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This is the first book on microbial energetics at this level, presenting an integrated approach to all major aspects of the subject. It is a research level introduction to bacterial bioenergetics, aimed at postgraduates coming to the field and other researchers wishing to acquire specialist knowledge. Each chapter covers the basics of the relevant topic leading to more extensive discussion relating to specialist research interests. Energy transduction is fundamental to all biochemical/physiological processes and therefore of interest to many.
An essential resource for biochemists, biophysicists and chemical biologists, providing a complete understanding of the molecular machines of bioenergetics.
First published in 1987. Routledge is an imprint of Taylor & Francis, an informa company.
Adenine nucleotides and their role in metabolism. Pathways of glucose metabolism and their atp yields. Energetics of microbial growth. Energy transduction in membranes. Transport processes. Energy conservation in chemoheterotrophic aerobic metabolism. Energy conservation in chemoheterotrophic anaerobic metabolism. Energy conservation in chemolithotrophic bacteria. Energy conservation in bacterial photosynthesis. Microbial energy reserve compounds 145. Energetics of microbial survival.
Energy Transduction in Biological Membranes was primarily designed for graduate courses in bioenergetics. Not only does it discuss basic principles and concepts central to modern membrane biochemistry, biophysics and molecular biology, but also (1) the components and pathways for electron transport and hydrogen ion translocation, and (2) the utilization of electrochemical ion gradients. The book is unique in presenting a comparative treatment of respiratory and photosynthetic energy transduction, and in using protein sequence data coupled with physical concepts to discuss the mechanisms of energy transducing proteins.
Free Energy Transduction in Biology: The Steady-State Kinetic and Thermodynamic Formalism focuses on the steady-state kinetic and thermodynamic formalism related to free energy transduction. As the word ""formalism"" implies, the discussion concerns general principles and methods and not details of proposed mechanisms in the various special cases. Organized into seven chapters, this book first describes the diagram method, which is the main analytical tool in the study of discrete state, cycling system. The next chapter describes the essential topic of cycles and cycle fluxes. Some chapters discuss the more important bioenergetic principles that emerge from the diagram approach. This book is also concerned with somewhat more specialized aspects of the subject (stochastics and fluctuations) and interacting subsystems and multienzyme complexes, including oxidative phosphorylation.