-
1
-
-
57649207910
-
How do bacterial cells ensure that metalloproteins get the correct metal?
-
Waldron KJ, Robinson NJ. 2009. How do bacterial cells ensure that metalloproteins get the correct metal? Nat Rev Microbiol 7:25-35. http://dx.doi.org/10.1038/nrmicro2057.
-
(2009)
Nat Rev Microbiol
, vol.7
, pp. 25-35
-
-
Waldron, K.J.1
Robinson, N.J.2
-
2
-
-
33845698923
-
Repression of ADH1 and ADH3 during zinc deficiency by Zap1-induced intergenic RNA transcripts
-
Bird AJ, Gordon M, Eide DJ, Winge DR. 2006. Repression of ADH1 and ADH3 during zinc deficiency by Zap1-induced intergenic RNA transcripts. EMBOJ 25:5726-5734. http://dx.doi.org/10.1038/sj.emboj.7601453.
-
(2006)
EMBOJ
, vol.25
, pp. 5726-5734
-
-
Bird, A.J.1
Gordon, M.2
Eide, D.J.3
Winge, D.R.4
-
3
-
-
1842524183
-
The Zap1 transcriptional activator also acts as a repressor by binding downstream of the TATA box in ZRT2
-
Bird AJ, Blankman E, Stillman DJ, Eide DJ, Winge DR. 2004. The Zap1 transcriptional activator also acts as a repressor by binding downstream of the TATA box in ZRT2. EMBOJ 23:1123-1132. http://dx.doi.org/10.1038/sj.emboj.7600122.
-
(2004)
EMBOJ
, vol.23
, pp. 1123-1132
-
-
Bird, A.J.1
Blankman, E.2
Stillman, D.J.3
Eide, D.J.4
Winge, D.R.5
-
4
-
-
0030794279
-
Zap1p, a metalloregulatory protein involved in zinc-responsive transcriptional regulation in Saccharomyces cerevisiae
-
Zhao H, Eide DJ. 1997. Zap1p, a metalloregulatory protein involved in zinc-responsive transcriptional regulation in Saccharomyces cerevisiae. Mol Cell Biol 17:5044-5052.
-
(1997)
Mol Cell Biol
, vol.17
, pp. 5044-5052
-
-
Zhao, H.1
Eide, D.J.2
-
5
-
-
0034660257
-
Zinc transporters that regulate vacuolar zinc storage in Saccharomyces cerevisiae
-
MacDiarmid CW, Gaither LA, Eide D. 2000. Zinc transporters that regulate vacuolar zinc storage in Saccharomyces cerevisiae. EMBO J 19:2845-2855.
-
(2000)
EMBO J
, vol.19
, pp. 2845-2855
-
-
MacDiarmid, C.W.1
Gaither, L.A.2
Eide, D.3
-
6
-
-
84884317999
-
Zinc finger protein Loz1 is required for zinc-responsive regulation of gene expression in fission yeast
-
Corkins ME, May M, Ehrensberger KM, Hu YM, Liu YH, Bloor SD, Jenkins B, Runge KW, Bird AJ. 2013. Zinc finger protein Loz1 is required for zinc-responsive regulation of gene expression in fission yeast. Proc Natl Acad Sci U S A 110:15371-15376. http://dx.doi.org/10.1073/pnas.1300853110.
-
(2013)
Proc Natl Acad Sci U S A
, vol.110
, pp. 15371-15376
-
-
Corkins, M.E.1
May, M.2
Ehrensberger, K.M.3
Hu, Y.M.4
Liu, Y.H.5
Bloor, S.D.6
Jenkins, B.7
Runge, K.W.8
Bird, A.J.9
-
7
-
-
0041853577
-
Putative zinc-sensing zinc fingers of metal-response element-binding transcription factor-1 stabilize a metal-dependent chromatin complex on the endogenous metallothionein-I promoter
-
Jiang H, Daniels PJ, Andrews GK. 2003. Putative zinc-sensing zinc fingers of metal-response element-binding transcription factor-1 stabilize a metal-dependent chromatin complex on the endogenous metallothionein-I promoter. J Biol Chem 278:30394-30402. http://dx.doi.org/10.1074/jbc.M303598200.
