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Biomedical subjects

D N Wells

Publications and source records attributed to D N Wells.

9 recordsLinked to original sources

Coordination between donor cell type and cell cycle stage improves nuclear cloning efficiency in cattle.

Several studies have shown that both quiescent and proliferating somatic donor cells can be fully reprogrammed after nuclear transfer (NT) and result in viable offspring. So far, however, no comparative study has conclusively demonstrated the relative importance of donor cell cycle stage on nuclear cloning efficiency. Here, we compare two different types of bovine fetal fibroblasts (BFFs) that were synchronized in G(0), G(1), and different phases within G(1). We show that for non-transgenic (non-TG) fibroblasts, serum starvation into G(0) results in a significantly higher percentage of viable calves at term than synchronization in early G(1) or late G(1). For transgenic fibroblasts, however, cells selected in G(1) show significantly higher development to calves at term and higher post-natal survival to weaning than cells in G(0). This suggests that it may be necessary to coordinate donor cell type and cell cycle stage to maximize overall cloning efficiency.

Animals↗

Cloned cattle derived from a novel zona-free embryo reconstruction system.

As the demand for cloned embryos and offspring increases, the need arises for the development of nuclear transfer procedures that are improved in both efficiency and ease of operation. Here, we describe a novel zona-free cloning method that doubles the throughput in cloned bovine embryo production over current procedures and generates viable offspring with the same efficiency. Elements of the procedure include zona-free enucleation without a holding pipette, automated fusion of 5-10 oocyte-donor cell pairs and microdrop in vitro culture. Using this system, zona-free embryos were reconstructed from five independent primary cell lines and cultured either singularly (single-IVC) or as aggregates of three (triple-IVC). Blastocysts of transferable quality were obtained at similar rates from zona-free single-IVC, triple-IVC, and control zona-intact embryos (33%, 25%, and 29%, respectively). In a direct comparison, there was no significant difference in development to live calves at term between single-IVC, triple-IVC, and zona-intact embryos derived from the same adult fibroblast line (10%, 13%, and 15%, respectively). This zona-free cloning method could be straightforward for users of conventional cloning procedures to adopt and may prove a simple, fast, and efficient alternative for nuclear cloning of other species as well.

Animals↗

Somatic cell nuclear transfer.

Cloning by nuclear transfer from adult somatic cells is a remarkable demonstration of developmental plasticity. When a nucleus is placed in oocyte cytoplasm, the changes in chromatin structure that govern differentiation can be reversed, and the nucleus can be made to control development to term.

Animals↗

Effects of follicular size of cytoplast donor on the efficiency of cloning in cattle.

In cattle, oocytes obtained from follicles smaller than 3 mm in diameter can undergo maturation in vitro, progressing to MII and undergoing fertilization, but are developmentally incompetent. Cytoplasts were prepared from in vitro matured oocytes aspirated from small (1-3 mm) or large (6-12 mm) follicles and fused to serum starved mural granulosa cells. Following activation, reconstructed embryos were cultured for 7 days and classified G1 to G4, before being processed for nuclei counting or transferred to synchronized recipients. Oocytes from small follicles had lower rates of polar body extrusion (59.6 vs. 69%; 731/1230 vs. 608/857) and fusion (71.4 vs. 78.8%; 360/497 vs. 364/465; P < 0.06). There were no differences in total rate of blastocysts development (60 vs. 59.8%; small vs. large), or any grade classification. A significant interaction was detected between follicle size and embryo grade with G3 embryos from small follicles having a greater cell number. Developmental competence of G1 and G2 embryos did not differ at day 27 (48 vs. 46%; 16/33 vs. 17/37; small vs. large). Although there were no differences in fetal size between the two groups, differences in allantois length (53 vs. 86 mm; small vs. large; P < 0.002) and allantois width (9.5 vs. 13 mm; small vs. large; P < 0.06) were seen. No differences in survival to term (2/13 in each group) were observed. These results indicate that cytoplasts from follicles of 1-3 and 6-12 mm in diameter are equally developmentally competent when used in a nuclear transfer procedure.

Animals↗

Production of cloned calves following nuclear transfer with cultured adult mural granulosa cells.

Adult somatic cell nuclear transfer was used to determine the totipotent potential of cultured mural granulosa cells, obtained from a Friesian dairy cow of high genetic merit. Nuclei were exposed to oocyte cytoplasm for prolonged periods by electrically fusing quiescent cultured cells to enucleated metaphase II cytoplasts 4-6 h before activation (fusion before activation [FBA] treatment). Additionally, some first-generation morulae were recloned by fusing blastomeres to S-phase cytoplasts. A significantly higher proportion of fused embryos developed in vitro to grade 1-2 blastocysts on Day 7 with FBA (27.5 +/- 2.5%) than with recloning (13.0 +/- 3.6%; p < 0. 05). After the transfer of 100 blastocysts from the FBA treatment, survival rates on Days 60, 100, 180, and term were 45%, 21%, 17%, and 10%, respectively. Ten heifer calves were delivered by elective cesarean section; all have survived. After the transfer of 16 recloned blastocysts, embryo survival on Day 60 was 38%; however, no fetuses survived to Day 100. DNA analyses confirmed that the calves are all genetically identical to the donor cow. It is suggested that the losses throughout gestation may in part be due to placental dysfunction at specific stages. The next advance in this technology will be to introduce specific genetic modifications of biomedical or agricultural interest.

