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MxiG, a membrane protein required for secretion of Shigella spp. Ipa invasins: involvement in entry into epithelial cells and in intercellular dissemination.
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2   Allaoui A, Sansonetti PJ, Parsot C.
MxiD, an outer membrane protein necessary for the secretion of the Shigella flexneri lpa invasins.
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3   Aravind L, Koonin EV.
The STAS domain - a link between anion transporters and antisigma-factor antagonists.
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4   Assinder SJ, De Marco P, Osborne DJ, Poh CL, Shaw LE, Winson MK, Williams PA.
A comparison of the multiple alleles of xylS carried by TOL plasmids pWW53 and pDK1 and its implications for their evolutionary relationship.
J Gen Microbiol. 1993 Mar;139 ( Pt 3):557-68.
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5   Atlung T, Brondsted L.
Role of the transcriptional activator AppY in regulation of the cyx appA operon of Escherichia coli by anaerobiosis, phosphate starvation, and growth phase.
J Bacteriol. 1994 Sep;176(17):5414-22.
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6   Atlung T, Knudsen K, Heerfordt L, Brondsted L.
Effects of sigmaS and the transcriptional activator AppY on induction of the Escherichia coli hya and cbdAB-appA operons in response to carbon and phosphate starvation.
J Bacteriol. 1997 Apr;179(7):2141-6.
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7   Atlung T, Sund S, Olesen K, Brondsted L.
The histone-like protein H-NS acts as a transcriptional repressor for expression of the anaerobic and growth phase activator AppY of Escherichia coli.
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8   Barbeyron T, Henrissat B, Kloareg B.
The gene encoding the kappa-carrageenase of Alteromonas carrageenovora is related to beta-1,3-1,4-glucanases.
Gene. 1994 Feb 11;139(1):105-9.
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9   Barbosa TM, Levy SB.
Differential expression of over 60 chromosomal genes in Escherichia coli by constitutive expression of MarA.
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10   Bassias J, Bruckner R.
Regulation of lactose utilization genes in Staphylococcus xylosus.
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11   Bearson BL, Wilson L, Foster JW.
A low pH-inducible, PhoPQ-dependent acid tolerance response protects Salmonella typhimurium against inorganic acid stress.
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12   Beaumont FC, Kang HY, Brickman TJ, Armstrong SK.
Identification and characterization of alcR, a gene encoding an AraC-like regulator of alcaligin siderophore biosynthesis and transport in Bordetella pertussis and Bordetella bronchiseptica.
J Bacteriol. 1998 Feb;180(4):862-70.
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13   Bennik MH, Pomposiello PJ, Thorne DF, Demple B.
Defining a rob regulon in Escherichia coli by using transposon mutagenesis.
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14   Bhende PM, Egan SM.
Amino acid-DNA contacts by RhaS: an AraC family transcription activator.
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15   Bhende PM, Egan SM.
Genetic evidence that transcription activation by RhaS involves specific amino acid contacts with sigma 70.
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16   Brondsted L, Atlung T.
Effect of growth conditions on expression of the acid phosphatase (cyx-appA) operon and the appY gene, which encodes a transcriptional activator of Escherichia coli.
J Bacteriol. 1996 Mar;178(6):1556-64.
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17   Brunelle A, Schleif R.
Determining residue-base interactions between AraC protein and araI DNA.
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18   Burke KA, Wilcox G.
The araC gene of Citrobacter freundii.
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19   Cantey JR, Blake RK, Williford JR, Moseley SL.
Characterization of the Escherichia coli AF/R1 pilus operon: novel genes necessary for transcriptional regulation and for pilus-mediated adherence.
Infect Immun. 1999 May;67(5):2292-8.
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20   Chablain PA, Zgoda AL, Sarde CO, Truffaut N.
Genetic and molecular organization of the alkylbenzene catabolism operon in the psychrotrophic strain pseudomonas putida 01G3.
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21   Chen P, Ailion M, Bobik T, Stormo G, Roth J.
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22   Collins CM, D'Orazio SE.
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23   Cornelis GR.
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24   Cowles CE, Nichols NN, Harwood CS.
BenR, a XylS homologue, regulates three different pathways of aromatic acid degradation in Pseudomonas putida.
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25   Darwin KH, Miller VL
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26   de Haan LA, Willshaw GA, van der Zeijst BA, Gaastra W.
The nucleotide sequence of a regulatory gene present on a plasmid in an enterotoxigenic Escherichia coli strain of serotype O167:H5.
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27   Dhiman A, Rodgers ME, Schleif R.
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28   Dhiman A, Schleif R.
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29   D'Orazio SE, Collins CM.
The plasmid-encoded urease gene cluster of the family Enterobacteriaceae is positively regulated by UreR, a member of the AraC family of transcriptional activators.
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30   D'Orazio SE, Collins CM.
