TY - JOUR
T1 - Oligodendroglial membrane dynamics in relation to myelin biogenesis
AU - Ozgen, Hande
AU - Baron, Wia
AU - Hoekstra, Dick
AU - Kahya, Nicoletta
PY - 2016/9
Y1 - 2016/9
N2 - In the central nervous system, oligodendrocytes synthesize a specialized membrane, the myelin membrane, which enwraps the axons in a multilamellar fashion to provide fast action potential conduction and to ensure axonal integrity. When compared to other membranes, the composition of myelin membranes is unique with its relatively high lipid to protein ratio. Their biogenesis is quite complex and requires a tight regulation of sequential events, which are deregulated in demyelinating diseases such as multiple sclerosis. To devise strategies for remedying such defects, it is crucial to understand molecular mechanisms that underlie myelin assembly and dynamics, including the ability of specific lipids to organize proteins and/or mediate protein-protein interactions in healthy versus diseased myelin membranes. The tight regulation of myelin membrane formation has been widely investigated with classical biochemical and cell biological techniques, both in vitro and in vivo. However, our knowledge about myelin membrane dynamics, such as membrane fluidity in conjunction with the movement/diffusion of proteins and lipids in the membrane and the specificity and role of distinct lipid-protein and protein-protein interactions, is limited. Here, we provide an overview of recent findings about the myelin structure in terms of myelin lipids, proteins and membrane microdomains. To give insight into myelin membrane dynamics, we will particularly highlight the application of model membranes and advanced biophysical techniques, i. e., approaches which clearly provide an added value to insight obtained by classical biochemical techniques.
AB - In the central nervous system, oligodendrocytes synthesize a specialized membrane, the myelin membrane, which enwraps the axons in a multilamellar fashion to provide fast action potential conduction and to ensure axonal integrity. When compared to other membranes, the composition of myelin membranes is unique with its relatively high lipid to protein ratio. Their biogenesis is quite complex and requires a tight regulation of sequential events, which are deregulated in demyelinating diseases such as multiple sclerosis. To devise strategies for remedying such defects, it is crucial to understand molecular mechanisms that underlie myelin assembly and dynamics, including the ability of specific lipids to organize proteins and/or mediate protein-protein interactions in healthy versus diseased myelin membranes. The tight regulation of myelin membrane formation has been widely investigated with classical biochemical and cell biological techniques, both in vitro and in vivo. However, our knowledge about myelin membrane dynamics, such as membrane fluidity in conjunction with the movement/diffusion of proteins and lipids in the membrane and the specificity and role of distinct lipid-protein and protein-protein interactions, is limited. Here, we provide an overview of recent findings about the myelin structure in terms of myelin lipids, proteins and membrane microdomains. To give insight into myelin membrane dynamics, we will particularly highlight the application of model membranes and advanced biophysical techniques, i. e., approaches which clearly provide an added value to insight obtained by classical biochemical techniques.
KW - Oligodendrocytes
KW - Myelin biogenesis
KW - Fluorescence correlation spectroscopy
KW - Membrane microdomains
KW - Model membranes
KW - FLUORESCENCE CORRELATION SPECTROSCOPY
KW - CENTRAL-NERVOUS-SYSTEM
KW - GIANT UNILAMELLAR VESICLES
KW - PELIZAEUS-MERZBACHER-DISEASE
KW - LASER-SCANNING MICROSCOPE
KW - PROTEOLIPID PROTEIN PLP
KW - STATE NMR-SPECTROSCOPY
KW - CGT-DEFICIENT MICE
KW - BASIC-PROTEIN
KW - MULTIPLE-SCLEROSIS
U2 - 10.1007/s00018-016-2228-8
DO - 10.1007/s00018-016-2228-8
M3 - Review article
C2 - 27141942
SN - 1420-9071
VL - 73
SP - 3291
EP - 3310
JO - Cellular and molecular life sciences
JF - Cellular and molecular life sciences
IS - 17
ER -