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Titlebook: Bioenergetic Processes of Cyanobacteria; From Evolutionary Si Guenter A. Peschek,Christian Obinger,Gernot Renger Book 2011 Springer Science

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发表于 2025-3-21 18:15:46 | 显示全部楼层 |阅读模式
期刊全称Bioenergetic Processes of Cyanobacteria
期刊简称From Evolutionary Si
影响因子2023Guenter A. Peschek,Christian Obinger,Gernot Renger
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发行地址Provides a comprehensive and updated description of our current knowledge in the bioenergetics of cyanobacteria.Of great value for active researchers and graduate students who are interested in enteri
图书封面Titlebook: Bioenergetic Processes of Cyanobacteria; From Evolutionary Si Guenter A. Peschek,Christian Obinger,Gernot Renger Book 2011 Springer Science
影响因子This publication is unique among a number of books on cyanobacteria because it focuses on the bioenergetics of these widespread organisms which are the evolutionary prerequisite for the development of all higher forms of life on our "blue" planet. The book primarily addresses questions of energy conversion by the fundamental bioenergetic processes: (oxygenic) photosynthesis, (aerobic) respiration, and (anaerobic) fermentation which uniquely occur together in these prokaryotic cells. Thermophilic cyanobacteria offer the most suitable material for high resolution structure analyses of Photosystem I and II and other electron transport complexes by X-ray crystallography (for example, at present the structure of Photosystem II at atomic resolution is only known for these organisms). These achievements during the last decade represent a milestone in our understanding of the complexes which are crucial for solar energy exploitation through photosynthetic water splitting.The present work represents an ambitious attempt to achieve the goal of a synoptic state-of-the-art picture by casting together the mosaics of detailed knowledge described by leading experts in the field. It contains 24 ch
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The Photosynthetic Apparatus of the Living Fossil, , their cyanobacterial ancestor. This is not only a convincing proof of the endosymbiotic theory, but earns glaucocystophytes the status of living fossils, as peptidoglycan is found nowhere else among eukaryotes. Muroplasts show even more cyanobacterial features than other primitive plastids, e.g., r
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The Complex Regulation of the Phosphate Uptake System of Cyanobacteriaem exhibits complex bioenergetic properties under phosphate deficient growth conditions. Physiological adaptation to changes in the external phosphate concentration affects two energy dependent processes, namely the transport of phosphate through the cell membrane and the subsequent conversion of in
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The Site of Respiratory Electron Transport in Cyanobacteria and Its Implication for the Photoinhibit. 1994) clearly defined by the ability to carry out both oxygenic photosynthesis in the thylakoid membranes and respiration in both plasma (cell) membranekl (CM) and thylakoid membranes (ICM) (Peschek 1996; Peschek and Zoder 2001). The only exception is . which does not contain thylakoids at all and
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Nitrogenases and Hydrogenases in Cyanobacteriamation of ammonia by nitrogenases is accompanied with the production of hydrogen gas. This H.-formation is barely detectable in intact cyanobacteria, since the gas is immediately recycled by hydrogenase. Cyanobacteria contain two types of Ni-containing hydrogenases that are defined by their physiolo
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History and Function: The Respiratory and Photosynthetic Electron Transport Chainsransport chains of chloroplasts and mitochondria are briefly described and the different experimental and conceptual styles involved in their analysis examined. A role for classical bacterial electron transport studies in integrating our general ideas about electron transport in biological membranes
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Bioenergetics in a Primordial Cyanobacterium , PCC 7421ranes in this species induced inevitable coupling of the two electron transfer systems, i.e. photosynthesis and respiration, on cytoplasmic membranes by sharing common components. There were multiple pathways for a respiratory electron transfer system, and they affected the redox state of quinone mo
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ATP Synthase: Structure, Function and Regulation of a Complex Machinebranes is catalyzed by ATP synthase, a complex, evolutionary conserved multi-subunit enzyme. Whereas ATP synthase was discovered already more than 40 years ago, the last 10–15 years have seen tremendous progress concerning structure determination of large parts of this enzyme. Mutagenesis studies ba
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