What's New
3.3.2  Bacterial Ion Channels (EMMA L. R. COMPTON AND JOSEPH A. MINDELL) (06-01-2010)
3.3.1  Solute and Ion Transport: Outer Membrane Pores and Receptors (SATOSHI YAMASHITA AND SUSAN K. BUCHANAN) (03-31-2010)
10.2.1  Reconstruction and Use of Microbial Metabolic Networks: the Core Escherichia coli Metabolic Model as an Educational Guide (JEFFREY D. ORTH, R. M. T. FLEMING, AND BERNHARD Ø. PALSSON) (02-18-2010)
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3.3.2  Bacterial Ion Channels
3.3.1  Solute and Ion Transport: Outer Membrane Pores and Receptors
10.2.1  Reconstruction and Use of Microbial Metabolic Networks: the Core Escherichia coli Metabolic Model as an Educational Guide
1.1.1  Escherichia coli and the French School of Molecular Biology
4.4.1  Initiation of DNA Replication
3.6.3.3  Biosynthesis of Menaquinone (Vitamin K2) and Ubiquinone (Coenzyme Q)
8.6.1.3  Uropathogenic Escherichia coli
5.5  Cell-to-Cell Signaling in Escherichia coli and Salmonella
8.8.3  NLRs: Nucleotide-Binding Domain and Leucine-Rich-Repeat-Containing Proteins
5.4.5  Osmotic Stress
2.6  The Nucleoid: an Overview
5.4.4.3  Transition Metal Homeostasis
4.7.4  Glycogen: Biosynthesis and Regulation
5.4.4  Oxidative Stress
8.8.11  Adaptive Immune Responses during Salmonella Infection
3.6.1.9  Biosynthesis of Histidine
3.2.7  Oxygen as Acceptor
4.4.2  Replisome Dynamics during Chromosome Duplication
4.4.9  DNA Topoisomerases
5.4.7  Envelope Stress Responses
3.6.3.10  Biogenesis and Homeostasis of Nicotinamide Adenine Dinucleotide Cofactor
4.4.5  DNA Methylation
3.6.3.7  Biosynthesis of Thiamin Pyrophosphate
4.7.3  Structure and Assembly of Escherichia coli Capsules
2.5.4  Structural Basis for the Decoding Mechanism
3.6.3.12  Cytochrome c Biogenesis
3.6.1.8  Biosynthesis of the Aromatic Amino Acids
4.7.1.5  Peptidoglycan Recycling
3.6.4  Biosynthesis of Membrane Lipids
5.2.3  Modulation of Chemical Composition and Other Parameters of the Cell at Different Exponential Growth Rates
5.4.4.2  Magnesium Transport and Magnesium Homeostasis
2.5.7  Antibiotic Resistance Mechanisms, with an Emphasis on Those Related to the Ribosome
3.6.1  Amino Acid Metabolism and Fluxes
3.6.2  Nucleotides, Nucleosides, and Nucleobases
8.6.2.2  Invasive Salmonellosis in Humans
3.2.5  Respiration of Nitrate and Nitrite
3.6.3.8  Biosynthesis and Use of Cobalamin (B12)
3.6.3.14  From Iron and Cysteine to Iron-Sulfur Clusters: the Biogenesis Protein Machineries
5.4.3  The SOS Regulatory Network
2.5.6  Modification of the Ribosome and the Translational Machinery during Reduced Growth Due to Environmental Stress
3.2.2  The Aerobic and Anaerobic Respiratory Chain of Escherichia coli and Salmonella enterica: Enzymes and Energetics
4.5.2.2  Promoter Escape by Escherichia coli RNA Polymerase
4.7.1.7  Undecaprenyl Phosphate Synthesis
2.5.3  Assembly of the 30S Ribosomal Subunit
3.6.1.11  Biosynthesis of Cysteine
3.6.3.13  Biosynthesis and Insertion of the Molybdenum Cofactor
4.5.3.1  Nus Factors of Escherichia coli
5.4.2  The Cold Shock Response
3.6.3.5  Biotin and Lipoic Acid: Synthesis, Attachment, and Regulation
3.2.3  ATP Synthesis by Oxidative Phosphorylation
 
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