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Titlebook: Biomembranes; Molecular Structure Robert B. Gennis Book 1989 Springer Science+Business Media New York 1989 Amino acid.Biomembran.Transport

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Naturwissenschaftliche Grundlagenovide the active components of the biomembrane. In this chapter we discuss some of the operational principles which have proved useful in understanding the structure of membrane proteins. Specific examples which have provided paradigms are discussed in this chapter, and further examples of membrane
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Springer Reference Naturwissenschaftenments, e.g., cytoplasmic and extracytoplasmic. Therefore, transverse asymmetry, differentiating the two monolayer halves of the bilayer, is sensible. Membrane protein asymmetry is clearly a consequence of the way in which the proteins are originally inserted into the membrane. The rate of protein fl
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Springer Reference Naturwissenschaftenor polynucleotides, and most certainly for membranes. The fluid mosaic model (Chapter 1) has helped focus attention on the mobility of membrane components by conceptualizing the membrane as a sea of lipid in which embedded globular proteins are freely floating. Over the past two decades an enormous
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Wolfgang Riedel,Horst Lange,Markus Reinkezed. The biomembrane is not simply a passive structure whose function is to delineate and enclose aqueous compartments. A brief consideration of the kinds of enzymes which are membrane-bound will illustrate the extraordinary diversity of catalytic activities associated with membranes.
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Landschaftsschutz in Österreichon across the bilayer. All cells need mechanisms to monitor their environment and to be able to respond to changes which occur. There is a myriad of specialized receptor molecules present in the cytoplasmic membranes of bacterial, plant, and animal cells which interact with extracytoplasmic componen
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