-
(2003)
J Biol Chem
, vol.278
, pp. 30394-30402
-
-
Jiang, H.1
Daniels, P.J.2
Andrews, G.K.3
-
8
-
-
0029009956
-
Functional domains of the heavy metal-responsive transcription regulator MTF-1
-
Radtke F, Georgiev O, Muller HP, Brugnera E, Schaffner W. 1995. Functional domains of the heavy metal-responsive transcription regulator MTF-1. Nucleic Acids Res 23:2277-2286. http://dx.doi.org/10.1093/nar/23.12.2277.
-
(1995)
Nucleic Acids Res
, vol.23
, pp. 2277-2286
-
-
Radtke, F.1
Georgiev, O.2
Muller, H.P.3
Brugnera, E.4
Schaffner, W.5
-
9
-
-
0034602175
-
The transcription factor MTF-1 mediates metal regulation of the mouse ZnT1 gene
-
Langmade SJ, Ravindra R, Daniels PJ, Andrews GK. 2000. The transcription factor MTF-1 mediates metal regulation of the mouse ZnT1 gene. J Biol Chem 275:34803-34809. http://dx.doi.org/10.1074/jbc.M007339200.
-
(2000)
J Biol Chem
, vol.275
, pp. 34803-34809
-
-
Langmade, S.J.1
Ravindra, R.2
Daniels, P.J.3
Andrews, G.K.4
-
10
-
-
0028948696
-
Cloning and functional characterization of a mammalian zinc transporter that confers resistance to zinc
-
Palmiter RD, Findley SD. 1995. Cloning and functional characterization of a mammalian zinc transporter that confers resistance to zinc. EMBO J 14:639-649.
-
(1995)
EMBO J
, vol.14
, pp. 639-649
-
-
Palmiter, R.D.1
Findley, S.D.2
-
11
-
-
0028358324
-
The transcription factor MTF-1 is essential for basal and heavy metalinduced metallothionein gene expression
-
Heuchel R, Radtke F, Georgiev O, Stark G, Aguet M, Schaffner W. 1994. The transcription factor MTF-1 is essential for basal and heavy metalinduced metallothionein gene expression. EMBO J 13:2870-2875.
-
(1994)
EMBO J
, vol.13
, pp. 2870-2875
-
-
Heuchel, R.1
Radtke, F.2
Georgiev, O.3
Stark, G.4
Aguet, M.5
Schaffner, W.6
-
12
-
-
49049109504
-
Regulation of ZIP and ZnT zinc transporters in zebrafish gill: zinc repression of ZIP10 transcription by an intronic MRE cluster
-
Zheng D, Feeney GP, Kille P, Hogstrand C. 2008. Regulation of ZIP and ZnT zinc transporters in zebrafish gill: zinc repression of ZIP10 transcription by an intronic MRE cluster. Physiol Genomics 34:205-214. http://dx.doi.org/10.1152/physiolgenomics.90206.2008.
-
(2008)
Physiol Genomics
, vol.34
, pp. 205-214
-
-
Zheng, D.1
Feeney, G.P.2
Kille, P.3
Hogstrand, C.4
-
13
-
-
79959589568
-
MTF-1-mediated repression of the zinc transporter Zip10 is alleviated by zinc restriction
-
Lichten LA, Ryu MS, Guo L, Embury J, Cousins RJ. 2011. MTF-1-mediated repression of the zinc transporter Zip10 is alleviated by zinc restriction. PLoS One 6:e21526. http://dx.doi.org/10.1371/journal.pone.0021526.
-
(2011)
PLoS One
, vol.6
-
-
Lichten, L.A.1
Ryu, M.S.2
Guo, L.3
Embury, J.4
Cousins, R.J.5
-
14
-
-
76749126469
-
Metal transcription factor-1 regulation via MREs in the transcribed regions of selenoprotein H and other metal-responsive genes
-
Stoytcheva ZR, Vladimirov V, Douet V, Stoychev I, Berry MJ. 2010. Metal transcription factor-1 regulation via MREs in the transcribed regions of selenoprotein H and other metal-responsive genes. Biochim Biophys Acta 1800:416-424. http://dx.doi.org/10.1016/j.bbagen.2009.11.003.
-
(2010)
Biochim Biophys Acta
, vol.1800
, pp. 416-424
-
-
Stoytcheva, Z.R.1
Vladimirov, V.2
Douet, V.3
Stoychev, I.4
Berry, M.J.5
-
15
-
-
65349192330
-
Kruppel-like factor 4 regulates adaptive expression of the zinc transporter Zip4 in mouse small intestine
-
Liuzzi JP, Guo L, Chang SM, Cousins RJ. 2009. Kruppel-like factor 4 regulates adaptive expression of the zinc transporter Zip4 in mouse small intestine. Am J Physiol Gastrointest Liver Physiol 296:G517-G523. http://dx.doi.org/10.1152/ajpgi.90568.2008.
