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1 ts signalling receptor pTrkB, as well as the CREB protein.
2  in the de novo appearance of phosphorylated CREB protein.
3 f ERK2 MAPK and decreased phosphorylation of CREB protein.
4 lso occurs in the context of the full-length CREB protein.
5 showing that Notch regulates dCrebB-17A, the CREB protein.
6  was markedly inhibited by dominant-negative CREB proteins.
7 ranscription factor CREB but not related ATF/CREB proteins.
8 ), GATA4, and cAMP-response element binding (CREB) protein.
9 , such as the cAMP Response Element Binding (CREB) protein.
10 orylation of c-AMP response element binding (CREB) protein.
11 ase and cyclic AMP response element-binding (CREB) protein.
12 f control) and phosphorylation (300%) of the Creb protein, a transcription factor that is downstream
13 sphorylation is accompanied by a decrease in CREB protein abundance and no change in Cre-luciferase r
14 ism that links oxidative stress to decreased CREB protein abundance is predicted to contribute to the
15 genesis studies indicate that H2O2 decreases CREB protein abundance via a mechanism that does not req
16  of Regulated cAMP response element-binding (CREB) protein activity (TORCs) in HD, since TORCs play a
17 aracterization of the full-length, wild-type CREB protein, an altered CREB protein (CREB/SER) in whic
18 or to forskolin treatment not only decreased CREB protein and its phosphorylation at Ser-133, but als
19  to show that the drug increased levels of P-CREB protein and P-CREB binding to the CART promoter CRE
20 ng protein from up-regulating the CTNNB1 and CREB proteins and their target genes, indicating that WN
21 by inhibiting cAMP response element binding (CREB) protein and AKT phosphorylation, respectively.
22 nal activator cAMP response element binding (CREB) protein and the KIX domain of its coactivator, CRE
23 lation of the cAMP response element binding (CREB) protein and via the dephosphorylation of the laten
24 ch indicates that expression and function of CREB protein are increased along with its mRNA.
25 ferentiated cells, levels of Sp3, KSR-1, and CREB proteins are lower; the unidentified regulator prot
26 ased, and levels of total and phosphorylated CREB proteins are unchanged as well.
27               cAMP-response element binding (CREB) proteins are involved in transcriptional regulatio
28 s the levels of miR-34a target genes such as CREB protein as shown by real time PCR.
29 gram circadian transcription, and identifies CREB proteins as candidates for this reprograming.
30        These DNA-binding complexes contained CREB proteins, based on competitive EMSAs, supershift as
31 t, in contrast to c-Jun, SRF, Elk1, ATF1 and CREB proteins bind to SRE and ATF sites of the FRA-1 pro
32 ked in the silent normal bcl-2 allele, while CREB proteins bind to the site on the translocated allel
33 rmation of p-CREB/p300 complexes and the DNA-CREB protein binding.
34            Expression of a dominant negative CREB protein blocked mIg-mediated transcription from a j
35 shift assays did not detect Jun, Fos, or ATF/CREB proteins but identified Nrf2 and the small Maf prot
36 n dimerization) domain characteristic of ATF/CREB proteins, but no other functional domains or clear
37                                 We show that CREB protein can compete with c-Jun for the AP1 site and
38 m we show that phosphorylation of Ser-133 on CREB protein can occur in isolated dendrites independent
39  phosphorylation of CREB at Ser 133, whereas CREB protein content was unaltered by either HG or GlcN.
40 l-length, wild-type CREB protein, an altered CREB protein (CREB/SER) in which the three cysteine resi
41  of CREB binding but not that of another ATF/CREB protein, CREB2, to the 21-bp repeat.
42 firmed that mice lacking the alpha and Delta CREB proteins (CREBalphaDelta-) have abnormal long-term,
43 tutive neuronal COX-2 expression via Sp1 and CREB protein-dependent transcriptional mechanisms.
44                          The total amount of CREB protein did not change at the time points examined.
45  to the ATM-dependent phosphorylation of the CREB protein, extrusion of neuritic processes, and diffe
46  appears to be due to up-regulation of other CREB protein family members, i.e. ATF1 and CREM.
47 ne monophosphate responsive element-binding (CREB) protein family.
48 A in isolated dendrites is feasible and that CREB protein found in dendrites can interact with the ci
49 s in chromatin condensation and exclusion of CREB proteins from the IFN-gamma promoter.
50  cyclic AMP (cAMP) response element binding (CREB) protein gene, or overexpressing a dominant-negativ
51 sine monophosphate response element binding (CREB) protein has been implicated in both antidepressant
52  CIITA and does not interact detectably with CREB proteins implicated in CIITA recruitment, but the s
53 enic mice that express the dominant-negative CREB protein in B lymphocytes were developed as a means
54                                     Further, CREB protein in dendrites is not transported to this sit
55 lated cAMP-response element-binding protein (CREB) protein in Caco2-BBE cells, whereas our deletion,
56  kinase A and cAMP response element binding (CREB) protein in Wt mice, but CREB only was activated in
57 tion with KIX, the disordered pKID region of CREB protein is central in the transcription of cAMP res
58             The increased phosphorylation of CREB protein is preceded by an increase in the amount of
59  We expanded upon these results showing that CREB protein is present in dendrites, that translation o
60       Rather, the H2O2-dependent decrease in CREB protein is prevented by the proteasome inhibitor la
61 t CREB mRNA were used to disrupt hippocampal CREB protein levels in adult rats.
62 a specific PKC-theta inhibitor, diminished p-CREB protein levels when normal T cells were treated wit
63 CTNNB1) and cAMP responsive element binding (CREB) protein levels to decreaseviaa glycogen synthase k
64                                 Therefore, a CREB protein may act as a nuclear target, or as a partne
65                                 In addition, CREB protein microperfused into dendrites was rapidly tr
66 horylation of cAMP response element-binding (CREB) protein on the IL-10 promoter.
67 ulated by the cAMP response element-binding (CREB) protein pathway.
68 Ca(2+) in the role of CaM KIV activation and CREB protein phosphorylation associated with hypoxia.
69 xia-induced increase in CaM KIV activity and CREB protein phosphorylation.
70 lcium/cyclic AMP responsive element-binding (CREB) protein phosphorylation, leading to temporally gat
71  proximal promoter regions and activation of CREB proteins play a crucial role in transcriptional reg
72                           Phosphorylation of CREB protein prevents its interaction with a coactivator
73 utant CBP (S436A) is aberrantly recruited to CREB protein, resulting in inappropriate activation of g
74 horylation of cAMP response element-binding (CREB) protein, resulting in recruitment of the coactivat
75 mplicated the cAMP Response Element Binding (CREB) protein signaling pathway in long-term memory.
76  mutants reveals a much broader function for CREB proteins than previously thought.
77 nant-negative (DN) CREB mutants, KCREB and A-CREB, proteins that dimerize with CREB family members an
78 yed the cyclic AMP-response element-binding (CREB) protein to provide evidence for substrate discrimi
79 ns, including cAMP response element binding (CREB) protein, translation-initiation factor eIF2B, and
80  auto- and cross-regulation of expression of CREB proteins, via CRE elements in or near their genes.
81                                              CREB protein was elevated in TRAF3(-/-) B cells, without
82  antibody that detects Ser133-phosphorylated CREB protein, we show that CREB phosphorylation is maxim
83 onditions, no changes in relative amounts of CREB protein were observed by Western blot.
84 EB, although no significant changes in total CREB proteins were observed.
85 ascade, the cAMP-regulatory element binding (CREB) protein, were affected also.
86          Furthermore, when dominant negative CREB proteins with mutations in either the CREB phosphor

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