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  1. Impact of Anaerobiosis on Expression of the Iron-Responsive Fur and RyhB Regulons
  2. How Is Fe-S Cluster Formation Regulated?
  3. 13. Sensing the cellular Fe-S cluster demand: a structural, functional, and phylogenetic overview of Escherichia coli IscR
  4. Coordinate Regulation of the Suf and Isc Fe-S Cluster Biogenesis Pathways by IscR Is Essential for Viability of Escherichia coli
  5. The Influence of Repressor DNA Binding Site Architecture on Transcriptional Control
  6. Aromatic inhibitors derived from ammonia-pretreated lignocellulose hinder bacterial ethanologenesis by activating regulatory circuits controlling inhibitor efflux and detoxification
  7. IscR Is Essential for Yersinia pseudotuberculosis Type III Secretion and Virulence
  8. Global Responses of Bacteria to Oxygen Deprivation
  9. The Bacterial Response Regulator ArcA Uses a Diverse Binding Site Architecture to Regulate Carbon Oxidation Globally
  10. dPeak: High Resolution Identification of Transcription Factor Binding Sites from PET and SET ChIP-Seq Data
  11. Transcriptome Changes Associated with Anaerobic Growth in Yersinia intermedia (ATCC29909)
  12. Genome-scale Analysis of Escherichia coli FNR Reveals Complex Features of Transcription Factor Binding
  13. Studies of IscR reveal a unique mechanism for metal-dependent regulation of DNA binding specificity
  14. Regulation of iron–sulphur cluster homeostasis through transcriptional control of the Isc pathway by [2Fe–2S]–IscR in Escherichia coli
  15. Characterization of the [2Fe-2S] Cluster of Escherichia coli Transcription Factor IscR
  16. Evolution of the metabolic and regulatory networks associated with oxygen availability in two phytopathogenic enterobacteria
  17. Iron-containing transcription factors and their roles as sensors
  18. A shared mechanism of SoxR activation by redox‐cycling compounds
  19. Reconstruction of the Core and Extended Regulons of Global Transcription Factors
  20. Chapter 42 Techniques to Isolate O2-Sensitive Proteins
  21. The Impact of O2 on the Fe–S Cluster Biogenesis Requirements of Escherichia coli FNR
  22. Two-pronged survival strategy for the major cystic fibrosis pathogen, Pseudomonas aeruginosa, lacking the capacity to degrade nitric oxide during anaerobic respiration
  23. IscR‐dependent gene expression links iron‐sulphur cluster assembly to the control of O2‐regulated genes in Escherichia coli
  24. ClpXP-dependent Proteolysis of FNR upon Loss of its O2-sensing [4Fe–4S] Cluster
  25. Exploiting Thiol Modifications
  26. Superoxide Destroys the [2Fe-2S]2+ Cluster of FNR from Escherichia coli
  27. The role of Fe-S clusters in the stability of the transcription factor FNR
  28. The role of Fe–S proteins in sensing and regulation in bacteria
  29. Techniques for Studying the Oxygen-Sensitive Transcription Factor FNR from Escherichia coli
  30. Characterization of activating region 3 from Escherichia coli FNR
  31. FNR‐dependent activation of the class II dmsA and narG promoters of Escherichia coli requires FNR‐activating regions 1 and 3
  32. Mössbauer studies of the FNR transcription factor in whole Escherichia coli cells
  33. Fe-S proteins in sensing and regulatory functions
  34. Oxygen sensing by the global regulator, FNR: the role of the iron-sulfur cluster
  35. Identification of a contact site for different transcription activators in region 4 of the Escherichia coli RNA polymerase σ 70 subunit 1 1Edited by R. Ebright
  36. Redox control of gene expression involving ironsulfur proteins. Change of oxidation‐state or assembly dissembly of FeS clusetrs?
  37. Redox control of gene expression involving iron‐sulfur proteins. Change of oxidation‐state or assembly/disassembly of Fe‐S clusters?
  38. In vitroAnalysis of a Constitutively Active Mutant Form of theEscherichia coliGlobal Transcription Factor FNR
  39. The puf operon region of Rhodobacter sphaeroides
  40. The puf operon region of Rhodobacter sphaeroides
  41. On the role of the light‐harvesting B880 in the correct insertion of the reaction center of Rhodobacter capsulatus and Rhodobacter sphaeroides
  42. Characterization of light-harvesting mutants of Rhodopseudomonas sphaeroides. I. Measurement of the efficiency of energy transfer from light-harvesting complexes to the reaction center