-
1
-
-
84874194072
-
DNA methylation: Roles in mammalian development
-
Smith, Z. D., and Meissner, A. (2013) DNA methylation: roles in mammalian development. Nat. Rev. Genet. 14, 204-220
-
(2013)
Nat. Rev. Genet.
, vol.14
, pp. 204-220
-
-
Smith, Z.D.1
Meissner, A.2
-
2
-
-
84930965854
-
Notes on the role of dynamicDNAmethylation in mammalian development
-
Bestor, T. H., Edwards, J. R., and Boulard, M. (2015) Notes on the role of dynamicDNAmethylation in mammalian development. Proc. Natl. Acad. Sci. U.S.A. 112, 6796-6799
-
(2015)
Proc. Natl. Acad. Sci. U.S.A.
, vol.112
, pp. 6796-6799
-
-
Bestor, T.H.1
Edwards, J.R.2
Boulard, M.3
-
3
-
-
79952535798
-
Genomic imprinting in mammals: Its life cycle, molecular mechanisms and reprogramming
-
Li, Y., and Sasaki, H. (2011) Genomic imprinting in mammals: its life cycle, molecular mechanisms and reprogramming. Cell Res. 21, 466-473
-
(2011)
Cell Res.
, vol.21
, pp. 466-473
-
-
Li, Y.1
Sasaki, H.2
-
5
-
-
0037372003
-
Epigenetic regulation of gene expression: How the genome integrates intrinsic and environmental signals
-
Jaenisch, R., and Bird, A. (2003) Epigenetic regulation of gene expression: how the genome integrates intrinsic and environmental signals. Nat. Genet. 33, 245-254
-
(2003)
Nat. Genet.
, vol.33
, pp. 245-254
-
-
Jaenisch, R.1
Bird, A.2
-
6
-
-
84914815965
-
EnzymaticDNAoxidation: Mechanisms and biological significance
-
Xu, G. L., and Walsh, C. P. (2014) EnzymaticDNAoxidation: mechanisms and biological significance. BMB Rep. 47, 609-618
-
(2014)
BMB Rep.
, vol.47
, pp. 609-618
-
-
Xu, G.L.1
Walsh, C.P.2
-
7
-
-
84876558123
-
Reprogramming DNA methylation in the mammalian life cycle: Building and breaking epigenetic barriers
-
Seisenberger, S., Peat, J. R., Hore, T. A., Santos, F., Dean, W., and Reik, W. (2013) Reprogramming DNA methylation in the mammalian life cycle: building and breaking epigenetic barriers. Philos. Trans. R. Soc. Lond. B Biol. Sci. 368, 20110330
-
(2013)
Philos. Trans. R. Soc. Lond. B Biol. Sci.
, vol.368
, pp. 20110330
-
-
Seisenberger, S.1
Peat, J.R.2
Hore, T.A.3
Santos, F.4
Dean, W.5
Reik, W.6
-
8
-
-
66149146320
-
Conversion of 5-methylcytosine to 5-hydroxymethylcytosine in mammalian DNA by MLL partner TET1
-
Tahiliani, M., Koh, K. P., Shen, Y., Pastor, W. A., Bandukwala, H., Brudno, Y., Agarwal, S., Iyer, L. M., Liu, D. R., Aravind, L., and Rao, A. (2009) Conversion of 5-methylcytosine to 5-hydroxymethylcytosine in mammalian DNA by MLL partner TET1. Science 324, 930-935
-
(2009)
Science
, vol.324
, pp. 930-935
-
-
Tahiliani, M.1
Koh, K.P.2
Shen, Y.3
Pastor, W.A.4
Bandukwala, H.5
Brudno, Y.6
Agarwal, S.7
Iyer, L.M.8
Liu, D.R.9
Aravind, L.10
Rao, A.11
-
9
-
-
80052495940
-
Tet-mediated formation of 5-carboxylcytosine and its excision by TDG in mammalian DNA
-
He, Y. F., Li, B. Z., Li, Z., Liu, P., Wang, Y., Tang, Q., Ding, J., Jia, Y., Chen, Z., Li, L., Sun, Y., Li, X., Dai, Q., Song, C. X., Zhang, K., He, C., and Xu, G. L. (2011) Tet-mediated formation of 5-carboxylcytosine and its excision by TDG in mammalian DNA. Science 333, 1303-1307
-
(2011)
Science
, vol.333
, pp. 1303-1307
-
-
He, Y.F.1
Li, B.Z.2
Li, Z.3
Liu, P.4
Wang, Y.5
Tang, Q.6
Ding, J.7
Jia, Y.8
Chen, Z.9
Li, L.10
Sun, Y.11
Li, X.12
Dai, Q.13
Song, C.X.14
Zhang, K.15
He, C.16
Xu, G.L.17
-
10
-
-
80052461558
-
Tet proteins can convert 5-methylcytosine to 5-formylcytosine and 5-carboxylcytosine