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31   D'Orazio SE, Thomas V, Collins CM.
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32   Eaton RW, Selifonova OV, Gedney RM.
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33   Edwards RA, Schifferli DM, Maloy SR.
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34   Egan SM, Schleif RF.
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35   Eichelberg K, Hardt WD, Galan JE.
Characterization of SprA, an AraC-like transcriptional regulator encoded within the Salmonella typhimurium pathogenicity island 1.
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36   Elias WP Jr, Czeczulin JR, Henderson IR, Trabulsi LR, Nataro JP.
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37   Erlandson KA, Park JH, Wissam, El Khal, Kao HH, Basaran P, Brydges S, Batt CA.
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38   Fetherston JD, Bearden SW, Perry RD.
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39   Fetherston JD, Bertolino VJ, Perry RD.
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40   Friedrich MJ, Kinsey NE, Vila J, Kadner RJ.
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41   Gallegos MT, Schleif R, Bairoch A, Hofmann K, Ramos JL.
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42   Gallegos MT, Williams PA, Ramos JL.
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43   George AM, Hall RM, Stokes HW.
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44   Gomez-Duarte OG, Kaper JB.
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45   Gonzalez-Perez MM, Ramos JL, Gallegos MT, Marques S.
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46   Gupta S, Jain S, Tyagi AK.
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47   Haak B, Fetzner S, Lingens F.
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48   Hakura A, Morimoto K, Sofuni T, Nohmi T.
Cloning and characterization of the Salmonella typhimurium ada gene, which encodes O6-methylguanine-DNA methyltransferase.
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49   Harmer T, Wu M, Schleif R.
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50   Hashimoto W, Kobayashi E, Nankai H, Sato N, Miya T, Kawai S, Murata K.
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51   Hassan MT, van der Lelie D, Springael D, Romling U, Ahmed N, Mergeay M.
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52   Hebert MD, Houghton JE.
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53   Heinrichs DE, Poole K.
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54   Hoe NP, Goguen JD.
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55   Hoe NP, Minion FC, Goguen JD.
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56   Holcroft CC, Egan SM.
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57   Holcroft CC, Egan SM.
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58   Hovey AK, Frank DW.
Analyses of the DNA-binding and transcriptional activation properties of ExsA, the transcriptional activator of the Pseudomonas aeruginosa exoenzyme S regulon.
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59   Ishida H, Fuziwara H, Kaibori Y, Horiuchi T, Sato K, Osada Y.
Cloning of multidrug resistance gene pqrA from Proteus vulgaris.
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60   Itoh Y.
Cloning and characterization of the aru genes encoding enzymes of the catabolic arginine succinyltransferase pathway in Pseudomonas aeruginosa.
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61   Iwaki H, Hasegawa Y, Teraoka M, Tokuyama T, Bergeron H, Lau PC.
Identification of a transcriptional activator (ChnR) and a 6-oxohexanoate dehydrogenase (ChnE) in the cyclohexanol catabolic pathway in Acinetobacter sp. Strain NCIMB 9871 and localization of the genes that encode them.
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62   Iwamoto M, Oku T
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63   Johnson CM, Schleif RF.
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64   Jordi BJ, Dagberg B, de Haan LA, Hamers AM, van der Zeijst BA, Gaastra W, Uhlin BE.
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65   Jordi BJ, van der Zeijst BA, Gaastra W.
Regions of the CFA/I promoter involved in the activation by the transcriptional activator CfaD and repression by the histone-like protein H-NS.
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66   Kamdar HV, Kamoun S, Kado CI
Restoration of pathogenicity of avirulent Xanthomonas oryzae pv. oryzae and X. campestris pathovars by reciprocal complementation with the hrpXo and hrpXc genes and identification of HrpX function by sequence analyses.
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67   Karlyshev AV, Galyov EE, Abramov VM, Zav'yalov VP.
Caf1R gene and its role in the regulation of capsule formation of Y. pestis.
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68   Kaufman MR, Jia J, Zeng L, Ha U, Chow M, Jin S.
Pseudomonas aeruginosa mediated apoptosis requires the ADP-ribosylating activity of exoS.
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69   Keyhani NO, Roseman S.
Wild-type Escherichia coli grows on the chitin disaccharide, N,N'-diacetylchitobiose, by expressing the cel operon.
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70   Kingsley RA, Reissbrodt R, Rabsch W, Ketley JM, Tsolis RM, Everest P, Dougan G, Baumler AJ, Roberts M, Williams PH.
Ferrioxamine-mediated Iron(III) utilization by Salmonella enterica.
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71   Klaasen P, de Graaf FK
Characterization of FapR, a positive regulator of expression of the 987P operon in enterotoxigenic Escherichia coli.
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72   Kofoid E, Rappleye C, Stojiljkovic I, Roth J.
The 17-gene ethanolamine (eut) operon of Salmonella typhimurium encodes five homologues of carboxysome shell proteins.