-
(2009)
Am J Physiol Gastrointest Liver Physiol
, vol.296
, pp. G517-G523
-
-
Liuzzi, J.P.1
Guo, L.2
Chang, S.M.3
Cousins, R.J.4
-
16
-
-
84867793466
-
Identification of the human zinc transcriptional regulatory element (ZTRE): a palindromic protein-binding DNA sequence responsible for zinc-induced transcriptional repression
-
Coneyworth LJ, Jackson KA, Tyson J, Bosomworth HJ, van der Hagen E, Hann GM, Ogo OA, Swann DC, Mathers JC, Valentine RA, Ford D. 2012. Identification of the human zinc transcriptional regulatory element (ZTRE): a palindromic protein-binding DNA sequence responsible for zinc-induced transcriptional repression. J Biol Chem 287:36567-36581. http://dx.doi.org/10.1074/jbc.M112.397000.
-
(2012)
J Biol Chem
, vol.287
, pp. 36567-36581
-
-
Coneyworth, L.J.1
Jackson, K.A.2
Tyson, J.3
Bosomworth, H.J.4
van der Hagen, E.5
Hann, G.M.6
Ogo, O.A.7
Swann, D.C.8
Mathers, J.C.9
Valentine, R.A.10
Ford, D.11
-
17
-
-
0037151036
-
A novel zinc-regulated human zinc transporter, hZTL1, is localized to the enterocyte apical membrane
-
Cragg RA, Christie GR, Phillips SR, Russi RM, Kury S, Mathers JC, Taylor PM, Ford D. 2002. A novel zinc-regulated human zinc transporter, hZTL1, is localized to the enterocyte apical membrane. J Biol Chem 277:22789-22797. http://dx.doi.org/10.1074/jbc.M200577200.
-
(2002)
J Biol Chem
, vol.277
, pp. 22789-22797
-
-
Cragg, R.A.1
Christie, G.R.2
Phillips, S.R.3
Russi, R.M.4
Kury, S.5
Mathers, J.C.6
Taylor, P.M.7
Ford, D.8
-
18
-
-
34249850816
-
Splice variants of the human zinc transporter ZnT5 (SLC30A5) are differentially localized and regulated by zinc through transcription and mRNA stability
-
Jackson KA, Helston RM, McKay JA, O'Neill ED, Mathers JC, Ford D. 2007. Splice variants of the human zinc transporter ZnT5 (SLC30A5) are differentially localized and regulated by zinc through transcription and mRNA stability. J Biol Chem 282:10423-10431. http://dx.doi.org/10.1074/jbc.M610535200.
-
(2007)
J Biol Chem
, vol.282
, pp. 10423-10431
-
-
Jackson, K.A.1
Helston, R.M.2
McKay, J.A.3
O'Neill, E.D.4
Mathers, J.C.5
Ford, D.6
-
19
-
-
84892563406
-
Effects of Sirt1 on DNA methylation and expression of genes affected by dietary restriction
-
Ions LJ, Wakeling LA, Bosomworth HJ, Hardyman JE, Escolme SM, Swan DC, Valentine RA, Mathers JC, Ford D. 2013. Effects of Sirt1 on DNA methylation and expression of genes affected by dietary restriction. Age 35:1835-1849. http://dx.doi.org/10.1007/s11357-012-9485-8.
-
(2013)
Age
, vol.35
, pp. 1835-1849
-
-
Ions, L.J.1
Wakeling, L.A.2
Bosomworth, H.J.3
Hardyman, J.E.4
Escolme, S.M.5
Swan, D.C.6
Valentine, R.A.7
Mathers, J.C.8
Ford, D.9
-
20
-
-
0034717152
-
Mapping the DNA binding domain of the Zap1 zinc-responsive transcriptional activator
-
Bird A, Evans-Galea MV, Blankman E, Zhao H, Luo H, Winge DR, Eide DJ. 2000. Mapping the DNA binding domain of the Zap1 zinc-responsive transcriptional activator. J Biol Chem 275:16160-16166. http://dx.doi.org/10.1074/jbc.M000664200.