-
Ito, S., Shen, L., Dai, Q., Wu, S. C., Collins, L. B., Swenberg, J. A., He, C., and Zhang, Y. (2011) Tet proteins can convert 5-methylcytosine to 5-formylcytosine and 5-carboxylcytosine. Science 333, 1300-1303
-
(2011)
Science
, vol.333
, pp. 1300-1303
-
-
Ito, S.1
Shen, L.2
Dai, Q.3
Wu, S.C.4
Collins, L.B.5
Swenberg, J.A.6
He, C.7
Zhang, Y.8
-
11
-
-
84954105591
-
OxidativeDNAdemethylation mediated by Tet enzymes
-
Xu, G. L., and Wong, J. M. (2015) OxidativeDNAdemethylation mediated by Tet enzymes. Nat. Sci. Rev. 2, 318-328
-
(2015)
Nat. Sci. Rev.
, vol.2
, pp. 318-328
-
-
Xu, G.L.1
Wong, J.M.2
-
12
-
-
80053917872
-
Thymine DNA glycosylase can rapidly excise 5-formylcytosine and 5-carboxylcytosine: Potential implications for active demethylation of CpG sites
-
Maiti, A., and Drohat, A. C. (2011) Thymine DNA glycosylase can rapidly excise 5-formylcytosine and 5-carboxylcytosine: potential implications for active demethylation of CpG sites. J. Biol. Chem. 286, 35334-35338
-
(2011)
J. Biol. Chem.
, vol.286
, pp. 35334-35338
-
-
Maiti, A.1
Drohat, A.C.2
-
13
-
-
84881178902
-
Tet1 regulates adult hippocampal neurogenesis and cognition
-
Zhang, R. R., Cui, Q. Y., Murai, K., Lim, Y. C., Smith, Z. D., Jin, S., Ye, P., Rosa, L., Lee, Y. K., Wu, H. P., Liu, W., Xu, Z. M., Yang, L., Ding, Y. Q., Tang, F., Meissner, A., Ding, C., Shi, Y., and Xu, G. L. (2013) Tet1 regulates adult hippocampal neurogenesis and cognition. Cell Stem Cell 13, 237-245
-
(2013)
Cell Stem Cell
, vol.13
, pp. 237-245
-
-
Zhang, R.R.1
Cui, Q.Y.2
Murai, K.3
Lim, Y.C.4
Smith, Z.D.5
Jin, S.6
Ye, P.7
Rosa, L.8
Lee, Y.K.9
Wu, H.P.10
Liu, W.11
Xu, Z.M.12
Yang, L.13
Ding, Y.Q.14
Tang, F.15
Meissner, A.16
Ding, C.17
Shi, Y.18
Xu, G.L.19
-
14
-
-
84876907152
-
Genome-wide profiling of 5-formylcytosine reveals its roles in epigenetic priming
-
Song, C. X., Szulwach, K. E., Dai, Q., Fu, Y., Mao, S. Q., Lin, L., Street, C., Li, Y., Poidevin, M., Wu, H., Gao, J., Liu, P., Li, L., Xu, G. L., Jin, P., and He, C. (2013) Genome-wide profiling of 5-formylcytosine reveals its roles in epigenetic priming. Cell 153, 678-691
-
(2013)
Cell
, vol.153
, pp. 678-691
-
-
Song, C.X.1
Szulwach, K.E.2
Dai, Q.3
Fu, Y.4
Mao, S.Q.5
Lin, L.6
Street, C.7
Li, Y.8
Poidevin, M.9
Wu, H.10
Gao, J.11
Liu, P.12
Li, L.13
Xu, G.L.14
Jin, P.15
He, C.16
-
15
-
-
84876946045
-
Genome-wide analysis reveals TET-and TDG-dependent 5-methylcytosine oxidation dynamics
-
Shen, L., Wu, H., Diep, D., Yamaguchi, S., D'Alessio, A. C., Fung, H. L., Zhang, K., and Zhang, Y. (2013) Genome-wide analysis reveals TET-and TDG-dependent 5-methylcytosine oxidation dynamics. Cell 153, 692-706
-
(2013)
Cell
, vol.153
, pp. 692-706
-
-
Shen, L.1
Wu, H.2
Diep, D.3
Yamaguchi, S.4
D'Alessio, A.C.5
Fung, H.L.6
Zhang, K.7
Zhang, Y.8
-
16
-
-
84902313706
-
Transient accumulation of 5-carboxylcytosine indicates involvement of active demethylation in lineage specification of neural stem cells
-
Wheldon, L. M., Abakir, A., Ferjentsik, Z., Dudnakova, T., Strohbuecker, S., Christie, D., Dai, N., Guan, S., Foster, J. M., Corrêa, I. R., Jr., Loose, M., Dixon, J. E., Sottile, V., Johnson, A. D., and Ruzov, A. (2014) Transient accumulation of 5-carboxylcytosine indicates involvement of active demethylation in lineage specification of neural stem cells. Cell Rep. 7, 1353-1361
-
(2014)
Cell Rep.
