Abstract

Myelin protein P2 is a fatty acid-binding structural component of the myelin sheath in the peripheral nervous system, and its function is related to its membrane binding capacity. Here, the link between P2 protein dynamics and structure and function was studied using elastic incoherent neutron scattering (EINS). The P38G mutation, at the hinge between the β barrel and the α-helical lid, increased the lipid stacking capacity of human P2 in vitro, and the mutated protein was also functional in cultured cells. The P38G mutation did not change the overall structure of the protein. For a deeper insight into P2 structure-function relationships, information on protein dynamics in the 10 ps to 1 ns time scale was obtained using EINS. Values of mean square displacements mainly from protein H atoms were extracted for wild-type P2 and the P38G mutant and compared. Our results show that at physiological temperatures, the P38G mutant is more dynamic than the wild-type P2 protein, especially on a slow 1-ns time scale. Molecular dynamics simulations confirmed the enhanced dynamics of the mutant variant, especially within the portal region in the presence of bound fatty acid. The increased softness of the hinge mutant of human myelin P2 protein is likely related to an enhanced flexibility of the portal region of this fatty acid-binding protein, as well as to its interactions with the lipid bilayer surface requiring conformational adaptations.

Highlights

  • In the vertebrate central (CNS) and peripheral nervous systems (PNS), selected neuronal axons are covered by a protecting layer of myelin

  • In order to enable the linking of experimentally measured protein dynamics to biomolecular structure and function, we carried out a characterisation of wild-type P2 protein (wtP2) and protein (wtP2) and its proline38-to-glycine (P2-P38G) in vitro

  • We used neutron scattering and complementary methods to study the link between P2 protein dynamics and its structure-function relationships

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Summary

Introduction

In the vertebrate central (CNS) and peripheral nervous systems (PNS), selected neuronal axons are covered by a protecting layer of myelin. The myelin sheath is a unique multilayered. Myelin Protein P2 Dynamics by Neutron Scattering. City of Hamburg (http://www.hamburg.de/bwf/ forschungs-und-wissenschaftsstiftung-hamburg/)(all to PK), as well as the Academy of Finland (Center of Excellence programme) and the European Research Council (Advanced Grant CROWDED-PRO-LIPIDS) (both to IV). The funders had no role in study design, data collection and analysis, decision to publish, or preparation of the manuscript

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