-
(2000)
J Biol Chem
, vol.275
, pp. 16160-16166
-
-
Bird, A.1
Evans-Galea, M.V.2
Blankman, E.3
Zhao, H.4
Luo, H.5
Winge, D.R.6
Eide, D.J.7
-
21
-
-
84878785823
-
KRAB-zinc finger proteins: a repressor family displaying multiple biological functions
-
Lupo A, Cesaro E, Montano G, Zurlo D, Izzo P, Costanzo P. 2013. KRAB-zinc finger proteins: a repressor family displaying multiple biological functions. Curr Genomics 14:268-278. http://dx.doi.org/10.2174/13892029113149990002.
-
(2013)
Curr Genomics
, vol.14
, pp. 268-278
-
-
Lupo, A.1
Cesaro, E.2
Montano, G.3
Zurlo, D.4
Izzo, P.5
Costanzo, P.6
-
22
-
-
84865087597
-
Detecting transcription of ribosomal protein pseudogenes in diverse human tissues from RNA-seq data
-
Tonner P, Srinivasasainagendra V, Zhang S, Zhi D. 2012. Detecting transcription of ribosomal protein pseudogenes in diverse human tissues from RNA-seq data. BMC Genomics 13:412. http://dx.doi.org/10.1186/1471-2164-13-412.
-
(2012)
BMC Genomics
, vol.13
, pp. 412
-
-
Tonner, P.1
Srinivasasainagendra, V.2
Zhang, S.3
Zhi, D.4
-
23
-
-
46149123860
-
Zinc-induced formation of a coactivator complex containing the zinc-sensing transcription factor MTF-1, p300/CBP, and Sp1
-
Li Y, Kimura T, Huyck RW, Laity JH, Andrews GK. 2008. Zinc-induced formation of a coactivator complex containing the zinc-sensing transcription factor MTF-1, p300/CBP, and Sp1. Mol Cell Biol 28:4275-4284. http://dx.doi.org/10.1128/MCB.00369-08.
-
(2008)
Mol Cell Biol
, vol.28
, pp. 4275-4284
-
-
Li, Y.1
Kimura, T.2
Huyck, R.W.3
Laity, J.H.4
Andrews, G.K.5
-
24
-
-
74049139555
-
Genomic targets of the KRAB and SCAN domain-containing zinc finger protein 263
-
Frietze S, Lan X, Jin VX, Farnham PJ. 2010. Genomic targets of the KRAB and SCAN domain-containing zinc finger protein 263. J Biol Chem 285:1393-1403. http://dx.doi.org/10.1074/jbc.M109.063032.
-
(2010)
J Biol Chem
, vol.285
, pp. 1393-1403
-
-
Frietze, S.1
Lan, X.2
Jin, V.X.3
Farnham, P.J.4
-
25
-
-
79960676091
-
Rrn7 protein, an RNA polymerase I transcription factor, is required for RNA polymerase IIdependent transcription directed by core promoters with a HomolD box sequence
-
Rojas DA, Moreira-Ramos S, Zock-Emmenthal S, Urbina F, Contreras-Levicoy J, Kaufer NF, Maldonado E. 2011. Rrn7 protein, an RNA polymerase I transcription factor, is required for RNA polymerase IIdependent transcription directed by core promoters with a HomolD box sequence. J Biol Chem 286:26480-26486. http://dx.doi.org/10.1074/jbc.M111.224337.
-
(2011)
J Biol Chem
, vol.286
, pp. 26480-26486
-
-
Rojas, D.A.1
Moreira-Ramos, S.2
Zock-Emmenthal, S.3
Urbina, F.4
Contreras-Levicoy, J.5
Kaufer, N.F.6
Maldonado, E.7
-
26
-
-
0035574730
-
Alternative promoter usage and splicing of ZNF74 multifinger gene produce protein isoforms with a different repressor activity and nuclear partitioning
-
Cote F, Boisvert FM, Grondin B, Bazinet M, Goodyer CG, Bazett-Jones DP, Aubry M. 2001. Alternative promoter usage and splicing of ZNF74 multifinger gene produce protein isoforms with a different repressor activity and nuclear partitioning. DNA Cell Biol 20:159-173. http://dx.doi.org/10.1089/104454901300069004.
-
(2001)
DNA Cell Biol
, vol.20
, pp. 159-173
-
-
Cote, F.1
Boisvert, F.M.2
Grondin, B.3
Bazinet, M.4
Goodyer, C.G.5
Bazett-Jones, D.P.6
Aubry, M.7
-
27
-
-
77956098144
-
Biochemical and functional interaction between ZNF224 and ZNF255, two members of the Kruppel-like zinc-finger protein family and WT1 protein isoforms
-
Florio F, Cesaro E, Montano G, Izzo P, Miles C, Costanzo P. 2010. Biochemical and functional interaction between ZNF224 and ZNF255, two members of the Kruppel-like zinc-finger protein family and WT1 protein isoforms. Hum Mol Genet 19:3544-3556. http://dx.doi.org/10.1093/hmg/ddq270.