, vol.7
, pp. 1353-1361
-
-
Wheldon, L.M.1
Abakir, A.2
Ferjentsik, Z.3
Dudnakova, T.4
Strohbuecker, S.5
Christie, D.6
Dai, N.7
Guan, S.8
Foster, J.M.9
Corrêa, I.R.10
Loose, M.11
Dixon, J.E.12
Sottile, V.13
Johnson, A.D.14
Ruzov, A.15
-
17
-
-
84897989106
-
Tet and TDG mediate DNA demethylation essential for mesenchymal-to-epithelial transition in somatic cell reprogramming
-
Hu, X., Zhang, L., Mao, S. Q., Li, Z., Chen, J., Zhang, R. R., Wu, H. P., Gao, J., Guo, F., Liu, W., Xu, G. F., Dai, H. Q., Shi, Y. G., Li, X., Hu, B., Tang, F., Pei, D., and Xu, G. L. (2014) Tet and TDG mediate DNA demethylation essential for mesenchymal-to-epithelial transition in somatic cell reprogramming. Cell Stem Cell 14, 512-522
-
(2014)
Cell Stem Cell
, vol.14
, pp. 512-522
-
-
Hu, X.1
Zhang, L.2
Mao, S.Q.3
Li, Z.4
Chen, J.5
Zhang, R.R.6
Wu, H.P.7
Gao, J.8
Guo, F.9
Liu, W.10
Xu, G.F.11
Dai, H.Q.12
Shi, Y.G.13
Li, X.14
Hu, B.15
Tang, F.16
Pei, D.17
Xu, G.L.18
-
18
-
-
84914817563
-
Active and passive demethylation of male and female pronuclear DNA in the mammalian zygote
-
Guo, F., Li, X., Liang, D., Li, T., Zhu, P., Guo, H., Wu, X., Wen, L., Gu, T. P., Hu, B., Walsh, C. P., Li, J., Tang, F., and Xu, G. L. (2014) Active and passive demethylation of male and female pronuclear DNA in the mammalian zygote. Cell Stem Cell 15, 447-458
-
(2014)
Cell Stem Cell
, vol.15
, pp. 447-458
-
-
Guo, F.1
Li, X.2
Liang, D.3
Li, T.4
Zhu, P.5
Guo, H.6
Wu, X.7
Wen, L.8
Gu, T.P.9
Hu, B.10
Walsh, C.P.11
Li, J.12
Tang, F.13
Xu, G.L.14
-
19
-
-
84930225330
-
Gadd45a promotes DNA demethylation through TDG
-
Li, Z., Gu, T. P., Weber, A. R., Shen, J. Z., Li, B. Z., Xie, Z. G., Yin, R., Guo, F., Liu, X., Tang, F., Wang, H., Schär, P., and Xu, G. L. (2015) Gadd45a promotes DNA demethylation through TDG. Nucleic Acids Res. 43, 3986-3997
-
(2015)
Nucleic Acids Res.
