335
Using Xenopus to Understand Pluripotency
A., & Campbell, K. H. (2000). Cloned pigs produced by
nuclear transfer from adult somatic cells. Nature, 407(6800),
86–90. https://doi.org/10.1038/35024082
Polo, J. M., Liu, S., Figueroa, M. E., Kulalert, W., Eminli, S., Tan,
K.Y., Apostolou, E., Stadtfeld, M., Li, Y., Shioda, T., Natesan,
S., Wagers, A. J., Melnick, A., Evans, T., & Hochedlinger,
K. (2010). Cell type of origin infuences the molecular and
functional properties of mouse induced pluripotent stem
cells. Nature Biotechnology, 28(8), 848–855. https://doi.
org/10.1038/nbt.1667
Prather, R. S., Barnes, F. L., Sims, M. M., Robl, J. M., Eyestone,
W. H., & First, N. L. (1987). Nuclear transplantation in the
bovine embryo: Assessment of donor nuclei and recipient
oocyte. Biology of Reproduction, 37(4), 859–866. https://doi.
org/10.1095/biolreprod37.4.859
Simonsson, S., & Gurdon, J. (2004). DNA demethylation is necessary for the epigenetic reprogramming of somatic cell
nuclei. Nature Cell Biology, 6(10), 984–990. https://doi.
org/10.1038/ncb1176
Singhal, N., Graumann, J., Wu, G., Araúzo-Bravo, M. J., Han,
D. W., Greber, B., Gentile, L., Mann, M., & Schöler, H.
R. (2010). Chromatin-remodeling components of the BAF
complex facilitate reprogramming. Cell, 141(6), 943–955.
https://doi.org/10.1016/j.cell.2010.04.037
Stewart-Morgan, K. R., Petryk, N., & Groth, A. (2020). Chromatin
replication and epigenetic cell memory. Nature Cell Biology,
22 (4), 361–371. https://doi.org/10.1038/s41556-020-0487-y
Tachibana, M., Amato, P., Sparman, M., Gutierrez, N. M., TippnerHedges, R., Ma, H., Kang, E., Fulati, A., Lee, H.-S.,
Sritanaudomchai, H., Masterson, K., Larson, J., Eaton, D.,
Sadler-Fredd, K., Battaglia, D., Lee, D., Wu, D., Jensen, J.,
Patton, P., . . . Mitalipov, S. (2013). Human embryonic stem
cells derived by somatic cell nuclear transfer. Cell, 153(6),
1228–1238. https://doi.org/10.1016/j.cell.2013.05.006
Takahashi, K., & Yamanaka, S. (2006). Induction of pluripotent
stem cells from mouse embryonic and adult f broblast cultures by defned factors. Cell, 126(4), 663–676. https://doi.
org/10.1016/j.cell.2006.07.024
Tamada, H., Van Thuan, N., Reed, P., Nelson, D., Katoku-Kikyo,
N., Wudel, J., Wakayama, T., & Kikyo, N. (2006). Chromatin
decondensation and nuclear reprogramming by nucleoplasmin. Molecular and Cellular Biology, 26(4), 1259–1271.
https://doi.org/10.1128/MCB.26.4.1259-1271.2006
Teperek, M., Simeone, A., Gaggioli, V., Miyamoto, K., Allen,
G. E., Erkek, S., Kwon, T., Marcotte, E. M., Zegerman, P.,
Bradshaw, C. R., Peters, A. H., Gurdon, J. B., & Jullien, J.
(2016). Sperm is epigenetically programmed to regulate gene
transcription in embryos. Genome Research, 26(8), 1034–
1046. https://doi.org/10.1101/gr.201541.115
Teranishi, T., Tanaka, M., Kimoto, S., Ono, Y., Miyakoshi, K.,
Kono, T., & Yoshimura, Y. (2004). Rapid replacement of
somatic linker histones with the oocyte-specifc linker histone H1foo in nuclear transfer. Developmental Biology,
266 (1), 76–86. https://doi.org/10.1016/j.ydbio.2003.10.004
Thomson, J. A., Itskovitz-Eldor, J., Shapiro, S. S., Waknitz, M.