-
(2010)
Hum Mol Genet
, vol.19
, pp. 3544-3556
-
-
Florio, F.1
Cesaro, E.2
Montano, G.3
Izzo, P.4
Miles, C.5
Costanzo, P.6
-
28
-
-
34748881227
-
Differential expression and cellular localization of ZNF224 and ZNF255, two isoforms of the Kruppel-like zinc-finger protein family
-
Medugno L, Florio F, Cesaro E, Grosso M, Lupo A, Izzo P, Costanzo P. 2007. Differential expression and cellular localization of ZNF224 and ZNF255, two isoforms of the Kruppel-like zinc-finger protein family. Gene 403:125-131. http://dx.doi.org/10.1016/j.gene.2007.07.036.
-
(2007)
Gene
, vol.403
, pp. 125-131
-
-
Medugno, L.1
Florio, F.2
Cesaro, E.3
Grosso, M.4
Lupo, A.5
Izzo, P.6
Costanzo, P.7
-
29
-
-
68949200178
-
Loss of human ribosomal gene CpG methylation enhances cryptic RNA polymerase II transcription and disrupts rRNA processing
-
Gagnon-Kugler T, Langlois F, Stefanovsky V, Lessard F, Moss T. 2009. Loss of human ribosomal gene CpG methylation enhances cryptic RNA polymerase II transcription and disrupts rRNA processing. Mol Cell 35:414-425. http://dx.doi.org/10.1016/j.molcel.2009.07.008.
-
(2009)
Mol Cell
, vol.35
, pp. 414-425
-
-
Gagnon-Kugler, T.1
Langlois, F.2
Stefanovsky, V.3
Lessard, F.4
Moss, T.5
-
30
-
-
0025788283
-
Zinc-binding subunits of yeast RNA polymerases
-
Treich I, Riva M, Sentenac A. 1991. Zinc-binding subunits of yeast RNA polymerases. J Biol Chem 266:21971-21976.
-
(1991)
J Biol Chem
, vol.266
, pp. 21971-21976
-
-
Treich, I.1
Riva, M.2
Sentenac, A.3
-
31
-
-
0142247060
-
Role of secondlargest RNA polymerase I subunit Zn-binding domain in enzyme assembly
-
Naryshkina T, Bruning A, Gadal O, Severinov K. 2003. Role of secondlargest RNA polymerase I subunit Zn-binding domain in enzyme assembly. Eukaryot Cell 2:1046-1052. http://dx.doi.org/10.1128/EC.2.5.1046-1052.2003.
-
(2003)
Eukaryot Cell
, vol.2
, pp. 1046-1052
-
-
Naryshkina, T.1
Bruning, A.2
Gadal, O.3
Severinov, K.4
-
32
-
-
84891673687
-
RNA polymerase I stability couples cellular growth to metal availability
-
Lee YJ, Lee CY, Grzechnik A, Gonzales-Zubiate F, Vashisht AA, Lee A, Wohlschlegel J, Chanfreau GF. 2013. RNA polymerase I stability couples cellular growth to metal availability. Mol Cell 51:105-115. http://dx.doi.org/10.1016/j.molcel.2013.05.005.
-
(2013)
Mol Cell
, vol.51
, pp. 105-115
-
-
Lee, Y.J.1
Lee, C.Y.2
Grzechnik, A.3
Gonzales-Zubiate, F.4
Vashisht, A.A.5
Lee, A.6
Wohlschlegel, J.7
Chanfreau, G.F.8
-
33
-
-
33746631755
-
The transcriptional activity of RNA polymerase I is a key determinant for the level of all ribosome components
-
Laferte A, Favry E, Sentenac A, Riva M, Carles C, Chedin S. 2006. The transcriptional activity of RNA polymerase I is a key determinant for the level of all ribosome components. Genes Dev 20:2030-2040. http://dx.doi.org/10.1101/gad.386106.
-
(2006)
Genes Dev
, vol.20
, pp. 2030-2040
-
-
Laferte, A.1
Favry, E.2
Sentenac, A.3
Riva, M.4
Carles, C.5
Chedin, S.6
|