Solubilization of artificial mitochondrial membranes by amphiphilic copolymers of different charge.
Biochim Biophys Acta Biomembr
; 1863(12): 183725, 2021 12 01.
Article
in En
| MEDLINE
| ID: mdl-34384757
Certain amphiphilic copolymers form lipid-bilayer nanodiscs from artificial and natural membranes, thereby rendering incorporated membrane proteins optimal for structural analysis. Recent studies have shown that the amphiphilicity of a copolymer strongly determines its solubilization efficiency. This is especially true for highly negatively charged membranes, which experience pronounced Coulombic repulsion with polyanionic polymers. Here, we present a systematic study on the solubilization of artificial multicomponent lipid vesicles that mimic inner mitochondrial membranes, which harbor essential membrane-protein complexes. In particular, we compared the lipid-solubilization efficiencies of established anionic with less densely charged or zwitterionic and even cationic copolymers in low- and high-salt concentrations. The nanodiscs formed under these conditions were characterized by dynamic light scattering and negative-stain electron microscopy, pointing to a bimodal distribution of nanodisc diameters with a considerable fraction of nanodiscs engaging in side-by-side interactions through their polymer rims. Overall, our results show that some recent, zwitterionic copolymers are best suited to solubilize negatively charged membranes at high ionic strengths even at low polymer/lipid ratios.
Key words
Full text:
1
Collection:
01-internacional
Database:
MEDLINE
Main subject:
Mitochondrial Membranes
/
Lipid Bilayers
/
Membrane Proteins
/
Mitochondria
Language:
En
Journal:
Biochim Biophys Acta Biomembr
Year:
2021
Document type:
Article
Country of publication:
Netherlands