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Water Penetration Profile at the Protein-lipid Interface in Na,K-ATPase Membranes

Overview
Journal Biophys J
Publisher Cell Press
Specialty Biophysics
Date 2014 Sep 18
PMID 25229145
Citations 7
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Abstract

The affinity of ionized fatty acids for the Na,K-ATPase is used to determine the transmembrane profile of water penetration at the protein-lipid interface. The standardized intensity of the electron spin echo envelope modulation (ESEEM) from (2)H-hyperfine interaction with D2O is determined for stearic acid, n-SASL, spin-labeled systematically at the C-n atoms throughout the chain. In both native Na,K-ATPase membranes from shark salt gland and bilayers of the extracted membrane lipids, the D2O-ESEEM intensities of fully charged n-SASL decrease progressively with position down the fatty acid chain toward the terminal methyl group. Whereas the D2O intensities decrease sharply at the n = 9 position in the lipid bilayers, a much broader transition region in the range n = 6 to 10 is found with Na,K-ATPase membranes. Correction for the bilayer population in the membranes yields the intrinsic D2O-intensity profile at the protein-lipid interface. For positions at either end of the chains, the D2O concentrations at the protein interface are greater than in the lipid bilayer, and the positional profile is much broader. This reveals the higher polarity, and consequently higher intramembrane water concentration, at the protein-lipid interface. In particular, there is a significant water concentration adjacent to the protein at the membrane midplane, unlike the situation in the bilayer regions of this cholesterol-rich membrane. Experiments with protonated fatty acid and phosphatidylcholine spin labels, both of which have a considerably lower affinity for the Na,K-ATPase, confirm these results.

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References
1.
Esmann M, Marsh D . Spin-label studies on the origin of the specificity of lipid-protein interactions in Na+,K+-ATPase membranes from Squalus acanthias. Biochemistry. 1985; 24(14):3572-8. DOI: 10.1021/bi00335a027. View

2.
Griffith O, Dehlinger P, Van S . Shape of the hydrophobic barrier of phospholipid bilayers (evidence for water penetration in biological membranes). J Membr Biol. 1974; 15(2):159-92. DOI: 10.1007/BF01870086. View

3.
Cieslak J, Focia P, Gross A . Electron spin-echo envelope modulation (ESEEM) reveals water and phosphate interactions with the KcsA potassium channel. Biochemistry. 2010; 49(7):1486-94. PMC: 2840637. DOI: 10.1021/bi9016523. View

4.
Guzzi R, Bartucci R, Sportelli L, Esmann M, Marsh D . Conformational heterogeneity and spin-labeled -SH groups: pulsed EPR of Na,K-ATPase. Biochemistry. 2009; 48(35):8343-54. DOI: 10.1021/bi900849z. View

5.
Esmann M, Marsh D . Lipid-protein interactions with the Na,K-ATPase. Chem Phys Lipids. 2006; 141(1-2):94-104. DOI: 10.1016/j.chemphyslip.2006.02.018. View