[1] | Garcia Vescovi E, Sciara MI, Castelli ME (2010) Two component systems in the spatial program of bacteria. Curr Opin Microbiol 13: 210–218.
|
[2] | Wuichet K, Cantwell BJ, Zhulin IB (2010) Evolution and phyletic distribution of two-component signal transduction systems. Curr Opin Microbiol 13: 219–225.
|
[3] | Silversmith RE (2010) Auxiliary phosphatases in two-component signal transduction. Curr Opin Microbiol 13: 177–183.
|
[4] | Hazelbauer GL, Lai WC (2010) Bacterial chemoreceptors: providing enhanced features to two-component signaling. Curr Opin Microbiol 13: 124–132.
|
[5] | Atkinson MR, Ninfa AJ (1998) Role of the GlnK signal transduction protein in the regulation of nitrogen assimilation in Escherichia coli. Mol Microbiol 29: 431–447.
|
[6] | Buelow DR, Raivio TL (2010) Three (and more) component regulatory systems - auxiliary regulators of bacterial histidine kinases. Mol Microbiol 75: 547–566.
|
[7] | Goodman AL, Merighi M, Hyodo M, Ventre I, Filloux A, et al. (2009) Direct interaction between sensor kinase proteins mediates acute and chronic disease phenotypes in a bacterial pathogen. Genes Dev 23: 249–259.
|
[8] | Lapouge K, Schubert M, Allain FH, Haas D (2008) Gac/Rsm signal transduction pathway of gamma-proteobacteria: from RNA recognition to regulation of social behaviour. Mol Microbiol 67: 241–253.
|
[9] | Raghavan V, Groisman EA (2010) Orphan and hybrid two-component system proteins in health and disease. Curr Opin Microbiol 13: 226–231.
|
[10] | Workentine ML, Chang L, Ceri H, Turner RJ (2009) The GacS-GacA two-component regulatory system of Pseudomonas fluorescens: a bacterial two-hybrid analysis. FEMS Microbiol Lett 292: 50–56.
|
[11] | Yan Q, Wu XG, Wei HL, Wang HM, Zhang LQ (2009) Differential control of the PcoI/PcoR quorum-sensing system in Pseudomonas fluorescens 2P24 by sigma factor RpoS and the GacS/GacA two-component regulatory system. Microbiol Res 164: 18–26.
|
[12] | Kato A, Groisman EA (2004) Connecting two-component regulatory systems by a protein that protects a response regulator from dephosphorylation by its cognate sensor. Genes Dev 18: 2302–2313.
|
[13] | Gooderham WJ, Hancock RE (2009) Regulation of virulence and antibiotic resistance by two-component regulatory systems in Pseudomonas aeruginosa. FEMS Microbiol Rev 33: 279–294.
|
[14] | Goodman AL, Kulasekara B, Rietsch A, Boyd D, Smith RS, et al. (2004) A signaling network reciprocally regulates genes associated with acute infection and chronic persistence in Pseudomonas aeruginosa. Dev Cell 7: 745–754.
|
[15] | Eguchi Y, Utsumi R (2005) A novel mechanism for connecting bacterial two-component signal-transduction systems. Trends Biochem Sci 30: 70–72.
|
[16] | Chen HD, Jewett MW, Groisman EA (2011) Ancestral genes can control the ability of horizontally acquired loci to confer new traits. PLoS Genet 7: e1002184.
|
[17] | Mitrophanov AY, Jewett MW, Hadley TJ, Groisman EA (2008) Evolution and dynamics of regulatory architectures controlling polymyxin B resistance in enteric bacteria. PLoS Genet 4: e1000233.
|
[18] | Al-Khodor S, Kalachikov S, Morozova I, Price CT, Abu Kwaik Y (2009) The PmrA/PmrB two-component system of Legionella pneumophila is a global regulator required for intracellular replication within macrophages and protozoa. Infect Immun 77: 374–386.
|
[19] | Perez JC, Groisman EA (2007) Acid pH activation of the PmrA/PmrB two-component regulatory system of Salmonella enterica. Molecular Microbiology 63: 283–293.
|
[20] | McPhee JB, Bains M, Winsor G, Lewenza S, Kwasnicka A, et al. (2006) Contribution of the PhoP-PhoQ and PmrA-PmrB two-component regulatory systems to Mg2+-induced gene regulation in Pseudomonas aeruginosa. J Bacteriol 188: 3995–4006.
|
[21] | Cheng HY, Chen YF, Peng HL (2010) Molecular characterization of the PhoPQ-PmrD-PmrAB mediated pathway regulating polymyxin B resistance in Klebsiella pneumoniae CG43. J Biomed Sci 17: 60.
|
[22] | Kato A, Mitrophanov AY, Groisman EA (2007) A connector of two-component regulatory systems promotes signal amplification and persistence of expression. Proc Natl Acad Sci U S A 104: 12063–12068.
|
[23] | Salvado B, Karathia H, Chimenos AU, Vilaprinyo E, Omholt S, et al. (2011) Methods for and results from the study of design principles in molecular systems. Mathematical Biosciences 231: 3–18.
