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1 rn is similar to that of Tef, an Hlf-related bZIP protein.
2 through RsmA, a recently discovered YAP-like bZIP protein.
3 ta mRNA to the K8alpha mRNA that encodes a K-bZIP protein.
4 inhibit major-groove DNA binding by the GCN4 bZip protein.
5 n of proteasomal-mediated degradation of the bZIP protein.
6 omotes dimerization of CREB as well as other bZIP proteins.
7 via a physical interaction with ABI5-related bZIP proteins.
8  at all with c-myc, max or unrelated bHLH or bZIP proteins.
9 bine to determine DNA-binding specificity of bZIP proteins.
10 e of electrostatic effects in DNA bending by bZIP proteins.
11  charges distal to the basic region in bound bZIP proteins.
12 ore the mechanism by which pX interacts with bZIP proteins.
13 ctions can play a key role in DNA bending by bZIP proteins.
14 nal regulatory properties of HLF and related bZIP proteins.
15 tely different consensus not shared by other bZIP proteins.
16 n between basic DNA binding regions of three bZIP proteins.
17 modimerize and do not form dimers with other bZip proteins.
18 oove in the presence of major-groove binding bZip proteins.
19 eq's potential to dimerize with a variety of bZIP proteins.
20 decreases the kinetic specificity of certain bZIP proteins.
21  core recognition element bound by canonical bZIP proteins.
22 e by Maf differ from those made by canonical bZIP proteins.
23 EB) is a member of the CREB/ATF subfamily of bZIP proteins.
24 zed by EmBP-1, a wheat basic/leucine zipper (bZIP) protein.
25 interact with specific basic-leucine zipper (bZIP) proteins.
26  the biology of basic region-leucine zipper (bZIP) proteins.
27               The elongated HYPOCOTYL5 (HY5) bZIP protein, an integrator of multiple signaling pathwa
28 e show that COP1 negatively regulates HY5, a bZIP protein and a positive regulator of photomorphogeni
29 e, we demonstrate a genetic link between the bZIP proteins and cryptochromes as the cry1cry2 mutant i
30 he PAR (proline- and acid-rich) subfamily of bZIP proteins and has DNA-binding specificity like that
31 documented specific interactions among these bZIP proteins and the kinases that could activate them a
32 rd elucidating the in vivo function of plant bZIP proteins and their related G-box cis elements, we h
33 nds DNA through a basic region like those of bZIP proteins and through a flexible amino-terminal arm
34 emerges from their interactions with related bZIP proteins and with structurally unrelated transcript
35 been shown to encode a basic-leucine zipper (bZIP) protein and to function in narrowing the region fr
36 o the family of basic region/leucine zipper (bZIP) proteins and interacts with the cAMP responsive el
37 te binding with basic-region leucine zipper (bZIP) proteins and other transcription factors.
38 mplexes between basic region leucine zipper (bZIP) proteins and target DNA, the relationship between
39 structural reorganizations induced in DNA by bZIP proteins, and lead to a revision of the relationshi
40                           Two genes encoding bZIP proteins are expressed in flowers of Antirrhinum ma
41 ugh the basic regions in naturally occurring bZip proteins are located N-terminal to the leucine zipp
42                    The basic leucine zipper (bZIP) proteins are one of the largest and most conserved
43                 Basic region leucine zipper (bZIP) proteins are transcription factors that interact s
44                            We used a natural bZIP protein as our host-guest system that remains dimer
45 , including the basic region-leucine zipper (bZIP) protein ATF-2-c-jun, are well-characterized compon
46 e excretory duct cell) together with another bZip protein, ATF-2.
47   Following mitochondrial perturbations, the bZIP protein ATFS-1 induces a transcriptional programme
48                        Here it is shown that bZIP proteins bend DNA via a mechanism involving direct
49 tion function and to define the nature of K8 bZip protein binding to the origin, we constructed conse
50 -mRNAs and reduced expression of ORF50 and K-bZIP proteins but had no effect on latency-associated nu
51 oter that is recognized by a large number of bZIP proteins, but with much greater stability.
52 ilar to those found in basic leucine zipper (bZIP) proteins, but lacks any apparent leucine zipper.