, vol.43
, pp. 3986-3997
-
-
Li, Z.1
Gu, T.P.2
Weber, A.R.3
Shen, J.Z.4
Li, B.Z.5
Xie, Z.G.6
Yin, R.7
Guo, F.8
Liu, X.9
Tang, F.10
Wang, H.11
Schär, P.12
Xu, G.L.13
-
20
-
-
61849170125
-
Expression and purification of NEIL3, a human DNA glycosylase homolog
-
Krokeide, S. Z., Bolstad, N., Laerdahl, J. K., Bjørås, M., and Luna, L. (2009) Expression and purification of NEIL3, a human DNA glycosylase homolog. Protein Expr. Purif. 65, 160-164
-
(2009)
Protein Expr. Purif.
, vol.65
, pp. 160-164
-
-
Krokeide, S.Z.1
Bolstad, N.2
Laerdahl, J.K.3
Bjørås, M.4
Luna, L.5
-
21
-
-
38449102144
-
Functional analysis of promoter CpG methylation using a CpG-free luciferase reporter vector
-
Klug, M., and Rehli, M. (2006) Functional analysis of promoter CpG methylation using a CpG-free luciferase reporter vector. Epigenetics 1, 127-130
-
(2006)
Epigenetics
, vol.1
, pp. 127-130
-
-
Klug, M.1
Rehli, M.2
-
22
-
-
84894560490
-
Crystal structure of TET2-DNA complex: Insight into TET-mediated 5mC oxidation
-
Hu, L., Li, Z., Cheng, J., Rao, Q., Gong, W., Liu, M., Shi, Y. G., Zhu, J., Wang, P., and Xu, Y. (2013) Crystal structure of TET2-DNA complex: insight into TET-mediated 5mC oxidation. Cell 155, 1545-1555
-
(2013)
Cell
, vol.155
, pp. 1545-1555
-
-
Hu, L.1
Li, Z.2
Cheng, J.3
Rao, Q.4
Gong, W.5
Liu, M.6
Shi, Y.G.7
Zhu, J.8
Wang, P.9
Xu, Y.10
-
23
-
-
0033636312
-
Uracil-DNA glycosylase (UNG)-deficient mice reveal a primary role of the enzyme during DNA replication
-
Nilsen, H., Rosewell, I., Robins, P., Skjelbred, C. F., Andersen, S., Slupphaug, G., Daly, G., Krokan, H. E., Lindahl, T., and Barnes, D. E. (2000) Uracil-DNA glycosylase (UNG)-deficient mice reveal a primary role of the enzyme during DNA replication. Mol. Cell 5, 1059-1065
-
(2000)
Mol. Cell
, vol.5
, pp. 1059-1065
-
-
Nilsen, H.1
Rosewell, I.2
Robins, P.3
Skjelbred, C.F.4
Andersen, S.5
Slupphaug, G.6
Daly, G.7
Krokan, H.E.8
Lindahl, T.9
Barnes, D.E.10
-
24
-
-
80053348585
-
The role of Tet3 DNA dioxygenase in epigenetic reprogramming by oocytes
-
Gu, T. P., Guo, F., Yang, H., Wu, H. P., Xu, G. F., Liu, W., Xie, Z. G., Shi, L., He, X., Jin, S. G., Iqbal, K., Shi, Y. G., Deng, Z., Szabó, P. E., Pfeifer, G. P., Li, J., and Xu, G. L. (2011) The role of Tet3 DNA dioxygenase in epigenetic reprogramming by oocytes. Nature 477, 606-610
-
(2011)
Nature
, vol.477
, pp. 606-610
-
-
Gu, T.P.1
Guo, F.2
Yang, H.3
Wu, H.P.4
Xu, G.F.5
Liu, W.6
Xie, Z.G.7
Shi, L.8
He, X.9
Jin, S.G.10
Iqbal, K.11
Shi, Y.G.12
Deng, Z.13
Szabó, P.E.14
Pfeifer, G.P.15
Li, J.16
Xu, G.L.17
-
25
-
-
84905582980
-
TET-mediated oxidation of methylcytosine causes TDG or NEIL glycosylase dependent gene reactivation
-
Müller, U., Bauer, C., Siegl, M., Rottach, A., and Leonhardt, H. (2014) TET-mediated oxidation of methylcytosine causes TDG or NEIL glycosylase dependent gene reactivation. Nucleic Acids Res. 42, 8592-8604
-
(2014)
Nucleic Acids Res.
