-
1
-
-
84868342049
-
In vivo genome editing using a high-efficiency TALEN system
-
Bedell, V. M., Wang, Y., Campbell, J. M., Poshusta, T. L., Starker, C. G., Krug, R. G., Tan, W., Penheiter, S. G., Ma, A. C., Leung, A. Y. et al. (2012). In vivo genome editing using a high-efficiency TALEN system. Nature 491, 114-118.
-
(2012)
Nature
, vol.491
, pp. 114-118
-
-
Bedell, V.M.1
Wang, Y.2
Campbell, J.M.3
Poshusta, T.L.4
Starker, C.G.5
Krug, R.G.6
Tan, W.7
Penheiter, S.G.8
Ma, A.C.9
Leung, A.Y.10
-
2
-
-
84876278422
-
The CRISPR system - keeping zebrafish gene targeting fresh
-
Blackburn, P. R., Campbell, J. M., Clark, K. J. and Ekker, S. C. (2013). The CRISPR system - keeping zebrafish gene targeting fresh. Zebrafish 10, 116-118.
-
(2013)
Zebrafish
, vol.10
, pp. 116-118
-
-
Blackburn, P.R.1
Campbell, J.M.2
Clark, K.J.3
Ekker, S.C.4
-
3
-
-
80051535219
-
Genome engineering with zinc-finger nucleases
-
Carroll, D. (2011). Genome engineering with zinc-finger nucleases. Genetics 188, 773-782.
-
(2011)
Genetics
, vol.188
, pp. 773-782
-
-
Carroll, D.1
-
4
-
-
84876409836
-
Genome editing with RNA-guided Cas9 nuclease in zebrafish embryos
-
Chang, N., Sun, C., Gao, L., Zhu, D., Xu, X., Zhu, X., Xiong, J. W. and Xi, J. J.(2013). Genome editing with RNA-guided Cas9 nuclease in zebrafish embryos. Cell Res. 23, 465-472.
-
(2013)
Cell Res
, vol.23
, pp. 465-472
-
-
Chang, N.1
Sun, C.2
Gao, L.3
Zhu, D.4
Xu, X.5
Zhu, X.6
Xiong, J.W.7
Xi, J.J.8
-
5
-
-
84874624936
-
Targeted genome engineering in human cells with the Cas9 RNA-guided endonuclease
-
Cho, S. W., Kim, S., Kim, J. M. and Kim, J. S. (2013). Targeted genome engineering in human cells with the Cas9 RNA-guided endonuclease. Nat. Biotechnol. 31, 230-232.
-
(2013)
Nat. Biotechnol
, vol.31
, pp. 230-232
-
-
Cho, S.W.1
Kim, S.2
Kim, J.M.3
Kim, J.S.4
-
6
-
-
84873729095
-
Multiplex genome engineering using CRISPR/Cas systems
-
Cong, L., Ran, F. A., Cox, D., Lin, S., Barretto, R., Habib, N., Hsu, P. D., Wu, X., Jiang, W., Marraffini, L. A. et al. (2013). Multiplex genome engineering using CRISPR/Cas systems. Science 339, 819-823.
-
(2013)
Science
, vol.339
, pp. 819-823
-
-
Cong, L.1
Ran, F.A.2
Cox, D.3
Lin, S.4
Barretto, R.5
Habib, N.6
Hsu, P.D.7
Wu, X.8
Jiang, W.9
Marraffini, L.A.10
-
7
-
-
80054832080
-
Expanded GGGGCC hexanucleotide repeat in noncoding region of C9ORF72 causes chromosome 9p-linked FTD and ALS
-
DeJesus-Hernandez, M., Mackenzie, I. R., Boeve, B. F., Boxer, A. L., Baker, M., Rutherford, N. J., Nicholson, A. M., Finch, N. A., Flynn, H., Adamson, J. et al. (2011). Expanded GGGGCC hexanucleotide repeat in noncoding region of C9ORF72 causes chromosome 9p-linked FTD and ALS. Neuron 72, 245-256.
