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1 he trg promoter is activated directly by the cyclic AMP receptor protein.
2  cI protein and that of the Escherichia coli cyclic AMP receptor protein.
3 ed to be dependent in many situations on the cyclic AMP receptor protein.
4 distinguish CooAs from the general family of cyclic AMP receptor proteins.
5 robic growth through a process that requires cyclic AMP receptor protein and adenylate cyclase.
6 ms in correctly identifying Escherichia coli cyclic AMP receptor protein and Bacillus subtilis sigma
7                    Finally, we show that the cyclic AMP receptor protein and H-NS act along the same
8 the major acsP2 promoter is dependent on the cyclic AMP receptor protein and is modulated by IHF and
9  have been identified through studies of the cyclic AMP receptor protein and its interactions with RN
10  lsrRK, which is positively regulated by the cyclic AMP receptor protein and negatively regulated by
11  and UK-1 mutants with deletions of the crp (cyclic AMP receptor protein) and cdt (colonization of de
12 erichia coli araBAD promoter pBAD and by the cyclic AMP receptor protein at the galKTE promoter P1.
13 brium studies show that the Escherichia coli cyclic AMP receptor protein (CAP) and lactose repressor
14                                          The cyclic AMP receptor protein (CAP) and lactose repressor
15 brium studies show that the Escherichia coli cyclic AMP receptor protein (CAP) and RNA polymerase hol
16 onse regulator UhpA and is stimulated by the cyclic AMP receptor protein (CAP).
17 s was differentially regulated by cyclic AMP-cyclic AMP receptor protein complex, and each was strong
18                                          The cyclic AMP receptor protein (CRP) activates transcriptio
19 RP-dependent promoters, the Escherichia coli cyclic AMP receptor protein (CRP) activates transcriptio
20                                          The cyclic AMP receptor protein (CRP) acts as a transcriptio
21  and lsrRK operons are regulated by LsrR and cyclic AMP receptor protein (CRP) and that proper regula
22 e propose reflects regulation of feaR by the cyclic AMP receptor protein (CRP) and the nitrogen assim
23 on the direct action of the carbon regulator cyclic AMP receptor protein (CRP) and the oxygen regulat
24 scription activation by the Escherichia coli cyclic AMP receptor protein (CRP) at Class II promoters
25  found that RhaS autoregulation required the cyclic AMP receptor protein (CRP) binding site at rhaSR
26               Deletion analysis identified a cyclic AMP receptor protein (Crp) binding site upstream
27 R and two sequences resembling the consensus cyclic AMP receptor protein (CRP) binding site were iden
28 iration, Shewanella oneidensis MR-1 uses the cyclic AMP receptor protein (CRP) for this purpose.
29 s of various amino acids in Escherichia coli cyclic AMP receptor protein (CRP) has been shown to modu
30             These studies also show that the cyclic AMP receptor protein (CRP) interacts with the mel
31                         The Escherichia coli cyclic AMP receptor protein (CRP) is a global regulator
32                             Escherichia coli cyclic AMP receptor protein (CRP) is a global transcript
33                                              Cyclic AMP receptor protein (CRP) is a regulator of tran
34    Promoter fusion studies also suggest that cyclic AMP receptor protein (CRP) is involved in ompT ac
35 n in response to iron availability while the cyclic AMP receptor protein (Crp) regulates expression o
36                                              Cyclic AMP receptor protein (CRP) regulates the expressi
37                     In Escherichia coli, the cyclic AMP receptor protein (CRP) serves as a sensor of
38 he role of the spacer region DNA between the cyclic AMP receptor protein (CRP) site and the RNA polym
39  with mobility shift assays indicated that a cyclic AMP receptor protein (CRP) site located at -111.5
40 al activator synergy by the Escherichia coli cyclic AMP receptor protein (CRP) working at an artifici
41 tion factors, including the Escherichia coli cyclic AMP receptor protein (CRP), act by making direct
42 sequences, including binding sites for NtrC, cyclic AMP receptor protein (CRP), and ArgR.
43                                   Given that cyclic AMP receptor protein (CRP), the second activator
44                                          The cyclic AMP receptor protein (CRP), which activates trans
45 as further extended to a homologous protein, cyclic AMP receptor protein (CRP), which revealed simila
46 at lasR expression was regulated through the cyclic AMP receptor protein (CRP)-binding consensus sequ
47                                            A cyclic AMP receptor protein (CRP)-binding site (viz.
48 amino acid side chains important for class I cyclic AMP receptor protein (CRP)-dependent transcriptio
49 f DNA sequence variability and the degree of cyclic AMP receptor protein (CRP)-induced bending of the
50 ite repression or activation mediated by the cyclic AMP receptor protein (Crp).
51  linker length on promoters dependent on the cyclic AMP receptor protein (CRP).
52 o uncover a cryptic activating region in the cyclic AMP receptor protein (CRP).
53 tein interactions using the Escherichia coli cyclic AMP receptor protein (CRP).
54 rp gene of Vibrio cholerae (Vc) encoding the cyclic AMP receptor protein (CRP).
55  initiation at galP1 can be activated by the cyclic AMP receptor protein (CRP).
56 helix DNA-binding protein like its homologue cyclic AMP receptor protein (CRP).
57                                          The cyclic AMP receptor protein (CRP, also called catabolite
58 laps the -35 region of the promoter) and the cyclic AMP receptor protein (CRP; bound immediately upst
59                             Escherichia coli cyclic-AMP receptor protein (CRP) represents one of the
60  two sigma factors, two negative regulators (cyclic AMP receptor protein [CRP] and H-NS), and an AraC
61                         The Escherichia coli cyclic AMP receptor protein, CRP, induces transcription
62                                      E. coli cyclic AMP receptor protein, CRP, is a modular protein t
63                     The transcription factor cyclic AMP receptor protein, CRP, regulates the operons
64  oneidensis is a metal reducer that uses the cyclic AMP receptor protein, CRP, to regulate anaerobic
65 n two transcription activators, MelR and the cyclic AMP receptor protein, CRP.
66 ting Region 2 and Activating Region 3 of the cyclic AMP receptor protein, CRP: our results underscore
67 sive ArcA-ArcB two-component system, and the cyclic AMP receptor protein-cyclic AMP (CRP-cAMP) comple
68 ression of hyf-lacZ required the presence of cyclic AMP receptor protein-cyclic AMP complex and anaer
69 vation of class I (lac) and class II (galP1) cyclic AMP receptor protein-dependent promoters.
70 nary phase, and all but one show evidence of cyclic AMP receptor protein-dependent repression during
71 an NtrC-like response regulator, and mrpC, a cyclic AMP receptor protein family transcription activat
72  to the DNA binding domain of members of the cyclic AMP receptor protein family, and the protein is m
73 og (mrpA) immediately upstream of mrpB and a cyclic AMP receptor protein-like transcriptional regulat
74 is subject to transcriptional control by the cyclic AMP receptor protein, riboswitch-mediated transcr
75 racts with the positively charged AR2 of the cyclic AMP receptor protein suggested that Lys49 and Lys
76 tes pathogenesis and is a member of the CRP (cyclic AMP receptor protein) superfamily.
77 n a common pathway with the widely conserved cyclic-AMP receptor protein that regulates protease prod
78 t was corroborated by showing binding of the cyclic AMP receptor protein to the ycfR promoter.
79 protease, which requires HapR, RpoS, and the cyclic AMP receptor protein, was not strongly affected.
80 ter is dependent on direct activation by the cyclic AMP receptor protein, which binds to a target cen

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