, vol.42
, pp. 8592-8604
-
-
Müller, U.1
Bauer, C.2
Siegl, M.3
Rottach, A.4
Leonhardt, H.5
-
26
-
-
0030841051
-
Nuclear and mitochondrial uracil-DNA glycosylases are generated by alternative splicing and transcription from different positions in the UNG gene
-
Nilsen, H., Otterlei, M., Haug, T., Solum, K., Nagelhus, T. A., Skorpen, F., and Krokan, H. E. (1997) Nuclear and mitochondrial uracil-DNA glycosylases are generated by alternative splicing and transcription from different positions in the UNG gene. Nucleic Acids Res. 25, 750-755
-
(1997)
Nucleic Acids Res.
, vol.25
, pp. 750-755
-
-
Nilsen, H.1
Otterlei, M.2
Haug, T.3
Solum, K.4
Nagelhus, T.A.5
Skorpen, F.6
Krokan, H.E.7
-
27
-
-
0028934537
-
Crystal structure and mutational analysis of human uracil-DNA glycosylase: Structural basis for specificity and catalysis
-
Mol, C. D., Arvai, A. S., Slupphaug, G., Kavli, B., Alseth, I., Krokan, H. E., and Tainer, J. A. (1995) Crystal structure and mutational analysis of human uracil-DNA glycosylase: structural basis for specificity and catalysis. Cell 80, 869-878
-
(1995)
Cell
, vol.80
, pp. 869-878
-
-
Mol, C.D.1
Arvai, A.S.2
Slupphaug, G.3
Kavli, B.4
Alseth, I.5
Krokan, H.E.6
Tainer, J.A.7
-
28
-
-
79959567069
-
Deterministic and stochastic allele specific gene expression in single mouse blastomeres
-
Tang, F., Barbacioru, C., Nordman, E., Bao, S., Lee, C., Wang, X., Tuch, B. B., Heard, E., Lao, K., and Surani, M. A. (2011) Deterministic and stochastic allele specific gene expression in single mouse blastomeres. PLoS ONE 6, e21208
-
(2011)
PLoS ONE
, vol.6
-
-
Tang, F.1
Barbacioru, C.2
Nordman, E.3
Bao, S.4
Lee, C.5
Wang, X.6
Tuch, B.B.7
Heard, E.8
Lao, K.9
Surani, M.A.10
-
29
-
-
79952713567
-
5-Hydroxymethylcytosine in the mammalian zygote is linked with epigenetic reprogramming
-
Wossidlo, M., Nakamura, T., Lepikhov, K., Marques, C. J., Zakhartchenko, V., Boiani, M., Arand, J., Nakano, T., Reik, W., and Walter, J. (2011) 5-Hydroxymethylcytosine in the mammalian zygote is linked with epigenetic reprogramming. Nat. Commun. 2, 241
-
(2011)
Nat. Commun.
, vol.2
, pp. 241
-
-
Wossidlo, M.1
Nakamura, T.2
Lepikhov, K.3
Marques, C.J.4
Zakhartchenko, V.5
Boiani, M.6
Arand, J.7
Nakano, T.8
Reik, W.9
Walter, J.10
-
31
-
-
0037108463
-
Immunoglobulin isotype switching is inhibited and somatic hypermutation perturbed in UNG-deficient mice
-
Rada, C., Williams, G. T., Nilsen, H., Barnes, D. E., Lindahl, T., and Neuberger, M. S. (2002) Immunoglobulin isotype switching is inhibited and somatic hypermutation perturbed in UNG-deficient mice. Curr. Biol. 12, 1748-1755
-
(2002)
Curr. Biol.