Animals↗

Adult somatic cell nuclear transfer is used to preserve the last surviving cow of the Enderby Island cattle breed.

To preserve the female genetics of an endangered breed of cattle, adapted to sub-Antarctic conditions, adult somatic cell nuclear transfer was used to clone the last surviving Enderby Island cow from mural granulosa cells. Embryos reconstructed with metaphase II cytoplasts and quiescent cells were either activated and fused simultaneously (AFS) at 24 or 30 hours post maturation (hpm) or alternatively, fused 4-6 h before activation at 26-30 hpm (FBA). A significantly higher proportion of fused embryos developed in vitro to grade 1-3 blastocysts on Day 7 with FBA (39.8+/-2.8%) compared to AFS with activation either at 24 hpm (10.6+/-3.9%, P<0.01) or at 30 hpm (18.6+/-4.1%, P<0.01). Following the transfer of 74 embryos from the FBA treatment over two experiments, survival rates on Days 30, 55, 85, 150 and 190 of pregnancy were 38%, 30%, 23%, 16% and 15%, respectively. Of 22 embryos transferred in the first experiment, two calves were born alive with one calf surviving. DNA analyses confirmed that the calves were genetically identical to the Enderby Island cow. Additional pregnancies are currently ongoing. These data show that embryo development is increased by prolonged exposure of quiescent somatic cell nuclei to oocyte cytoplasm before artificial activation, possibly facilitating nuclear reprogramming. The successful demonstration of somatic cell nuclear transfer in animal conservation extends the applications of the technology beyond the main agricultural and biomedical interests.

Animal Husbandry↗

Cloning sheep from cultured embryonic cells.

The production of transgenic farm animals will be greatly enhanced with the development of cultured cell lines that remain totipotent following nuclear transfer. Here, data are presented that demonstrate the generation of both male and female cloned lambs from two established embryonic cell lines. Cytoplasts derived from in vivo oocytes resulted in slightly greater development to blastocyst (24% v. 17%) and survival to term (7% v. 2%) compared with in vitro oocytes. There was no advantage in co-culturing cloned embryos with oviductal epithelial cells compared with synthetic oviductal fluid medium in terms of development to blastocyst (18% v. 31%) or survival to term (both 8%). Although the survival of cloned embryos immediately after transfer was high based on 'biochemical' pregnancy, 64-80% of embryos failed over the attachment phase with in vivo cytoplasts. Although the co-transfer of trophoblastic vesicles improved embryo survival to Day 35 (45% v. 25%), there was no difference at term. A high proportion of fetuses were lost during the last trimester (43%), resulting in 11% of embryos transferred developing to term using in vivo cytoplasts (12/112). Five lambs have survived and two rams are fertile. The current nuclear transfer process is inefficient and further research is needed to improve the development of healthy fetuses.

Animals↗

ES cell cycle rates affect gene targeting frequencies.

We have investigated the gene targeting frequency at the hprt locus in a range of embryonic stem cell lines selected for variations in cell cycle parameters. Our results show that targeting frequency varies with cell line by as much as 12-fold between nonisogenic lines and 3-fold between isogenic lines and that a nonisogenic line can support homologous recombination events by up to 21-fold more frequently than an isogenic line. This variation is consistent with both insertion and replacement vectors. These results can be explained by an inverse linear correlation of targeting frequencies with cell doubling times. Additionally, by reducing serum concentration in the culture medium the mean cell doubling time for R1 ES cells can be increased from 11.4 to 15.7 h, with a subsequent 15-fold decrease in gene targeting frequency. This change fits the correlation found for the different nonisogenic cell lines. Our observations have important implications when performing gene targeting experiments and explain some of the variation noted between experiments.

Animals↗

Production of cloned lambs from an established embryonic cell line: a comparison between in vivo- and in vitro-matured cytoplasts.

Nuclear transfer procedures were used to determine the in vivo developmental potential of an ovine embryonic cell line isolated from the inner cell mass of a Day 8 blastocyst-stage embryo. This cell line possessed a differentiated epithelial-like cell morphology. In this study, a comparison was made between in vivo- and in vitro-derived oocytes used as recipient cytoplasts in the nuclear transfer procedure. Cultured cells were induced to quiesce and enter presumptive G0 before being used as donor karyoplasts between passages 8 and 16 of culture. After cell fusion, reconstructed embryos were cultured for 6 days in vitro in embryo culture medium. Blastocyst-stage embryos were subsequently transferred to synchronized recipient ewes (n = 37), and development was allowed to proceed to term. There was a significant effect of source of recipient cytoplast, with development being consistently greater with in vivo compared to in vitro cytoplasts in terms of, respectively, blastocysts produced (24.2 +/- 3.8% vs. 17.1 +/- 2.3%; p = 0.1), Day 35 pregnancy rate (40.0% vs. 9.1 %; p < 0.05), and Day 35 embryo survival (19.4% vs. 4.5%; p < 0.05). A high proportion of fetuses died during late gestation (5 of 8). The major abnormalities were associated with the urogenital tract. However, three lambs were delivered alive following cesarean section on Day 147. One lamb, derived from an in vitro-matured oocyte, died after 10 min, while the remaining two from in vivo-ovulated oocytes are apparently normal and healthy. DNA microsatellite markers conclusively show that the three lambs are genetically identical and were derived from the embryonic cell line. In conclusion, some cells from this blastocyst-derived embryonic cell line are totipotent by nuclear transfer and can produce viable offspring.

Animals↗