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Titlebook: A Structural Perspective on Respiratory Complex I; Structure and Functi Leonid Sazanov Book 2012 Springer Science+Business Media Dordrecht

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Anhang zu Konstruieren und Berechnend transporters. By understanding the recruitment process of each of the smaller functional units, their individual functions and at what stage of complex I building the different functions were needed, we can also better understand the current functional mechanism of this large and intricate molecul
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Anhedonia: A Comprehensive Handbook Volume Is in the technology when studying eukaryotes, most work has been performed using bacterial complex I (NDH-1). The bacterial system has been proven to be an excellent model in which to investigate the structure and mechanism of complex I. Sequence information, from the early days, and the availabilit
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https://doi.org/10.1007/978-94-017-8591-4uiding mtDNA inheritance, the link between a specific mtDNA mutation and the ensuing clinical phenotype is not always clear. In cells, mitochondrial and cellular functions are intricately linked at the level of (energy) metabolism, signal transduction and apoptosis induction. Although mtDNA mutation
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Brain Imaging Correlates of Anhedonia and a cyanobacterium, respectively. The inner membrane of the mitochondria harbors the enzyme complexes of the respiratory chain, the largest of them being the rotenone-sensitive NADH:ubiquinone oxidoreductase or complex I. In the thylakoid membrane of the chloroplast, besides the photosynthetic ma
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Anhedonia and Risk of Suicide: An Overviewial plasma membrane. Electrons are transferred from NADH via complex I (NADH:ubiquinone oxidoreductase) and ubiquinone to complex III (ubiquinol:cytochrome . oxidoreductase) and via the peripheral electron carrier cytochrome . and complex IV (cytochrome . oxidase) to the terminal acceptor, molecular
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