-
(2011)
Neuron
, vol.72
, pp. 245-256
-
-
Dejesus-Hernandez, M.1
Mackenzie, I.R.2
Boeve, B.F.3
Boxer, A.L.4
Baker, M.5
Rutherford, N.J.6
Nicholson, A.M.7
Finch, N.A.8
Flynn, H.9
Adamson, J.10
-
8
-
-
84879264708
-
ZFN, TALEN, and CRISPR/Cas-based methods for genome engineering
-
Gaj, T., Gersbach, C. A. and Barbas, C. F., III (2013). ZFN, TALEN, and CRISPR/Cas-based methods for genome engineering. Trends Biotechnol. 31, 397-405.
-
(2013)
Trends Biotechnol
, vol.31
, pp. 397-405
-
-
Gaj, T.1
Gersbach, C.A.2
Barbas, C.F.3
-
9
-
-
83555166183
-
A C9orf72 promoter repeat expansion in a Flanders-Belgian cohort with disorders of the frontotemporal lobar degeneration-amyotrophic lateral sclerosis spectrum: A gene identification study
-
Gijselinck, I., Van Langenhove, T., van der Zee, J., Sleegers, K., Philtjens, S., Kleinberger, G., Janssens, J., Bettens, K., Van Cauwenberghe, C., Pereson, S. et al. (2012). A C9orf72 promoter repeat expansion in a Flanders-Belgian cohort with disorders of the frontotemporal lobar degeneration-amyotrophic lateral sclerosis spectrum: a gene identification study. Lancet Neurol. 11, 54-65.
-
(2012)
Lancet Neurol
, vol.11
, pp. 54-65
-
-
Gijselinck, I.1
van Langenhove, T.2
Van der Zee, J.3
Sleegers, K.4
Philtjens, S.5
Kleinberger, G.6
Janssens, J.7
Bettens, K.8
van Cauwenberghe, C.9
Pereson, S.10
-
10
-
-
84878693246
-
RNA-guided genome editing à la carte
-
Horvath, P. and Barrangou, R. (2013). RNA-guided genome editing à la carte. Cell Res. 23, 733-734.
-
(2013)
Cell Res
, vol.23
, pp. 733-734
-
-
Horvath, P.1
Barrangou, R.2
-
11
-
-
84879949311
-
Heritable and precise zebrafish genome editing using a CRISPR-Cas system
-
Hwang, W. Y., Fu, Y., Reyon, D., Maeder, M. L., Kaini, P., Sander, J. D., Joung, J. K., Peterson, R. T. and Yeh, J. R. (2013a). Heritable and precise zebrafish genome editing using a CRISPR-Cas system. PLoS ONE 8, e68708.
-
(2013)
PLoS ONE
, vol.8
-
-
Hwang, W.Y.1
Fu, Y.2
Reyon, D.3
Maeder, M.L.4
Kaini, P.5
Sander, J.D.6
Joung, J.K.7
Peterson, R.T.8
Yeh, J.R.9
-
12
-
-
84874617789
-
Efficient genome editing in zebrafish using a CRISPR-Cas system
-
Hwang, W. Y., Fu, Y., Reyon, D., Maeder, M. L., Tsai, S. Q., Sander, J. D., Peterson, R. T., Yeh, J. R. and Joung, J. K. (2013b). Efficient genome editing in zebrafish using a CRISPR-Cas system. Nat. Biotechnol. 31, 227-229.
-
(2013)
Nat. Biotechnol
, vol.31
, pp. 227-229
-
-
Hwang, W.Y.1
Fu, Y.2
Reyon, D.3
Maeder, M.L.4
Tsai, S.Q.5
Sander, J.D.6
Peterson, R.T.7
Yeh, J.R.8
Joung, J.K.9
-
13
-
-
84882788354
-
Efficient multiplex biallelic zebrafish genome editing using a CRISPR nuclease system
-
in press, doi: 10.1073/pnas.1308335110
-
Jao, L. E., Wente, S. R. and Chen, W. (2013). Efficient multiplex biallelic zebrafish genome editing using a CRISPR nuclease system. Proc. Natl. Acad. Sci. USA (in press), doi: 10.1073/pnas.1308335110.
-
(2013)
Proc. Natl. Acad. Sci. USA
-
-
Jao, L.E.1
Wente, S.R.2
Chen, W.3
-
14
-
-
84865070369
-
A programmable dual-RNA-guided DNA endonuclease in adaptive bacterial immunity
-
Jinek, M., Chylinski, K., Fonfara, I., Hauer, M., Doudna, J. A. and Charpentier, E. (2012). A programmable dual-RNA-guided DNA endonuclease in adaptive bacterial immunity. Science 337, 816-821.
