The phage λ CII transcriptional activator carries a C-terminal domain signaling for rapid proteolysis
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D. Court | A. Oppenheim | O. Kobiler | Oren Kobiler | Amos B. Oppenheim | Donald L. Court | Simi Koby | Dinah Teff | S. Koby | D. Teff
[1] A. Oppenheim,et al. The Thylakoid FtsH Protease Plays a Role in the Light-Induced Turnover of the Photosystem II D1 Protein , 2000, Plant Cell.
[2] M. Rosenberg,et al. Purification and properties of a transcriptional activator. The cII protein of phage lambda. , 1982, The Journal of biological chemistry.
[3] G. Storz,et al. Identification of novel small RNAs using comparative genomics and microarrays. , 2001, Genes & development.
[4] M. Rosenberg,et al. Identification of the DNA binding domain of the phage lambda cII transcriptional activator and the direct correlation of cII protein stability with its oligomeric forms. , 1988, Genes & development.
[5] J. French,et al. Analysis of genetic instability during mammary tumor progression using a novel selection-based assay for in vivo mutations in a bacteriophage lambda transgene target. , 1996, Proceedings of the National Academy of Sciences of the United States of America.
[6] A. Oppenheim,et al. Characterization of a conserved alpha-helical, coiled-coil motif at the C-terminal domain of the ATP-dependent FtsH (HflB) protease of Escherichia coli. , 2000, Journal of molecular biology.
[7] A. Kihara,et al. Host regulation of lysogenic decision in bacteriophage lambda: transmembrane modulation of FtsH (HflB), the cII degrading protease, by HflKC (HflA). , 1997, Proceedings of the National Academy of Sciences of the United States of America.
[8] L. Krinke,et al. RNase III-dependent hydrolysis of lambda cII-O gene mRNA mediated by lambda OOP antisense RNA. , 1990, Genes & development.
[9] Hirotada Mori,et al. Heat shock regulation in the ftsH null mutant of Escherichia coli: dissection of stability and activity control mechanisms of σ32in vivo , 1998, Molecular microbiology.
[10] A. Wilkinson,et al. Dissecting the Role of a Conserved Motif (the Second Region of Homology) in the AAA Family of ATPases , 1999, The Journal of Biological Chemistry.
[11] Sergio Cocozza,et al. Spastic Paraplegia and OXPHOS Impairment Caused by Mutations in Paraplegin, a Nuclear-Encoded Mitochondrial Metalloprotease , 1998, Cell.
[12] A. Oppenheim,et al. An internal region of the RpoH heat shock transcription factor is critical for rapid degradation by the FtsH protease , 2001, FEBS letters.
[13] R. Lease,et al. A trans-acting RNA as a control switch in Escherichia coli: DsrA modulates function by forming alternative structures. , 2000, Proceedings of the National Academy of Sciences of the United States of America.
[14] S. Gottesman,et al. Proteases and their targets in Escherichia coli. , 1996, Annual review of genetics.
[15] P. Harbach,et al. Spontaneous mutation spectrum at the lambda cII locus in liver, lung, and spleen tissue of Big Blue® transgenic mice , 1999, Environmental and Molecular Mutagenesis.
[16] H. Echols,et al. Control of phage λ development by stability and synthesis of cll protein: Role of the viral clll and host hflA, himA and himD genes , 1982, Cell.
[17] D Kornitzer,et al. The activity of the CIII regulator of lambdoid bacteriophages resides within a 24-amino acid protein domain. , 1991, Proceedings of the National Academy of Sciences of the United States of America.
[18] H. Margalit,et al. Novel small RNA-encoding genes in the intergenic regions of Escherichia coli , 2001, Current Biology.
[19] C. Georgopoulos,et al. The dnaK protein modulates the heat-shock response of Escherichia coli , 1983, Cell.
[20] D. Court,et al. High efficiency mutagenesis, repair, and engineering of chromosomal DNA using single-stranded oligonucleotides , 2001, Proceedings of the National Academy of Sciences of the United States of America.
[21] S. Gottesman,et al. Posttranslational quality control: folding, refolding, and degrading proteins. , 1999, Science.
[22] H. Bujard,et al. Independent and tight regulation of transcriptional units in Escherichia coli via the LacR/O, the TetR/O and AraC/I1-I2 regulatory elements. , 1997, Nucleic acids research.
[23] I. Herskowitz,et al. Mutants of bacteriophage λ which do not require the cIII gene for efficient lysogenization , 1978 .
[24] H. Mori,et al. Escherichia coli FtsH is a membrane‐bound, ATP‐dependent protease which degrades the heat‐shock transcription factor sigma 32. , 1995, The EMBO journal.
[25] B. Bukau,et al. The C Terminus of ς32 Is Not Essential for Degradation by FtsH , 2001, Journal of bacteriology.
[26] P. Chakrabarti,et al. Purification and Crystallization of CII: An Unstable Transcription Activator from Phage λ , 2001 .
[27] Koreaki Ito,et al. Subunit a of proton ATPase F0 sector is a substrate of the FtsH protease in Escherichia coli , 1996, FEBS letters.
[28] T. Ziv,et al. Proteolysis of Bacteriophage λ CII byEscherichia coli FtsH (HflB) , 2000, Journal of bacteriology.
[29] T. Baker,et al. Overlapping recognition determinants within the ssrA degradation tag allow modulation of proteolysis , 2001, Proceedings of the National Academy of Sciences of the United States of America.
[30] A. Oppenheim,et al. Stability of CII is a key element in the cold stress response of bacteriophage lambda infection , 1997, Journal of bacteriology.
[31] Gerben J. Zylstra,et al. Plasposons: Modular Self-Cloning Minitransposon Derivatives for Rapid Genetic Analysis of Gram-Negative Bacterial Genomes , 1998, Applied and Environmental Microbiology.
[32] D. Friedman. Interaction between bacteriophage λ and its Escherichia coli host , 1992 .
[33] M. Kessel,et al. Proteolysis of the phage λ CII regulatory protein by FtsH (HflB) of Escherichia coli , 1997, Molecular microbiology.
[34] R. Sauer,et al. The ClpXP and ClpAP proteases degrade proteins with carboxy-terminal peptide tails added by the SsrA-tagging system. , 1998, Genes & development.