53                             We show that the bZIP protein C/EBP beta isoform LIP is required for nucl
54      Nrl was more effective than the related bZIP proteins, c-Fos and c-Jun, in stimulating rhodopsin
55 native names, (b) dimer formation with other bZip proteins, (c) transcriptional activity, and (d) pot
56 ically with the basic-domain/leucine-zipper (bZip) protein, cAMP response element binding protein (CR
57 rapid evolution, and that at least one human bZip protein can similarly affect Drosophila development
58 The ability of Tax to enhance DNA binding of bZip proteins can be explained in part by Tax dimerizati
59 nd perhaps the specificity of DNA binding by bZIP proteins can be modulated by incorporating a stably
60 , and illustrate several mechanisms by which bZIP proteins can regulate multiple, seemingly disparate
61 ng can partly bypass the requirement for the bZip protein CEBP-1, a downstream factor of the DLK-1 ki
62 ontributes to the species differences is the bZip protein CES-2.
63 Caenorhabditis elegans basic leucine zipper (bZip) protein CES-2 regulates the transcription of diffe
64  we cloned the human homologue of TEF/VBP, a bZIP protein closely related to HLF.
65 tivating transcription factor-1 subfamily of bZip proteins, constitute the contact surface for Tax.
66                                              bZip proteins contain a bipartite DNA-binding motif cons
67                 Basic-region leucine zipper (bZip) proteins contain a bipartite DNA-binding motif con
68  fusion and the basic leucine zipper domain (bZip) protein CREB (cAMP response element-binding protei
69 , heterodimerizes with Xrp1 and with another bZip protein, dATF4.
70 ave identified a novel basic leucine zipper (bZIP) protein, designated ATF-7, that physically interac
71               We have investigated how plant bZIP proteins determine their DNA binding specificity by
72                             Atf1-containing, bZIP protein dimers bind to CRE-like DNA sites, regulate
73                              However, unlike bZIP proteins, DNA is not bent away from bHLH anionic ch
74                   It also estimates relative bZIP protein duplication orders, using only interaction
75  maize (Zea mays L.) orthologue of the wheat bZIP protein EmBP-1 (mEmBP-1).
76                   Here, we report that the K-bZIP protein encoded by Kaposi's sarcoma-associated herp
77 sidues that differ between Maf and canonical bZIP proteins facilitate the conformational change requi
78  other transcription factors, including some bZIP protein family members.
79 n, pX increases the DNA binding potential of bZip proteins for their cognate DNA-binding site in vitr
80                                          The bZIP proteins Fos and Jun bind DNA rapidly and with high
81                       Recently described PAR-bZIP proteins from Drosophila and zebrafish also contain
82                                Thus, the two bZip proteins function together as one of several inputs
83 ave isolated a soybean cDNA encoding a novel bZIP protein, G/HBF-1, which binds to both the G-box and
84 onal repressor, is negatively regulated by a bZip protein, gadd153/Chop10.
85 he DNA binding (basic) region from the plant bZIP protein GBF-1 (GBF) and a leucine zipper (F) design
86                          We have developed a bZIP protein, GBF-F, with both dominant-negative (DN) an
87 pha-helical recognition epitope found on the bZIP protein GCN4 and binds DNA with nanomolar affinity
88                       We have found that the bZip protein GCN4 can also bind with high affinity to DN
89  DNA major-groove binding, as occurs for the bZIP protein GCN4, perturbs the Raman signature of DNA o
90 tion of O2 and OHP1 contrasts with the maize bZIP protein gene OBF1, which lacks introns, suggesting
91 ctivation transactivator Rta and A6-encoding bZIP protein genes.
92                        Here we show that the bZIP protein HapX functions as a key regulator of iron h
93                                The c-Myc HLH-bZIP protein has been implicated in physiological or pat
94 mediates homo- or hetero-dimerization of the bZIP proteins has been intensively studied, and a variet
95 e oncogenes, meq (MDV Eco Q) which encodes a bZIP protein, has been biochemically characterized as a
96 interacting protein 1 (VIP1), an Arabidopsis bZIP protein, has been suggested to mediate transformati
97 ox elements specific for the EmBP-1 class of bZIP proteins have an important developmental function i
98          Two major subgroups among the plant bZIP proteins have been identified as G-box (CCACGTGG) o
99                                  Whereas the bZIP proteins, HY5 (elongated hypocotyl 5) and HYH (HY5
100                     Here we identify a novel bZIP protein HYH, as a new target of COP1.
101 e zipper (CNC-bZIP) family is a subfamily of bZIP proteins identified from independent searches for f
102 nvestigate the in vivo role of this chimeric bZIP protein in oncogenic transformation, its expression
103 nstrate that ORF57 interacts with the KSHV K-bZIP protein in vitro and in cell extracts from lyticall
104 ctions increase the DNA affinities of target bZIP proteins in a DNA sequence-dependent manner.