-
(2012)
Science
, vol.337
, pp. 816-821
-
-
Jinek, M.1
Chylinski, K.2
Fonfara, I.3
Hauer, M.4
Doudna, J.A.5
Charpentier, E.6
-
15
-
-
84876567971
-
RNA-programmed genome editing in human cells
-
Jinek, M., East, A., Cheng, A., Lin, S., Ma, E. and Doudna, J. (2013) RNA-programmed genome editing in human cells. eLife 2, e00471.
-
(2013)
ELife
, vol.2
-
-
Jinek, M.1
East, A.2
Cheng, A.3
Lin, S.4
Ma, E.5
Doudna, J.6
-
16
-
-
84871519181
-
TALENs: A widely applicable technology for targeted genome editing
-
Joung, J. K. and Sander, J. D. (2013). TALENs: a widely applicable technology for targeted genome editing. Nat. Rev. Mol. Cell Biol. 14, 49-55.
-
(2013)
Nat. Rev. Mol. Cell Biol
, vol.14
, pp. 49-55
-
-
Joung, J.K.1
Sander, J.D.2
-
17
-
-
0029045033
-
Stages of embryonic development of the zebrafish
-
Kimmel, C. B., Ballard, W. W., Kimmel, S. R., Ullmann, B. and Schilling, T. F. (1995) Stages of embryonic development of the zebrafish. Dev. Dyn. 203, 253-310.
-
(1995)
Dev. Dyn
, vol.203
, pp. 253-310
-
-
Kimmel, C.B.1
Ballard, W.W.2
Kimmel, S.R.3
Ullmann, B.4
Schilling, T.F.5
-
18
-
-
84873734105
-
RNA-guided human genome engineering via Cas9
-
Mali, P., Yang, L., Esvelt, K. M., Aach, J., Guell, M., DiCarlo, J. E., Norville, J. E. and Church, G. M. (2013). RNA-guided human genome engineering via Cas9. Science 339, 823-826.
-
(2013)
Science
, vol.339
, pp. 823-826
-
-
Mali, P.1
Yang, L.2
Esvelt, K.M.3
Aach, J.4
Guell, M.5
Dicarlo, J.E.6
Norville, J.E.7
Church, G.M.8
-
19
-
-
84874962380
-
The C9orf72 GGGGCC repeat is translated into aggregating dipeptide-repeat proteins in FTLD/ALS
-
Mori, K., Weng, S. M., Arzberger, T., May, S., Rentzsch, K., Kremmer, E., Schmid, B., Kretzschmar, H. A., Cruts, M., Van Broeckhoven, C. et al. (2013). The C9orf72 GGGGCC repeat is translated into aggregating dipeptide-repeat proteins in FTLD/ALS. Science 339, 1335-1338.
-
(2013)
Science
, vol.339
, pp. 1335-1338
-
-
Mori, K.1
Weng, S.M.2
Arzberger, T.3
May, S.4
Rentzsch, K.5
Kremmer, E.6
Schmid, B.7
Kretzschmar, H.A.8
Cruts, M.9
van Broeckhoven, C.10
-
20
-
-
80054837386
-
ITALSGEN Consortium (2011). A hexanucleotide repeat expansion in C9ORF72 is the cause of chromosome 9p21-linked ALS-FTD
-
Renton, A. E., Majounie, E., Waite, A., Simón-Sánchez, J., Rollinson, S., Gibbs, J. R., Schymick, J. C., Laaksovirta, H., van Swieten, J. C., Myllykangas, L. et al.; ITALSGEN Consortium (2011). A hexanucleotide repeat expansion in C9ORF72 is the cause of chromosome 9p21-linked ALS-FTD. Neuron 72, 257-268.
