Synthetic Biology Parts, Devices and Applications

(Nandana) #1
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much research, will tell which genome engineering platform will be most fruitful
for desired applications or therapeutic goals.


References


1 Pabo, C.O., Peisach, E., and Grant, R.A. (2001) Design and selection of novel
Cys 2 His 2 zinc finger proteins. Annu. Rev. Biochem., 70 , 313–340.
2 Gersbach, C.A., Gaj, T., and Barbas, C.F. 3rd (2014) Synthetic zinc finger
proteins: the advent of targeted gene regulation and genome modification
technologies. Acc. Chem. Res., 47 , 2309–2318.
3 Wyman, C. and Kanaar, R. (2006) DNA double-strand break repair: all’s well that
ends well. Annu. Rev. Genet., 40 , 363–383.
4 Hinnen, A., Hicks, J.B., and Fink, G.R. (1978) Transformation of yeast. ProcProc.
Natl. Acad. Sci. U.S.A., 75 , 1929–1933.
5 Moynahan, M.E. and Jasin, M. (1997) Loss of heterozygosity induced by a
chromosomal double-strand break. Proc. Natl. Acad. Sci. U.S.A., 94 , 8988–8993.
6 Richardson, C., Moynahan, M.E., and Jasin, M. (1998) Double-strand break
repair by interchromosomal recombination: suppression of chromosomal
translocations. Genes Dev., 12 , 3831–3842.
7 Smithies, O., Gregg, R.G., Boggs, S.S., Koralewski, M.A. et al. (1985) Insertion of
DNA sequences into the human chromosomal β-globin locus by homologous
recombination. Nature, 317 , 230–234.
8 Resnick, M.A. and Moore, P.D. (1979) Molecular recombination and the repair
of DNA double-strand breaks in CHO cells. Nucleic Acids Res., 6 , 3145–3160.
9 Rahman, S.H., Bobis-Wozowicz, S., Chatterjee, D., Gellhaus, K. et al. (2013)
The nontoxic cell cycle modulator indirubin augments transduction of adeno-
associated viral vectors and zinc-finger nuclease-mediated gene targeting.
Hum. Gene Ther., 24 , 67–77.
10 Kim, H. and Kim, J.S. (2014) A guide to genome engineering with programmable
nucleases. Nat. Rev. Genet., 15 , 321–334.
11 Moore, J.K. and Haber, J.E. (1996) Capture of retrotransposon DNA at the sites
of chromosomal double-strand breaks. Nature, 383 , 644–646.
12 Boulton, S.J. and Jackson, S.P. (1996) Saccharomyces cerevisiae Ku70 potentiates
illegitimate DNA double-strand break repair and serves as a barrier to error-
prone DNA repair pathways. EMBO J., 15 , 5093–5103.
13 Maier, D.A., Brennan, A.L., Jiang, S., Binder-Scholl, G.K. et al. (2013) Efficient
clinical scale gene modification via zinc finger nuclease-targeted disruption of
the HIV co-receptor CCR5. Hum. Gene Ther., 24 , 245–258.
14 Tebas, P., Stein, D., Tang, W.W., Frank, I. et al. (2014) Gene editing of CCR5 in
autologous CD4 T cells of persons infected with HIV. N. Engl. J. Med., 370 ,
901–910.
15 Bibikova, M., Golic, M., Golic, K.G., and Carroll, D. (2002) Targeted
chromosomal cleavage and mutagenesis in Drosophila using zinc-finger
nucleases. Genetics, 161 , 1169–1175.
16 Bibikova, M., Beumer, K., Trautman, J.K., and Carroll, D. (2003) Enhancing gene
targeting with designed zinc finger nucleases. Science, 300 , 764.

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