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Titlebook: Energy Conservation in Biological Membranes; 29. Colloquium, 6.-8 Günter Schäfer,Martin Klingenberg Conference proceedings 1978 Springer-Ve

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The Blind and the Communication-Object,espond as well as possible in terms of current research on bioenergetics. Recent reviews on the mechanism of energy coupling (7) make special reference to the multiple hypotheses of energy coupling by chemical intermediates, conformation change, and charge separation as the most important contributo
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Society, Work and Welfare in Europeuble membrane envelope, the matrix (stroma) of a chloroplast contains the water-soluble enzymes of the Calvin cycle for CO. fixation and of starch (but not of sucrose) biosynthesis plus other assimilatory activities, such as photosynthetic sulfate and nitrite reduction (see reviews in ., (1)). The l
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Mélanie E. Hassett,Niina Nummelat the occurrence of electron transport phosphorylation was restricted to aerobic bacteria (1). The only exception was the reduction of nitrate (Table 1), which was known to yield ATP from electron transport phosphorylation (2). In the meantime it was discovered that certain anaerobic bacteria can de
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Socio-Ecological Systems and Decolonialityfrom pulse spectroscopic studies (1,2). The time sequence of the reaction patterns has been evaluated as follows. (1) Excitation of Chl-a. and Chl-a.. (2) Vectorial ejection of electrons from Chl-a. and Chl-a. at the membrane inside to the outside and electric field generation. (3) Oxidation of H.O,
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https://doi.org/10.1007/978-3-031-43875-2 on whether or not protons are obligatorily involved faded away [for an “afterglow” see the multiauthored review by Boyer et al. (1)] in favor of the causality sequence, electrons-protons-ATP, postulated by Mitchell (2,3), another controversy was revived. The question is whether the protons drive AT
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, is based upon seperation of positive and negative electrical charges across biological membranes. This widely accepted view originated principally with the proposal by Mitchell (1,2) of the chemiosmotic theory of oxidative and photosynthetic phosphorylation.
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