-
Neuron
, vol.72
, pp. 257-268
-
-
Renton, A.E.1
Majounie, E.2
Waite, A.3
Simón-Sánchez, J.4
Rollinson, S.5
Gibbs, J.R.6
Schymick, J.C.7
Laaksovirta, H.8
van Swieten, J.C.9
Myllykangas, L.10
-
21
-
-
84875508368
-
Loss of ALS-associated TDP-43 in zebrafish causes muscle degeneration, vascular dysfunction, and reduced motor neuron axon outgrowth
-
Schmid, B., Hruscha, A., Hogl, S., Banzhaf-Strathmann, J., Strecker, K., van der Zee, J., Teucke, M., Eimer, S., Hegermann, J., Kittelmann, M. et al. (2013). Loss of ALS-associated TDP-43 in zebrafish causes muscle degeneration, vascular dysfunction, and reduced motor neuron axon outgrowth. Proc. Natl. Acad. Sci. USA 110, 4986-4991.
-
(2013)
Proc. Natl. Acad. Sci. USA
, vol.110
, pp. 4986-4991
-
-
Schmid, B.1
Hruscha, A.2
Hogl, S.3
Banzhaf-Strathmann, J.4
Strecker, K.5
van der Zee, J.6
Teucke, M.7
Eimer, S.8
Hegermann, J.9
Kittelmann, M.10
-
22
-
-
38349173569
-
Missense mutations in the progranulin gene linked to frontotemporal lobar degeneration with ubiquitin-immunoreactive inclusions reduce progranulin production and secretion
-
Shankaran, S. S., Capell, A., Hruscha, A. T., Fellerer, K., Neumann, M., Schmid, B. and Haass, C. (2008). Missense mutations in the progranulin gene linked to frontotemporal lobar degeneration with ubiquitin-immunoreactive inclusions reduce progranulin production and secretion. J. Biol. Chem. 283, 1744-1753.
-
(2008)
J. Biol. Chem
, vol.283
, pp. 1744-1753
-
-
Shankaran, S.S.1
Capell, A.2
Hruscha, A.T.3
Fellerer, K.4
Neumann, M.5
Schmid, B.6
Haass, C.7
-
23
-
-
84877103949
-
Generation of gene-modified mice via Cas9/RNA-mediated gene targeting
-
Shen, B., Zhang, J., Wu, H., Wang, J., Ma, K., Li, Z., Zhang, X., Zhang, P. and Huang, X. (2013). Generation of gene-modified mice via Cas9/RNA-mediated gene targeting. Cell Res. 23, 720-723.
-
(2013)
Cell Res
, vol.23
, pp. 720-723
-
-
Shen, B.1
Zhang, J.2
Wu, H.3
Wang, J.4
Ma, K.5
Li, Z.6
Zhang, X.7
Zhang, P.8
Huang, X.9
-
24
-
-
84887031752
-
Loss of Bace2 in zebrafish affects melanocyte migration and is distinct from Bace1 knock out phenotypes
-
in press, doi: 10.1111/jnc.12198
-
van Bebber, F., Hruscha, A., Willem, M., Schmid, B. and Haass, C. (2013). Loss of Bace2 in zebrafish affects melanocyte migration and is distinct from Bace1 knock out phenotypes. J. Neurochem. (in press). doi: 10.1111/jnc.12198.
-
(2013)
J. Neurochem
-
-
van Bebber, F.1
Hruscha, A.2
Willem, M.3
Schmid, B.4
Haass, C.5
-
25
-
-
84877707375
-
One-step generation of mice carrying mutations in multiple genes by CRISPR/Cas-mediated genome engineering
-
Wang, H., Yang, H., Shivalila, C. S., Dawlaty, M. M., Cheng, A. W., Zhang, F. and Jaenisch, R. (2013). One-step generation of mice carrying mutations in multiple genes by CRISPR/Cas-mediated genome engineering. Cell 153, 910-918.
-
(2013)
Cell
, vol.153
, pp. 910-918
-
-
Wang, H.1
Yang, H.2
Shivalila, C.S.3
Dawlaty, M.M.4
Cheng, A.W.5
Zhang, F.6
Jaenisch, R.7
-
26
-
-
84857097177
-
RNA-guided genetic silencing systems in bacteria and archaea
-
Wiedenheft, B., Sternberg, S. H. and Doudna, J. A. (2012). RNA-guided genetic silencing systems in bacteria and archaea. Nature 482, 331-338.
-
(2012)
Nature
, vol.482
, pp. 331-338
-
-
Wiedenheft, B.1
Sternberg, S.H.2
Doudna, J.A.3
|