A., Swiergiel, J. J., Marshall, V. S., & Jones, J. M. (1998).
Embryonic stem cell lines derived from human blastocysts.
Science, 282(5391), 1145–1147. https://doi.org/10.1126/
science.282.5391.1145
Tsunoda, Y., Yasui, T., Shioda, Y., Nakamura, K., Uchida, T., &
Sugie, T. (1987). Full-term development of mouse blastomere nuclei transplanted into enucleated two-cell embryos.
Journal of Experimental Zoology, 242(2), 147–151. https://
doi.org/10.1002/jez.1402420205
Wakayama, T., Perry, A. C., Zuccotti, M., Johnson, K. R., &
Yanagimachi, R. (1998). Full-term development of mice
from enucleated oocytes injected with cumulus cell nuclei.
Nature, 394 (6691), 369–374. https://doi.org/10.1038/28615
Weismann, A. (1893). The germ-plasm: A theory of heredity.
Translated by W. Newton Parker and Harriet Rönnfeldt.
Scribner, New York.
Wilmut, I., Schnieke, A. E., McWhir, J., Kind, A. J., & Campbell,
K. H. S. (1997). Viable offspring derived from fetal and adult
mammalian cells. Nature, 385(6619), 810–813. https://doi.
org/10.1038/385810a0
Zhang, M., Wang, F., Kou, Z., Zhang, Y., & Gao, S. (2009).
Defective chromatin structure in somatic cell cloned mouse
embryos. The Journal of Biological Chemistry, 284(37),
24981–24987. https://doi.org/10.1074/jbc.M109.011973
Zhou, C., Wang, Y., Zhang, J., Su, J., An, Q., Liu, X., Zhang, M.,
Wang, Y., Liu, J., & Zhang, Y. (2019). H3K27me3 is an
epigenetic barrier while KDM6A overexpression improves
nuclear reprogramming eff ciency. FASEB Journal: Offcial
Publication of the Federation of American Societies for
Experimental Biology, 33(3), 4638–4652. https://doi.
org/10.1096/fj.201801887R
Using Xenopus to Understand Pluripotency
A., & Campbell, K. H. (2000). Cloned pigs produced by
nuclear transfer from adult somatic cells. Nature, 407(6800),
86–90. https://doi.org/10.1038/35024082
Polo, J. M., Liu, S., Figueroa, M. E., Kulalert, W., Eminli, S., Tan,
K.Y., Apostolou, E., Stadtfeld, M., Li, Y., Shioda, T., Natesan,
S., Wagers, A. J., Melnick, A., Evans, T., & Hochedlinger,
K. (2010). Cell type of origin infuences the molecular and
functional properties of mouse induced pluripotent stem
cells. Nature Biotechnology, 28(8), 848–855. https://doi.
org/10.1038/nbt.1667
Prather, R. S., Barnes, F. L., Sims, M. M., Robl, J. M., Eyestone,
W. H., & First, N. L. (1987). Nuclear transplantation in the
bovine embryo: Assessment of donor nuclei and recipient
oocyte. Biology of Reproduction, 37(4), 859–866. https://doi.
org/10.1095/biolreprod37.4.859
Simonsson, S., & Gurdon, J. (2004). DNA demethylation is necessary for the epigenetic reprogramming of somatic cell
nuclei. Nature Cell Biology, 6(10), 984–990. https://doi.
org/10.1038/ncb1176
Singhal, N., Graumann, J., Wu, G., Araúzo-Bravo, M. J., Han,
D. W., Greber, B., Gentile, L., Mann, M., & Schöler, H.
R. (2010). Chromatin-remodeling components of the BAF
complex facilitate reprogramming. Cell, 141(6), 943–955.
