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  1. Research Outputs

Lipid dynamics in diisobutylene-maleic acid (Dibma) lipid particles in presence of sensory rhodopsin ii

Academic Article
Publication Date:
2021
Short description:
Lipid dynamics in diisobutylene-maleic acid (Dibma) lipid particles in presence of sensory rhodopsin ii / Voskoboynikova, N.; Orekhov, P.; Bozdaganyan, M.; Kodde, F.; Rademacher, M.; Schowe, M.; Budke-Gieseking, A.; Brickwedde, B.; Psathaki, O. -E.; Mulkidjanian, A. Y.; Cosentino, K.; Shaitan, K. V.; Steinhoff, H. -J.. - In: INTERNATIONAL JOURNAL OF MOLECULAR SCIENCES. - ISSN 1422-0067. - 22:5(2021), pp. 1-18. [10.3390/ijms22052548]
abstract:
Amphiphilic diisobutylene/maleic acid (DIBMA) copolymers extract lipid-encased membrane proteins from lipid bilayers in a detergent-free manner, yielding nanosized, discoidal DIBMA lipid particles (DIBMALPs). Depending on the DIBMA/lipid ratio, the size of DIBMALPs can be broadly varied which makes them suitable for the incorporation of proteins of different sizes. Here, we examine the influence of the DIBMALP sizes and the presence of protein on the dynamics of encased lipids. As shown by a set of biophysical methods, the stability of DIBMALPs remains unaffected at different DIBMA/lipid ratios. Coarse-grained molecular dynamics simulations confirm the formation of viable DIBMALPs with an overall size of up to 35 nm. Electron paramagnetic resonance spectroscopy of nitroxides located at the 5th, 12th or 16th carbon atom positions in phosphatidylcholine-based spin labels reveals that the dynamics of enclosed lipids are not altered by the DIBMALP size. The presence of the membrane protein sensory rhodopsin II from Natronomonas pharaonis (NpSRII) results in a slight increase in the lipid dynamics compared to empty DIBMALPs. The light-induced photocycle shows full functionality of DIBMALPs-embedded NpSRII and a significant effect of the protein-to-lipid ratio during preparation on the NpSRII dynamics. This study indicates a possible expansion of the applicability of the DIBMALP technology on studies of membrane protein–protein interaction and oligomerization in a constraining environment.
Iris type:
Articolo su rivista
Keywords:
Coarse-grained (CG) molecular dynamics (MD); Electron paramagnetic resonance spectroscopy (EPR; ESR); Membrane protein; Negative-stain and cryo-transmission electron microscopy (EM); Nitroxide spin label; Phospholipid bilayer; Poly-mer/lipid nanodiscs
List of contributors:
Voskoboynikova, N.; Orekhov, P.; Bozdaganyan, M.; Kodde, F.; Rademacher, M.; Schowe, M.; Budke-Gieseking, A.; Brickwedde, B.; Psathaki, O. -E.; Mulkidjanian, A. Y.; Cosentino, K.; Shaitan, K. V.; Steinhoff, H. -J.
Authors of the University:
COSENTINO Katia
Handle:
https://iris.unimore.it/handle/11380/1367248
Full Text:
https://iris.unimore.it//retrieve/handle/11380/1367248/732064/ijms-22-02548.pdf
Published in:
INTERNATIONAL JOURNAL OF MOLECULAR SCIENCES
Journal
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