macaque skin fibroblasts as nuclear donors and oocytes retrieved from one female, following a single controlled ovarian stimulation. In addition to routine pluripotency tests involving in vitro and in vivo differentiation into various somatic cell types, primate ES cells derived from reprogrammed somatic cells were also capable of contributing to cells expressing markers of germ cells. Moreover, imprinted gene expression, methylation, telomere length, and X‐inactivation analyses were consistent with accurate and extensive epigenetic reprogramming of somatic cells by oocyte‐specific factors. STEM CELLS 2009;27:1255–1264


Developmental Biology | 2012

X-chromosome inactivation in monkey embryos and pluripotent stem cells

Masahito Tachibana; Hong Ma; Michelle Sparman; Hyo Sang Lee; Cathy Ramsey; Joy Woodward; Hathaitip Sritanaudomchai; Keith Masterson; Erin Wolff; Yibing Jia; Shoukhrat Mitalipov

Inactivation of one X chromosome in female mammals (XX) compensates for the reduced dosage of X-linked gene expression in males (XY). However, the inner cell mass (ICM) of mouse preimplantation blastocysts and their in vitro counterparts, pluripotent embryonic stem cells (ESCs), initially maintain two active X chromosomes (XaXa). Random X chromosome inactivation (XCI) takes place in the ICM lineage after implantation or upon differentiation of ESCs, resulting in mosaic tissues composed of two cell types carrying either maternal or paternal active X chromosomes. While the status of XCI in human embryos and ICMs remains unknown, majority of human female ESCs show non-random XCI. We demonstrate here that rhesus monkey ESCs also display monoallelic expression and methylation of X-linked genes in agreement with non-random XCI. However, XIST and other X-linked genes were expressed from both chromosomes in isolated female monkey ICMs indicating that ex vivo pluripotent cells retain XaXa. Intriguingly, the trophectoderm (TE) in preimplantation monkey blastocysts also expressed X-linked genes from both alleles suggesting that, unlike the mouse, primate TE lineage does not support imprinted paternal XCI. Our results provide insights into the species-specific nature of XCI in the primate system and reveal fundamental epigenetic differences between in vitro and ex vivo primate pluripotent cells.


Contraception | 2015

Phosphodiesterase 3 (PDE3) inhibition with cilostazol does not block in vivo oocyte maturation in rhesus macaques (Macaca mulatta).

C. Hanna; S. Yao; Cathy Ramsey; Jon D. Hennebold; Mary B. Zelinski; Jeffrey T. Jensen

OBJECTIVE Studies in mice suggest that cilostazol, an FDA-approved phosphodiesterase 3 (PDE3) inhibitor, might have a contraceptive effect within the approved dose range. We sought to evaluate the potential contraceptive effects of cilostazol in a nonhuman primate model. STUDY DESIGN Adult female rhesus macaques were stimulated to develop multiple preovulatory follicles by administering human recombinant gonadotropins, and oocytes were collected by follicle aspiration 36 h after an ovulatory stimulus (human chorionic gonadotropin). Monkeys received no further treatment (controls) or the PDE3 inhibitor cilostazol at the maximum approved human dose of 100mg twice daily starting 6 days prior to follicle aspiration. Recovered oocytes were scored for meiotic stage [germinal vesicle (GV) intact, GV breakdown], and metaphase II stage oocytes were fertilized in vitro and observed for normal embryo development. RESULTS Similar proportions of GV stage oocytes were recovered from control (27%±4%) and cilostazol (27%±9%)-treated females, and the proportion of embryos that developed into blastocysts was also similar for both groups (7%±5% control vs. 15%±8% cilostazol). CONCLUSION Oral dosing of cilostazol tablets during controlled ovarian stimulation protocols did not prevent oocyte maturation or embryo development in macaques. IMPLICATIONS Since administration of the maximum approved human dose of cilostazol (an FDA-approved PDE3 inhibitor) to macaques did not prevent oocyte maturation or fertilization, it is not likely that this dose would be contraceptive in women.


Cell Reports | 2012

Rapid Mitochondrial DNA Segregation in Primate Preimplantation Embryos Precedes Somatic and Germline Bottleneck

Hyo Sang Lee; Hong Ma; Rita Cervera Juanes; Masahito Tachibana; Michelle Sparman; Joy Woodward; Cathy Ramsey; Jing Xu; Eun Ju Kang; Paula Amato; Georg Mair; Ralf Steinborn; Shoukhrat Mitalipov


American Journal of Primatology | 2007

Evaluation of the vervet (Clorocebus aethiops) as a model for the assisted reproductive technologies

Michelle Sparman; Cathy Ramsey; Carrie M. Thomas; Shoukhrat Mitalipov; John W. Fanton; Gwen M. Maginnis; Richard L. Stouffer; Don P. Wolf

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Michelle Sparman

Oregon National Primate Research Center

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Masahito Tachibana

Oregon National Primate Research Center

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Hong Ma

Oregon National Primate Research Center

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Don P. Wolf

Oregon National Primate Research Center

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Joy Woodward

Oregon National Primate Research Center

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Jon D. Hennebold

Oregon National Primate Research Center

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