https://doi.org/10.1016/j.cell.2010.04.037
Stewart-Morgan, K. R., Petryk, N., & Groth, A. (2020). Chromatin
replication and epigenetic cell memory. Nature Cell Biology,
22 (4), 361–371. https://doi.org/10.1038/s41556-020-0487-y
Tachibana, M., Amato, P., Sparman, M., Gutierrez, N. M., TippnerHedges, R., Ma, H., Kang, E., Fulati, A., Lee, H.-S.,
Sritanaudomchai, H., Masterson, K., Larson, J., Eaton, D.,
Sadler-Fredd, K., Battaglia, D., Lee, D., Wu, D., Jensen, J.,
Patton, P., . . . Mitalipov, S. (2013). Human embryonic stem
cells derived by somatic cell nuclear transfer. Cell, 153(6),
1228–1238. https://doi.org/10.1016/j.cell.2013.05.006
Takahashi, K., & Yamanaka, S. (2006). Induction of pluripotent
stem cells from mouse embryonic and adult f broblast cultures by defned factors. Cell, 126(4), 663–676. https://doi.
org/10.1016/j.cell.2006.07.024
Tamada, H., Van Thuan, N., Reed, P., Nelson, D., Katoku-Kikyo,
N., Wudel, J., Wakayama, T., & Kikyo, N. (2006). Chromatin
decondensation and nuclear reprogramming by nucleoplasmin. Molecular and Cellular Biology, 26(4), 1259–1271.
https://doi.org/10.1128/MCB.26.4.1259-1271.2006
Teperek, M., Simeone, A., Gaggioli, V., Miyamoto, K., Allen,
G. E., Erkek, S., Kwon, T., Marcotte, E. M., Zegerman, P.,
Bradshaw, C. R., Peters, A. H., Gurdon, J. B., & Jullien, J.
(2016). Sperm is epigenetically programmed to regulate gene
transcription in embryos. Genome Research, 26(8), 1034–
1046. https://doi.org/10.1101/gr.201541.115
Teranishi, T., Tanaka, M., Kimoto, S., Ono, Y., Miyakoshi, K.,
Kono, T., & Yoshimura, Y. (2004). Rapid replacement of
somatic linker histones with the oocyte-specifc linker histone H1foo in nuclear transfer. Developmental Biology,
266 (1), 76–86. https://doi.org/10.1016/j.ydbio.2003.10.004
Thomson, J. A., Itskovitz-Eldor, J., Shapiro, S. S., Waknitz, M.
A., Swiergiel, J. J., Marshall, V. S., & Jones, J. M. (1998).
Embryonic stem cell lines derived from human blastocysts.
Science, 282(5391), 1145–1147. https://doi.org/10.1126/
science.282.5391.1145
Tsunoda, Y., Yasui, T., Shioda, Y., Nakamura, K., Uchida, T., &
Sugie, T. (1987). Full-term development of mouse blastomere nuclei transplanted into enucleated two-cell embryos.
Journal of Experimental Zoology, 242(2), 147–151. https://
doi.org/10.1002/jez.1402420205
Wakayama, T., Perry, A. C., Zuccotti, M., Johnson, K. R., &
Yanagimachi, R. (1998). Full-term development of mice
from enucleated oocytes injected with cumulus cell nuclei.
Nature, 394 (6691), 369–374. https://doi.org/10.1038/28615
Weismann, A. (1893). The germ-plasm: A theory of heredity.
Translated by W. Newton Parker and Harriet Rönnfeldt.
Scribner, New York.
Wilmut, I., Schnieke, A. E., McWhir, J., Kind, A. J., & Campbell,
K. H. S. (1997). Viable offspring derived from fetal and adult
mammalian cells. Nature, 385(6619), 810–813. https://doi.
org/10.1038/385810a0
Zhang, M., Wang, F., Kou, Z., Zhang, Y., & Gao, S. (2009).
Defective chromatin structure in somatic cell cloned mouse
embryos. The Journal of Biological Chemistry, 284(37),
24981–24987. https://doi.org/10.1074/jbc.M109.011973
Zhou, C., Wang, Y., Zhang, J., Su, J., An, Q., Liu, X., Zhang, M.,
Wang, Y., Liu, J., & Zhang, Y. (2019). H3K27me3 is an
epigenetic barrier while KDM6A overexpression improves
nuclear reprogramming eff ciency. FASEB Journal: Offcial
Publication of the Federation of American Societies for
Experimental Biology, 33(3), 4638–4652. https://doi.
org/10.1096/fj.201801887R
