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Titlebook: Artificial and Reconstituted Membrane Systems; J. R. Harris,A.-H. Etémadi Book 1989 Plenum Press, New York 1989 Calcium.Lipid.Organe.Trans

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https://doi.org/10.1007/978-94-007-6049-3riers in the therapy, prevention, or detection of disease (Gregoriadis, 1980). This discussion deals with two aspects: (1) the extent to which vesicles retain entrapped agents in the presence of biological fluids, namely, blood and (2) the rate by which vesicles are cleared from the circulation and
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https://doi.org/10.1007/978-94-007-6076-9eous complexes into bilayer membranes, often with the aim of restoring the natural function of the incorporated material. In a more general sense it refers to the . rebuilding or regenerating of natural biological processes with or without involvement of membranes (Etemadi, 1985). With regard to pro
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https://doi.org/10.1007/978-94-007-5974-9The cellular morphology of lipid bilayer membranes acting as dynamic boundaries is well established. Their biological function, however, is determined at the molecular level. Thus, techniques sensitive to molecular conformation are required to understand how membranes work.
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https://doi.org/10.1007/978-94-007-5974-9Many of the dynamic features of the behavior of biological membranes, at cellular and subcellular levels, depend on the phenomenon of membrane fusion.
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Membrane Fusion,Many of the dynamic features of the behavior of biological membranes, at cellular and subcellular levels, depend on the phenomenon of membrane fusion.
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Reconstitution of Acetylcholine Receptors into Planar Lipid Bilayers,ut the structure of the membrane proteins, together with a detailed characterization of their function at the molecular level. The nicotinic acetylcholine receptor (AChR), one of the most detailed investigated channel-forming proteins, provides some unique opportunities, justifying the pursuit of this goal.
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