Essential genes in Bacillus subtilis: a re-evaluation after ten years.
暂无分享,去创建一个
[1] C. Condon,et al. The Essential Function of B. subtilis RNase III Is to Silence Foreign Toxin Genes , 2012, PLoS genetics.
[2] J. Stülke,et al. Cyclic Di-AMP Homeostasis in Bacillus subtilis , 2012, The Journal of Biological Chemistry.
[3] Leo Eberl,et al. Essential genes as antimicrobial targets and cornerstones of synthetic biology. , 2012, Trends in biotechnology.
[4] Fangfang Xia,et al. Building the repertoire of dispensable chromosome regions in Bacillus subtilis entails major refinement of cognate large-scale metabolic model , 2012, Nucleic acids research.
[5] C. T. Lauhon. Mechanism of N6-threonylcarbamoyladenonsine (t(6)A) biosynthesis: isolation and characterization of the intermediate threonylcarbamoyl-AMP. , 2012, Biochemistry.
[6] Sylvain Durand,et al. Type I toxin-antitoxin systems in Bacillus subtilis , 2012, RNA biology.
[7] F. Kawamura,et al. Inactivation of Ribosomal Protein Genes in Bacillus subtilis Reveals Importance of Each Ribosomal Protein for Cell Proliferation and Cell Differentiation , 2012, Journal of bacteriology.
[8] P. Graumann,et al. Bacillus subtilis hlpB Encodes a Conserved Stand-Alone HNH Nuclease-Like Protein That Is Essential for Viability Unless the hlpB Deletion Is Accompanied by the Deletion of Genes Encoding the AddAB DNA Repair Complex , 2012, Journal of bacteriology.
[9] S. Copley. Moonlighting is mainstream: Paradigm adjustment required , 2012, BioEssays : news and reviews in molecular, cellular and developmental biology.
[10] L. Márquez-Magaña,et al. The extracytoplasmic function sigma factor SigY is important for efficient maintenance of the Spβ prophage that encodes sublancin in Bacillus subtilis. , 2012, DNA and cell biology.
[11] R. Lewis,et al. RNA degradation in Bacillus subtilis: an interplay of essential endo‐ and exoribonucleases , 2012, Molecular microbiology.
[12] M. Ackermann,et al. Patterns of Evolutionary Conservation of Essential Genes Correlate with Their Compensability , 2012, PLoS genetics.
[13] B. Schwikowski,et al. Condition-Dependent Transcriptome Reveals High-Level Regulatory Architecture in Bacillus subtilis , 2012, Science.
[14] C. Condon,et al. Three Essential Ribonucleases—RNase Y, J1, and III—Control the Abundance of a Majority of Bacillus subtilis mRNAs , 2012, PLoS genetics.
[15] J. Helmann,et al. Analysis of the role of Bacillus subtilis σM in β‐lactam resistance reveals an essential role for c‐di‐AMP in peptidoglycan homeostasis , 2012, Molecular microbiology.
[16] S. Matsuoka,et al. The Bacillus subtilis essential gene dgkB is dispensable in mutants with defective lipoteichoic acid synthesis. , 2011, Genes & genetic systems.
[17] Jörg Stülke,et al. SubtiWiki—a comprehensive community resource for the model organism Bacillus subtilis , 2011, Nucleic Acids Res..
[18] Peter G Schultz,et al. Systematic chromosomal deletion of bacterial ribosomal protein genes. , 2011, Journal of molecular biology.
[19] Leo Eberl,et al. Essence of life: essential genes of minimal genomes. , 2011, Trends in cell biology.
[20] Raghuvir N. Sengupta,et al. The mechanism of peptidyl transfer catalysis by the ribosome. , 2011, Annual review of biochemistry.
[21] E. Dervyn,et al. Life without the essential bacterial tRNAIle2–lysidine synthetase TilS: a case of tRNA gene recruitment in Bacillus subtilis , 2011, Molecular microbiology.
[22] J. Bernhardt,et al. Systems-wide temporal proteomic profiling in glucose-starved Bacillus subtilis , 2010, Nature communications.
[23] N. Ogasawara,et al. Repression of sigK Intervening (skin) Element Gene Expression by the CI-Like Protein SknR and Effect of SknR Depletion on Growth of Bacillus subtilis Cells , 2010, Journal of bacteriology.
[24] Nico Pietack,et al. The RNA degradosome in Bacillus subtilis: identification of CshA as the major RNA helicase in the multiprotein complex , 2010, Molecular microbiology.
[25] Thomas H Segall-Shapiro,et al. Creation of a Bacterial Cell Controlled by a Chemically Synthesized Genome , 2010, Science.
[26] Rick L. Stevens,et al. Building the blueprint of life , 2010, Biotechnology journal.
[27] D. Portnoy,et al. c-di-AMP Secreted by Intracellular Listeria monocytogenes Activates a Host Type I Interferon Response , 2010, Science.
[28] M. Muñoz-Márquez,et al. Effect of pfkA chromosomal interruption on growth, sporulation, and production of organic acids in Bacillus subtilis , 2010, Journal of basic microbiology.
[29] M. Ota,et al. An evaluation of minimal cellular functions to sustain a bacterial cell , 2009, BMC Systems Biology.
[30] H. Putzer,et al. RNase Y, a novel endoribonuclease, initiates riboswitch turnover in Bacillus subtilis , 2009, The EMBO journal.
[31] Lan-fen Li,et al. Structural and biochemical analyses of YvgN and YtbE from Bacillus subtilis , 2009, Protein science : a publication of the Protein Society.
[32] Roy R Chaudhuri,et al. Comprehensive identification of essential Staphylococcus aureus genes using Transposon-Mediated Differential Hybridisation (TMDH) , 2009, BMC Genomics.
