Synthetic Biology Parts, Devices and Applications

(Nandana) #1

130 6 Constitutive and Regulated Promoters in Yeast


126 Shimizu‐Sato, S., Huq, E., Tepperman, J.M., and Quail, P.H. (2002) A light‐
switchable gene promoter system. Nat. Biotechnol., 20 (10), 1041–1044.
127 McIsaac, R.S., Silverman, S.J., McClean, M.N., Gibney, P.A., Macinskas, J.,
Hickman, M.J., Petti, A.A., and Botstein, D. (2011) Fast‐acting and nearly
gratuitous induction of gene expression and protein depletion in
Saccharomyces cerevisiae. Mol. Biol. Cell, 22 (22), 4447–4459.
128 Louvion, J.F., Havaux‐Copf, B., and Picard, D. (1993) Fusion of GAL4‐VP16 to a
steroid‐binding domain provides a tool for gratuitous induction of galactose‐
responsive genes in yeast. Gene, 131 (1), 129–134.
129 Brambilla, A., Mainieri, D., and Agostoni Carbone, M.L. (1997) A simple signal
element mediates transcription termination and mRNA 3’ end formation in the
DEG1 gene of Saccharomyces cerevisiae. Mol. Gen. Genet., 254 (6), 681–688.
130 Wang, M., Li, S., and Zhao, H. (2016) Design end engineering of intracellular‐
metabolite‐sensing/regulation gene circuits in Saccharomyces cerevisiae.
Biotechnol. Bioeng., 113 (1), 206–215.
131 Nevozhay, D., Adams, R.M., Murphy, K.F., Josic, K., and Balázsi, G. (2009)
Negative autoregulation linearizes the dose‐response and suppresses the
heteogeneity of gene expression. Proc. Natl. Acad. Sci. U.S.A., 106 (13),
5123–5128.
132 Nevozhay, D., Zal, T., and Balázsi, G. (2013) Transferring a synthetic gene
circuit from yeast to mammalian cells. Nat. Commun., 4 , 1451.
133 Keleher, C.A., Redd, M.J., Schultz, J., Carlson, M., and Johnson, A.D. (1992)
Ssn6‐Tup1 is a general repressor of transcription in yeast. Cell, 68 (4),
709–719.
134 Tzamarias, D. and Struhl, K. (1994) Functional dissection of the yeast Cyc8‐
Tup1 transcriptional co‐repressor complex. Nature, 369 (6483), 758–761.
135 Nevoigt, E. (2008) Progress in metabolic engineering of Saccharomyces
cerevisiae. Microbiol. Mol. Biol. Rev., 72 (3), 379–412.
136 Blount, B.A., Weenink, T., and Ellis, T. (2012) Construction of synthetic
regulatory networks in yeast. FEBS Lett., 586 (15), 2112–2121.
137 Redden, H., Morse, N., and Alper, H.S. (2015) The synthetic biology toolbox for
tuning gene expression in yeast. FEMS Yeast Res., 15 (1), 1–10.
138 Endy, D. (2005) Foundations for engineering biology. Nature, 438 (7067),
449–453.
139 La Russa, M.F. and Qi, L.S. (2015) The new state of the art: Cas9 for gene
activation and repression. Mol. Cell. Biol., 35 (22), 3800–3809.
140 Reider Apel, A.A., d’Espaux, L., Wehrs, M., Sachs, D., Li, R.A., Tong, G.J.,
Garber, M., Nnadi, O., Zhuang, W., Hillson, N.J., Keasling, J.D., and
Mukhopadhyay, A. (2017) A Cas9‐based toolkit to program gene expression in
Saccharomyces cerevisiae. Nucleic Acids Res., 45 (1), 496–508.
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