105 etry studies with equimolar mixture of three bZIP proteins in pairs showed no heterodimer formation w
106 ates DNA-binding activities of this class of bZip proteins in transgenic tobacco plants.
107                            Expression of the bZIP proteins in transgenic tobacco under control of the
108 as been observed for the small MAF family of bZIP proteins in vertebrates.
109  for efficient transcriptional activation by bZIP proteins in vivo.
110        The interaction of NPR1 with the rice bZIP proteins in yeast was impaired by the npr1-1 and np
111  a conserved family of basic-leucine-zipper (bZip) proteins in plants, have suggested a role for thes
112 ed the association of NRL with c-Jun, also a bZIP protein, in transfected cells as well as in develop
113 ctor CHOP (C/EBP homologous protein 10) is a bZIP protein induced by a variety of stimuli that evoke
114                CHOP-10 (GADD153/DDIT-3) is a bZIP protein involved in differentiation and apoptosis.
115 el Hog1-dependent activator(s) that is not a bZIP protein is required for ATF/CREB site activation in
116 or 2 (ATF2) heterodimerization with specific bZIP proteins is an important determinant of the ubiquit
117 monstrated that binding specificity of plant bZIP proteins is determined independently by two regions
118          Selectivity of Chameau and MBF1 for bZIP proteins is mediated by residues in the basic regio
119 EB subfamily of basic-region leucine zipper (bZIP) proteins, is induced in response to endoplasmic re
120  mechanisms of transformation by the related bZIP proteins Jun and Fos that address the same target s
121 sly identified a small basic leucine zipper (bZIP) protein, Jun dimerization protein 2 (JDP-2), that
122 ) have been identified and a virally encoded bZip protein, K8, has been shown to specifically bind to
123 on to VP16, HCF-1 associates with a cellular bZIP protein known as LZIP (or Luman).
124 ingle high-affinity binding site for the Maf bZIP protein Krml1, encoded by the kreisler gene.
125 e globular bHLH domain which, in contrast to bZIP proteins, makes extensive DNA contacts along the bi
126 ation of heterodimers between Nrf2 and other bZIP proteins may simultaneously mask the NES and attenu
127          MDV encodes a basic leucine zipper (bZIP) protein, Meq (MDV EcoQ).
128  virus (MDV) encodes a basic-leucine zipper (BZIP) protein, Meq, which is considered the major MDV on
129     The basic region-leucine zipper (B-ZIP) (bZIP) protein motif dimerizes to bind specific DNA seque
130               In addition, a virally encoded bZip protein, namely K8, was found to bind to a DNA sequ
131                        Basic leucine zipper (bZIP) protein Nrf2 is a key transcription factor mediati
132  similar function may be attributed to other bZIP proteins of the large Maf family.
133 e (TGAGTCA) for basic region-leucine zipper (bZIP) proteins of the AP-1-CREB superfamily.
134                           In addition to the bZIP protein Opaque2 (O2), there are other maize endospe
135  characterization exists on this subclass of bZIP proteins, our work represents the first report of a
136 e found that the hematopoietic cell-specific bZip protein p45/NF-E2 interacts with T3 receptor (TR) a
137                     In vitro, the Antirrinum bZIP proteins preferentially bind to a novel hybrid C-bo
138 B-binding site, supporting a model where the bZIP protein primarily functions to augment the activity
139 get genes were observed, indicating that the bZIP proteins probably interact with other factors to mo
140 -2, to stabilize the mRNA encoding CEBP-1, a bZip protein related to CCAAT/enhancer-binding proteins,
141                 Basic region leucine zipper (bZIP) proteins represent a class of transcription factor
142 ramework for a novel mechanism through which bZIP proteins repress transcription.
