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Titlebook: Bioenergetics; Energy Conservation Günter Sch?fer,Harvey S. Penefsky Book 2008 Springer-Verlag Berlin Heidelberg 2008 ATP.ATP Formation.Ar

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發(fā)表于 2025-3-21 17:54:40 | 只看該作者 |倒序?yàn)g覽 |閱讀模式
期刊全稱Bioenergetics
期刊簡稱Energy Conservation
影響因子2023Günter Sch?fer,Harvey S. Penefsky
視頻videohttp://file.papertrans.cn/187/186900/186900.mp4
發(fā)行地址Anwers fundamental questions in bioenergetic research.Suitable for specialists as well as novices in the field
學(xué)科分類Results and Problems in Cell Differentiation
圖書封面Titlebook: Bioenergetics; Energy Conservation  Günter Sch?fer,Harvey S. Penefsky Book 2008 Springer-Verlag Berlin Heidelberg 2008 ATP.ATP Formation.Ar
影響因子The fermentation of sugar by cell-free yeast extracts was demonstrated more than a century ago by E. Buchner (Nobel Prize 1907). Buchner’s observations put an end to previous animistic theories regarding cellular life. It became clear that metabolism and all cellular functions should be accessible to explication in chemical terms. Equally important for an understanding of living systems was the concept, explained in physical terms, that all living things could be cons- ered as energy converters [E. Schr?dinger (Nobel Prize 1933)] which generate complexity at the expense of an increase in entropy in their environment. Bioenergetics was established as an essential branch of the biochemical sciences by the investigations into the chemistry of photosynthesis in i- lated plant organelles [O. Warburg (Nobel Prize 1931)] and by the discovery that mitochondria were the morphological equivalent that catalyzed cellular respiration. The ?eld of bioenergetics also encompasses a large variety of ad- tional processes such as the molecular mechanisms of muscle contraction, the structure and driving mechanisms of microbial ?agellar motors, the energetics of solute transport, the extrusion of macro
Pindex Book 2008
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書目名稱Bioenergetics影響因子(影響力)




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ATP Synthesis by Decarboxylation Phosphorylation,. ions across the membrane (decarboxylationphosphorylation). This chapter will focus on the latter mechanism, presenting an updated survey on theNa.-translocating decarboxylases from various organisms. In the second part,we provide a?detailed description of the F.F. ATP synthaseswith special emphasi
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https://doi.org/10.1007/978-3-8349-8925-3e to the thermodynamic limit. To cope with this problem, they have evolved elaboratemechanisms of energy conservation using both protons and sodium ions as the coupling ion in one pathway.These energy conserving mechanisms are comprised of unique enzymes, cofactors and electron carriers presentonly
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https://doi.org/10.1007/978-3-8349-8195-0. ions across the membrane (decarboxylationphosphorylation). This chapter will focus on the latter mechanism, presenting an updated survey on theNa.-translocating decarboxylases from various organisms. In the second part,we provide a?detailed description of the F.F. ATP synthaseswith special emphasi
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,Optionen für die Systemunterstützung,hydrogenase has catalytic properties different from those of [NiFe]- and [FeFe]hydrogenases..The [NiFe]hydrogenases can be subdivided into four subgroups: (1) the H. uptake[NiFe]hydrogenases (group 1); (2) the cyanobacterial uptake hydrogenases and the cytoplasmic H.sensors (group 2); (3) the bidire
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Book 2008hat catalyzed cellular respiration. The ?eld of bioenergetics also encompasses a large variety of ad- tional processes such as the molecular mechanisms of muscle contraction, the structure and driving mechanisms of microbial ?agellar motors, the energetics of solute transport, the extrusion of macro
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