, vol.12
, pp. 1748-1755
-
-
Rada, C.1
Williams, G.T.2
Nilsen, H.3
Barnes, D.E.4
Lindahl, T.5
Neuberger, M.S.6
-
32
-
-
0041639515
-
Gene-targeted mice lacking the Ung uracil-DNA glycosylase develop B-cell lymphomas
-
Nilsen, H., Stamp, G., Andersen, S., Hrivnak, G., Krokan, H. E., Lindahl, T., and Barnes, D. E. (2003) Gene-targeted mice lacking the Ung uracil-DNA glycosylase develop B-cell lymphomas. Oncogene 22, 5381-5386
-
(2003)
Oncogene
, vol.22
, pp. 5381-5386
-
-
Nilsen, H.1
Stamp, G.2
Andersen, S.3
Hrivnak, G.4
Krokan, H.E.5
Lindahl, T.6
Barnes, D.E.7
-
33
-
-
84887354987
-
Active demethylation in mouse zygotes involves cytosine deamination and base excision repair
-
Santos, F., Peat, J., Burgess, H., Rada, C., Reik, W., and Dean, W. (2013) Active demethylation in mouse zygotes involves cytosine deamination and base excision repair. Epigenetics Chromatin 6, 39
-
(2013)
Epigenetics Chromatin
, vol.6
, pp. 39
-
-
Santos, F.1
Peat, J.2
Burgess, H.3
Rada, C.4
Reik, W.5
Dean, W.6
-
34
-
-
84901706067
-
Uracil-DNA glycosylase is involved inDNAdemethylation and required for embryonic development in the zebrafish embryo
-
Wu, D., Chen, L., Sun, Q., Wu, X., Jia, S., and Meng, A. (2014) Uracil-DNA glycosylase is involved inDNAdemethylation and required for embryonic development in the zebrafish embryo. J. Biol. Chem. 289, 15463-15473
-
(2014)
J. Biol. Chem.
, vol.289
, pp. 15463-15473
-
-
Wu, D.1
Chen, L.2
Sun, Q.3
Wu, X.4
Jia, S.5
Meng, A.6
-
35
-
-
77954345408
-
Genome-wide reprogramming in the mouse germ line entails the base excision repair pathway
-
Hajkova, P., Jeffries, S. J., Lee, C., Miller, N., Jackson, S. P., and Surani, M. A. (2010) Genome-wide reprogramming in the mouse germ line entails the base excision repair pathway. Science 329, 78-82
-
(2010)
Science
, vol.329
, pp. 78-82
-
-
Hajkova, P.1
Jeffries, S.J.2
Lee, C.3
Miller, N.4
Jackson, S.P.5
Surani, M.A.6
-
36
-
-
77953596050
-
Dynamic link of DNA demethylation, DNA strand breaks and repair in mouse zygotes
-
Wossidlo, M., Arand, J., Sebastiano, V., Lepikhov, K., Boiani, M., Reinhardt, R., Schöler, H., and Walter, J. (2010) Dynamic link of DNA demethylation, DNA strand breaks and repair in mouse zygotes. EMBO J. 29, 1877-1888
-
(2010)
EMBO J.
, vol.29
, pp. 1877-1888
-
-
Wossidlo, M.1
Arand, J.2
Sebastiano, V.3
Lepikhov, K.4
Boiani, M.5
Reinhardt, R.6
Schöler, H.7
Walter, J.8
-
37
-
-
84865329141
-
AID/APOBEC deaminases disfavor modified cytosines implicated in DNA demethylation
-
Nabel, C. S., Jia, H., Ye, Y., Shen, L., Goldschmidt, H. L., Stivers, J. T., Zhang, Y., and Kohli, R. M. (2012) AID/APOBEC deaminases disfavor modified cytosines implicated in DNA demethylation. Nat. Chem. Biol. 8, 751-758
-
(2012)
Nat. Chem. Biol.
, vol.8
, pp. 751-758
-
-
Nabel, C.S.1
Jia, H.2
Ye, Y.3
Shen, L.4
Goldschmidt, H.L.5
Stivers, J.T.6
Zhang, Y.7
Kohli, R.M.8
-
38
-
-
38049034968
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Cell cycle-specific UNG2 phosphorylations regulate protein turnover, activity and association with RPA
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Hagen, L., Kavli, B., Sousa, M. M., Torseth, K., Liabakk, N. B., Sundheim, O., Pena-Diaz, J., Otterlei, M., Hørning, O., Jensen, O. N., Krokan, H. E., and Slupphaug, G. (2008) Cell cycle-specific UNG2 phosphorylations regulate protein turnover, activity and association with RPA. EMBO J. 27, 51-61
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(2008)
EMBO J.
, vol.27
, pp. 51-61
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Hagen, L.1
Kavli, B.2
Sousa, M.M.3
Torseth, K.4
Liabakk, N.B.5
Sundheim, O.6
Pena-Diaz, J.7
Otterlei, M.8
Hørning, O.9
Jensen, O.N.10
Krokan, H.E.11
Slupphaug, G.12
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