|
[24] | Alves R, Savageau MA (2003) Comparative analysis of prototype two-component systems with either bifunctional or monofunctional sensors: differences in molecular structure and physiological function. Mol Microbiol 48: 25–51.
|
[25] | Igoshin OA, Alves R, Savageau MA (2008) Hysteretic and graded responses in bacterial two-component signal transduction. Mol Microbiol 68: 1196–1215.
|
[26] | Alves R, Vilaprinyo E, Hernandez-Bermejo B, Sorribas A (2008) Mathematical formalisms based on approximated kinetic representations for modeling genetic and metabolic pathways. Biotechnology and Genetic Engineering Reviews Vol 25 25: 1–40.
|
[27] | Batchelor E, Goulian M (2003) Robustness and the cycle of phosphorylation and dephosphorylation in a two-component regulatory system. Proc Natl Acad Sci U S A 100: 691–696.
|
[28] | Bhattacharya M, Biswas A, Das AK (2010) Interaction analysis of TcrX/Y two component system from Mycobacterium tuberculosis. Biochimie 92: 263–272.
|
[29] | Stewart RC, Van Bruggen R (2004) Association and dissociation kinetics for CheY interacting with the P2 domain of CheA. J Mol Biol 336: 287–301.
|
[30] | Yoshida T, Cai S, Inouye M (2002) Interaction of EnvZ, a sensory histidine kinase, with phosphorylated OmpR, the cognate response regulator. Mol Microbiol 46: 1283–1294.
|
[31] | Alves R, Savageau MA (2000) Extending the method of mathematically controlled comparison to include numerical comparisons. Bioinformatics 16: 786–798.
|
[32] | Novick A, Weiner M (1957) Enzyme Induction as an All-or-None Phenomenon. Proc Natl Acad Sci U S A 43: 553–566.
|
[33] | Monod J, Jacob F (1961) Teleonomic mechanisms in cellular metabolism, growth, and differentiation. Cold Spring Harb Symp Quant Biol 26: 389–401.
|
[34] | Tiwari A, Ray JC, Narula J, Igoshin OA (2011) Bistable responses in bacterial genetic networks: designs and dynamical consequences. Mathematical Biosciences 231: 76–89.
|
[35] | Igoshin OA, Price CW, Savageau MA (2006) Signalling network with a bistable hysteretic switch controls developmental activation of the sigma transcription factor in Bacillus subtilis. Mol Microbiol 61: 165–184.
|
[36] | Wolfe AJ, Conley MP, Kramer TJ, Berg HC (1987) Reconstitution of signaling in bacterial chemotaxis. J Bacteriol 169: 1878–1885.
|
[37] | Kamberov ES, Atkinson MR, Feng J, Chandran P, Ninfa AJ (1994) Sensory components controlling bacterial nitrogen assimilation. Cell Mol Biol Res 40: 175–191.
|
[38] | Perez JC, Groisman EA (2009) Evolution of transcriptional regulatory circuits in bacteria. Cell 138: 233–244.
|
[39] | Fange D, Nilsson K, Tenson T, Ehrenberg M (2009) Drug efflux pump deficiency and drug target resistance masking in growing bacteria. Proc Natl Acad Sci U S A 106: 8215–8220.
|
[40] | Brencic A, McFarland KA, McManus HR, Castang S, Mogno I, et al. (2009) The GacS/GacA signal transduction system of Pseudomonas aeruginosa acts exclusively through its control over the transcription of the RsmY and RsmZ regulatory small RNAs. Mol Microbiol 73: 434–445.
|
[41] | Boots M, Hudson PJ, Sasaki A (2004) Large shifts in pathogen virulence relate to host population structure. Science 303: 842–844.
|
[42] | Lin PL, Flynn JL (2010) Understanding latent tuberculosis: a moving target. J Immunol 185: 15–22.
|
[43] | Veening JW, Smits WK, Kuipers OP (2008) Bistability, epigenetics, and bet-hedging in bacteria. Annu Rev Microbiol 62: 193–210.
|
[44] | Minoia M, Gaillard M, Reinhard F, Stojanov M, Sentchilo V, et al. (2008) Stochasticity and bistability in horizontal transfer control of a genomic island in Pseudomonas. Proc Natl Acad Sci U S A 105: 20792–20797.
|
[45] | Wolfram Research I (2010) Mathematica. Champaign, Illinois: Wolfram Research, Inc.
|
[46] | Hoops S, Sahle S, Gauges R, Lee C, Pahle J, et al. (2006) COPASI–a COmplex PAthway SImulator. Bioinformatics 22: 3067–3074.
|
[47] | Nalca Y, Jansch L, Bredenbruch F, Geffers R, Buer J, et al. (2006) Quorum-sensing antagonistic activities of azithromycin in Pseudomonas aeruginosa PAO1: a global approach. Antimicrob Agents Chemother 50: 1680–1688.
|
[48] | Mattison K, Kenney LJ (2002) Phosphorylation alters the interaction of the response regulator OmpR with its sensor kinase EnvZ. J Biol Chem 277: 11143–11148.
|