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Nanotube array method for studying lipid-induced conformational changes of a membrane protein by solid-state NMR.


ABSTRACT: Anodic aluminum oxide substrates with macroscopically aligned homogeneous nanopores of 80 nm in diameter enable two-dimensional, solid-state nuclear magnetic resonance studies of lipid-induced conformational changes of uniformly (15)N-labeled Pf1 coat protein in native-like bilayers. The Pf1 helix tilt angles in bilayers composed of two different lipids are not entirely governed by the membrane thickness but could be rationalized by hydrophobic interactions of lysines at the bilayer interface. The anodic aluminum oxide alignment method is applicable to a broader repertoire of lipids versus bicelle bilayer mimetics currently employed in solid-state nuclear magnetic resonance of oriented samples, thus allowing for elucidation of the role played by lipids in shaping membrane proteins.

SUBMITTER: Marek A 

PROVIDER: S-EPMC4286607 | biostudies-other | 2015 Jan

REPOSITORIES: biostudies-other

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Nanotube array method for studying lipid-induced conformational changes of a membrane protein by solid-state NMR.

Marek Antonin A   Tang Wenxing W   Milikisiyants Sergey S   Nevzorov Alexander A AA   Smirnov Alex I AI  

Biophysical journal 20150101 1


Anodic aluminum oxide substrates with macroscopically aligned homogeneous nanopores of 80 nm in diameter enable two-dimensional, solid-state nuclear magnetic resonance studies of lipid-induced conformational changes of uniformly (15)N-labeled Pf1 coat protein in native-like bilayers. The Pf1 helix tilt angles in bilayers composed of two different lipids are not entirely governed by the membrane thickness but could be rationalized by hydrophobic interactions of lysines at the bilayer interface. T  ...[more]

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