A Brief Introduction to Some Aspects of the Fluid-Mosaic Model of Cell Membrane Structure and Its Importance in Membrane Lipid Replacement

被引:23
作者
Nicolson, Garth L. [1 ]
Ferreira de Mattos, Gonzalo [2 ]
机构
[1] Inst Mol Med, Dept Mol Pathol, Huntington Beach, CA 92647 USA
[2] Univ Republica, Fac Med, Dept Biophys, Lab Ion Channels Biol Membranes & Cell Signaling, Montevideo 11600, Uruguay
关键词
lipid interactions; membrane domains; extracellular matrix; lipid rafts; membrane fusion; membrane structure; cytoskeletal interactions; membrane vesicles; endosomes; membrane dynamics; PLASMA-MEMBRANE; LATERAL DIFFUSION; CHRONIC FATIGUE; ORGANIZATION; PROTEINS; SURFACE; RAFTS; CYTOSKELETON; TRANSPORT; SINGER;
D O I
10.3390/membranes11120947
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
Early cell membrane models placed most proteins external to lipid bilayers in trimolecular structures or as modular lipoprotein units. These thermodynamically untenable structures did not allow lipid lateral movements independent of membrane proteins. The Fluid-Mosaic Membrane Model accounted for these and other properties, such as membrane asymmetry, variable lateral mobilities of membrane components and their associations with dynamic complexes. Integral membrane proteins can transform into globular structures that are intercalated to various degrees into a heterogeneous lipid bilayer matrix. This simplified version of cell membrane structure was never proposed as the ultimate biomembrane description, but it provided a basic nanometer scale framework for membrane organization. Subsequently, the structures associated with membranes were considered, including peripheral membrane proteins, and cytoskeletal and extracellular matrix components that restricted lateral mobility. In addition, lipid-lipid and lipid-protein membrane domains, essential for cellular signaling, were proposed and eventually discovered. The presence of specialized membrane domains significantly reduced the extent of the fluid lipid matrix, so membranes have become more mosaic with some fluid areas over time. However, the fluid regions of membranes are very important in lipid transport and exchange. Various lipid globules, droplets, vesicles and other membranes can fuse to incorporate new lipids or expel damaged lipids from membranes, or they can be internalized in endosomes that eventually fuse with other internal vesicles and membranes. They can also be externalized in a reverse process and released as extracellular vesicles and exosomes. In this Special Issue, the use of membrane phospholipids to modify cellular membranes in order to modulate clinically relevant host properties is considered.
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页数:19
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