Detailed Information on Publication Record
2022
Human myelin proteolipid protein structure and lipid bilayer stacking
RUSKAMO, Salla, Arne RAASAKKA, Jan Skov PEDERSEN, Anne MARTEL, Karel ŠKUBNÍK et. al.Basic information
Original name
Human myelin proteolipid protein structure and lipid bilayer stacking
Authors
RUSKAMO, Salla, Arne RAASAKKA, Jan Skov PEDERSEN, Anne MARTEL, Karel ŠKUBNÍK (203 Czech Republic, guarantor, belonging to the institution), Tamim DARWISH, Lionel PORCAR and Petri KURSULA
Edition
Cellular and molecular life sciences, BASEL, SPRINGER BASEL AG, 2022, 1420-682X
Other information
Language
English
Type of outcome
Článek v odborném periodiku
Field of Study
10608 Biochemistry and molecular biology
Country of publisher
Switzerland
Confidentiality degree
není předmětem státního či obchodního tajemství
References:
Impact factor
Impact factor: 8.000
RIV identification code
RIV/00216224:14740/22:00128474
Organization unit
Central European Institute of Technology
UT WoS
000824644400001
Keywords in English
Myelin; Proteolipid protein; DM20; Integral membrane protein; Small-angle scattering; Atomic force microscopy
Tags
International impact, Reviewed
Změněno: 27/10/2024 14:26, Ing. Martina Blahová
Abstract
V originále
The myelin sheath is an essential, multilayered membrane structure that insulates axons, enabling the rapid transmission of nerve impulses. The tetraspan myelin proteolipid protein (PLP) is the most abundant protein of compact myelin in the central nervous system (CNS). The integral membrane protein PLP adheres myelin membranes together and enhances the compaction of myelin, having a fundamental role in myelin stability and axonal support. PLP is linked to severe CNS neuropathies, including inherited Pelizaeus-Merzbacher disease and spastic paraplegia type 2, as well as multiple sclerosis. Nevertheless, the structure, lipid interaction properties, and membrane organization mechanisms of PLP have remained unidentified. We expressed, purified, and structurally characterized human PLP and its shorter isoform DM20. Synchrotron radiation circular dichroism spectroscopy and small-angle X-ray and neutron scattering revealed a dimeric, alpha-helical conformation for both PLP and DM20 in detergent complexes, and pinpoint structural variations between the isoforms and their influence on protein function. In phosphatidylcholine membranes, reconstituted PLP and DM20 spontaneously induced formation of multilamellar myelin-like membrane assemblies. Cholesterol and sphingomyelin enhanced the membrane organization but were not crucial for membrane stacking. Electron cryomicroscopy, atomic force microscopy, and X-ray diffraction experiments for membrane-embedded PLP/DM20 illustrated effective membrane stacking and ordered organization of membrane assemblies with a repeat distance in line with CNS myelin. Our results shed light on the 3D structure of myelin PLP and DM20, their structure-function differences, as well as fundamental protein-lipid interplay in CNS compact myelin.
Links
653706, interní kód MU |
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90127, large research infrastructures |
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