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73   Komeda H, Hori Y, Kobayashi M, Shimizu S.
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74   Kormanec J, Lempelova A, Farkasovsky M, Homerova D.
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75   Kwon HJ, Bennik MH, Demple B, Ellenberger T.
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76   Landini P, Volkert MR.
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77   Lange R, Wagner C, de Saizieu A, Flint N, Molnos J, Stieger M, Caspers P, Kamber M, Keck W, Amrein KE.
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78   Li Z, Demple B.
SoxS, an activator of superoxide stress genes in Escherichia coli. Purification and interaction with DNA.
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79   Lin JW, Yu KY, Chao YF, Weng SF.
The lumQ gene is linked to the lumP gene and the lux operon in Photobacterium leiognathi.
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80   Liu H, Haga K, Kasahara Y, Ogasawara N, Takahashi H, Yoshikawa H.
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81   Lostroh CP, Bajaj V, Lee CA
The cis requirements for transcriptional activation by HilA, a virulence determinant encoded on SPI-1.
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82   Lu CD, Abdelal AT.
The gdhB gene of pseudomonas aeruginosa encodes an arginine-inducible NAD(+)-dependent glutamate dehydrogenase which is subject to allosteric regulation.
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83   Macinga DR, Paradise MR, Parojcic MM, Rather PN.
Activation of the 2'-N-acetyltransferase gene [aac(2')-Ia] in Providencia stuartii by an interaction of AarP with the promoter region.
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84   Macinga DR, Parojcic MM, Rather PN.
Identification and analysis of aarP, a transcriptional activator of the 2'-N-acetyltransferase in Providencia stuartii.
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85   Manchado M, Michan C, Pueyo C.
Hydrogen peroxide activates the SoxRS regulon In vivo.
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86   Martin RG, Rosner JL.
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87   Matsusaki H, Manji S, Taguchi K, Kato M, Fukui T, Doi Y.
Cloning and molecular analysis of the Poly(3-hydroxybutyrate) and Poly(3-hydroxybutyrate-co-3-hydroxyalkanoate) biosynthesis genes in Pseudomonas sp. strain 61-3.
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88   Matthysse AG, Yarnall H, Boles SB, McMahan S.
A region of the Agrobacterium tumefaciens chromosome containing genes required for virulence and attachment to host cells.
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89   Michan CM, Busby SJ, Hyde EI.
The Escherichia coli MelR transcription activator: production of a stable fragment containing the DNA-binding domain.
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90   Moriguchi K, Maeda Y, Satou M, Kataoka M, Tanaka N, Yoshida K.
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91   Morohoshi F, Hayashi K, Munakata N.
Molecular analysis of Bacillus subtilis ada mutants deficient in the adaptive response to simple alkylating agents.
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92   Morohoshi F, Hayashi K, Munkata N.
Bacillus subtilis alkA gene encoding inducible 3-methyladenine DNA glycosylase is adjacent to the ada operon.
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93   Munson GP, Holcomb LG, Scott JR.
Novel group of virulence activators within the AraC family that are not restricted to upstream binding sites.
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94   Munson GP, Scott JR.
Binding site recognition by Rns, a virulence regulator in the AraC family.
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95   Munson GP, Scott JR.
Rns, a virulence regulator within the AraC family, requires binding sites upstream and downstream of its own promoter to function as an activator.
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96   Murphree D, Froehlich B, Scott JR.
Transcriptional control of genes encoding CS1 pili: negative regulation by a silencer and positive regulation by Rns.
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97   Nakayama S, Watanabe H.
Involvement of cpxA, a sensor of a two-component regulatory system, in the pH-dependent regulation of expression of Shigella sonnei virF gene.
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98   Nakayama Si, Watanabe H.
Identification of cpxR as a positive regulator essential for expression of the Shigella sonnei virF gene.
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99   Niland P, Huhne R, Muller-Hill B.
How AraC interacts specifically with its target DNAs.
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100   Nishijyo T, Park SM, Lu CD, Itoh Y, Abdelal AT.
Molecular characterization and regulation of an operon encoding a system for transport of arginine and ornithine and the ArgR regulatory protein in Pseudomonas aeruginosa.
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101   Ogierman MA, Manning PA.
Homology of TcpN, a putative regulatory protein of Vibrio cholerae, to the AraC family of transcriptional activators.
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102   Ohnishi Y, Nishiyama Y, Sato R, Kameyama S, Horinouchi S.
An oligoribonuclease gene in Streptomyces griseus.
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103   Overhage J, Kresse AU, Priefert H, Sommer H, Krammer G, Rabenhorst J, Steinbuchel A.
Molecular characterization of the genes pcaG and pcaH, encoding protocatechuate 3,4-dioxygenase, which are essential for vanillin catabolism in Pseudomonas sp. Strain HR199.
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