143 es a reportedly Drosophila-specific AT-hook, bZIP protein responsible for many of the effects includi
144       Previous studies demonstrated that the bZIP protein RF2a is involved in transcriptional regulat
145 ated a cDNA encoding a basic leucine zipper (bZIP) protein, RF2a, which binds to the Box II cis eleme
146  and functional characterization of a second bZIP protein, RF2b.
147                                          The bZIP proteins share strong sequence and structural simil
148         This result reduces the concern that bZIP protein structure causes electrophoretic anomalies
149 ng cell-type restricted and widely expressed bZIP proteins, such as c-Jun, in specific spatiotemporal
150   The fact that TaFT2 interacts with another bZIP protein TaFDL13, which lacks the ability to interac
151  signals promoting flowering, interacts with bZIP proteins TaFDL2 and TaFDL6.
152 ect interactions in vitro between pX and the bZip proteins tested.
153 ed three independent cDNAs encoding ATF-2, a bZIP protein that binds cAMP response elements (CRE).
154             NFIL3, a growth factor-regulated bZIP protein that binds to the same DNA-consensus site a
155 virus (EBV)-encoded lytic activator Zta is a bZIP protein that can stimulate nucleosomal histone acet
156 ization protein 2 (JDP2) was identified as a bZIP protein that forms dimers with Jun proteins.
157                                  Bach-1 is a bZip protein that forms heterodimers with small Maf prot
158 diction of binding syntaxes to study several bZIP proteins that assemble into FACs or FRCs.
159 ers of a novel and fungus-specific family of bZIP proteins that is defined by four atypical residues
160 F comprise a distinct subfamily of mammalian bZIP proteins that plays an important role in regulation
161 an MAFG gene encodes a basic-leucine zipper (bZIP) protein that belongs to a family of transcription
162 virus (KSHV) encodes a basic leucine zipper (bZip) protein that binds to the origin of viral DNA repl
163 ene codes for a basic region-leucine zipper (bZIP) protein that is disrupted by chromosomal transloca
164 rs are atypical basic region-leucine zipper (bZIP) proteins that contain a variant basic region and a
165 ortant group of basic region leucine zipper (bZIP) proteins that display high affinity for the CRE si
166                   In all naturally occurring bZip proteins, the basic region is positioned N-terminal
167 cluded alteration of thyroid hormone induced bZip protein (thibz), deiodinases (dio2, dio3), thyroid
168                     This makes MEQ the first bZIP protein to be identified in the nucleoli.
169  absence of its activation domains, recruits bZIP proteins to canonical NFAT-bZIP composite DNA eleme
170 on domain, continues to stimulate binding of bZip proteins to DNA.
171 rotein, c-Maf belongs to a family of related bZip proteins together with MafA and MafB.
172  oncogenic retrovirus AS42 encodes a nuclear bZip protein, v-Maf, that recognizes sequences related t
173 a specific coactivator for the AP-1 class of bZIP proteins via two arginine residues.
174 uggested a role for monomeric DNA binding by bZip proteins, we investigated the structure of the GCN4
175 ns, in which leucine zippers from bHLHZIP or bZIP proteins were fused to heterologous bHLH domains, a
176 etylases interact with distinct subgroups of bZIP proteins, whereas pX does not discriminate.
177 or transcripts encodes MEQ, a 339-amino-acid bZIP protein which is homologous to the Jun/Fos family o
178 w them to belong to a distinct sub-family of bZIP proteins which also includes LIP19 from rice and ML
179  large group of basic region-leucine zipper (bZip) proteins which was originally defined in the late
180 c region like those of basic-leucine zipper (bZIP) proteins, which bind DNA only as dimers.
181  large group of basic-region leucine zipper (bZIP) proteins whose members mediate diverse transcripti
182 gulation of the Pap1 transcription factor, a bZip protein with structural and DNA binding similaritie
183 e osZIP-2 factors represent a novel class of bZIP proteins with an unusual DNA-binding domain that do
184 related to members of the ATF/CREB family of bZIP proteins, with highest homology to ATF-4.
185 ted worms was associated with failure of the bZIP protein, ZC376.7, to localize to nuclei in worms wi
186 anism mediated by the Caenorhabditis elegans bZIP protein ZIP-3 to repress UPR(mt) activation.

 
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