[33] J. Wiltsie,et al. The Catalytic Flexibility of tRNAIle-lysidine Synthetase Can Generate Alternative tRNA Substrates for Isoleucyl-tRNA Synthetase , 2009, Journal of Biological Chemistry.
[34] U. Völker,et al. Novel Activities of Glycolytic Enzymes in Bacillus subtilis , 2009, Molecular & Cellular Proteomics.
[35] K. Devine,et al. A matter of life and death: cell wall homeostasis and the WalKR (YycGF) essential signal transduction pathway , 2008, Molecular microbiology.
[36] J. Dubois,et al. Immunity to the Bacteriocin Sublancin 168 Is Determined by the SunI (YolF) Protein of Bacillus subtilis , 2008, Antimicrobial Agents and Chemotherapy.
[37] J. Hoch,et al. Essentiality, Bypass, and Targeting of the YycFG (VicRK) Two-Component Regulatory System in Gram-Positive Bacteria , 2008, Journal of bacteriology.
[38] M. Vaneechoutte,et al. Quantitative determination by real-time PCR of four vaginal Lactobacillus species, Gardnerella vaginalis and Atopobium vaginae indicates an inverse relationship between L. gasseri and L. iners , 2007, BMC Microbiology.
[39] N. Ogasawara,et al. Reassessment of the In Vivo Functions of DNA Polymerase I and RNase H in Bacterial Cell Growth , 2007, Journal of bacteriology.
[40] A. J. Carpousis. The RNA degradosome of Escherichia coli: an mRNA-degrading machine assembled on RNase E. , 2007, Annual review of microbiology.
[41] Jörg Stülke,et al. A regulatory protein–protein interaction governs glutamate biosynthesis in Bacillus subtilis: the glutamate dehydrogenase RocG moonlights in controlling the transcription factor GltC , 2007, Molecular microbiology.
[42] D. Rice,et al. Crystal structure of S. aureus YlaN, an essential leucine rich protein involved in the control of cell shape , 2007, Proteins.
[43] K. Devine,et al. The essential YycFG two‐component system controls cell wall metabolism in Bacillus subtilis , 2007, Molecular microbiology.
[44] C. Rock,et al. Coupling of Fatty Acid and Phospholipid Synthesis in Bacillus subtilis , 2007, Journal of bacteriology.
[45] J. Errington,et al. Essential Bacterial Functions Encoded by Gene Pairs , 2006, Journal of bacteriology.
[46] Jeff Errington,et al. Functional analysis of 11 putative essential genes in Bacillus subtilis. , 2006, Microbiology.
[47] A. Albertini,et al. YrxA Is the Transcriptional Regulator That Represses De Novo NAD Biosynthesis in Bacillus subtilis , 2005, Journal of bacteriology.
[48] Jae-Hoon Song,et al. Identification of essential genes in Streptococcus pneumoniae by allelic replacement mutagenesis. , 2005, Molecules and cells.
[49] O. Pellegrini,et al. Ribonucleases J1 and J2: two novel endoribonucleases in B.subtilis with functional homology to E.coli RNase E , 2005, Nucleic acids research.
[50] Shane T. Jensen,et al. The Program of Gene Transcription for a Single Differentiating Cell Type during Sporulation in Bacillus subtilis , 2004, PLoS biology.
[51] Naotake Ogasawara,et al. Zinc is a key factor in controlling alternation of two types of L31 protein in the Bacillus subtilis ribosome , 2004, Molecular microbiology.
[52] J. Hoch,et al. Developing inhibitors to selectively target two-component and phosphorelay signal transduction systems of pathogenic microorganisms. , 2004, Current medicinal chemistry.
[53] A. Marchfelder,et al. Endonucleolytic processing of CCA‐less tRNA precursors by RNase Z in Bacillus subtilis , 2003, The EMBO journal.
[54] S. Ehrlich,et al. Essential Bacillus subtilis genes , 2003, Proceedings of the National Academy of Sciences of the United States of America.
[55] K. Haga,et al. Analysis of the Bacillus subtilis spoIIIJ Gene and Its Paralogue Gene, yqjG , 2002, Journal of bacteriology.
[56] R. Heath,et al. The Enoyl-[acyl-carrier-protein] Reductases FabI and FabL fromBacillus subtilis * , 2000, The Journal of Biological Chemistry.
[57] D. Bechhofer,et al. Endoribonuclease RNase III is essential in Bacillus subtilis , 2000, Molecular microbiology.
[58] A. Moir,et al. σM, an ECF RNA polymerase sigma factor of Bacillus subtilis 168, is essential for growth and survival in high concentrations of salt , 1999, Molecular microbiology.
[59] A. Wach. PCR‐synthesis of marker cassettes with long flanking homology regions for gene disruptions in S. cerevisiae , 1996, Yeast.
[60] P. Stragier,et al. Antibiotic-resistance cassettes for Bacillus subtilis. , 1995, Gene.
[61] P. Setlow,et al. Cloning and nucleotide sequences of the genes encoding triose phosphate isomerase, phosphoglycerate mutase, and enolase from Bacillus subtilis , 1994, Journal of bacteriology.
[62] S Pestka,et al. Ribosomal protein alterations in thiostrepton- and Micrococcin-resistant mutants of Bacillus subtilis. , 1979, The Journal of biological chemistry.
[63] F. Vandenesch,et al. Staphylococcus aureus endoribonuclease III purification and properties. , 2008, Methods in enzymology.
[64] F. Vandenesch,et al. Chapter 16 Staphylococcus aureus Endoribonuclease III , 2008 .