Decoupling of dipolar and hydrophobic motions in biological membranes
Hanne S. Antila, Anika Wurl, O. H. Samuli Ollila, Markus S., Miettinen, Tiago M. Ferreira

TL;DR
This study reveals that phospholipid headgroup motions in membranes are largely independent of the hydrophobic core, challenging previous assumptions about their coupled dynamics and influencing membrane interaction models.
Contribution
The paper combines NMR spectroscopy and molecular dynamics simulations to show that headgroup dynamics are decoupled from the membrane's hydrophobic core, a novel insight in membrane biophysics.
Findings
Headgroup rotations are nearly unaffected by cholesterol incorporation.
Phospholipid headgroups behave as quasi-freely rotating dipoles.
Membrane interface dynamics are independent of hydrophobic core properties.
Abstract
Cells use homeostatic mechanisms to maintain an optimal composition of distinct types of phospholipids in cellular membranes. The hydrophilic dipolar layer at the membrane interface, composed of phospholipid headgroups, regulates the interactions between cell membranes and incoming molecules, nanoparticles, and viruses. On the other hand, the membrane hydrophobic core determines membrane thickness and forms an environment for membrane-bound molecules such as transmembrane proteins. A fundamental open question is to what extent the motions of these regions are coupled and, consequently, how strongly the interactions of lipid headgroups with other molecules depend on the properties and composition of the membrane hydrophobic core. We combine advanced solid-state nuclear magnetic resonance spectroscopy methodology with high-fidelity molecular dynamics simulations to demonstrate how the…
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Taxonomy
TopicsAdvanced NMR Techniques and Applications · Electron Spin Resonance Studies · Lipid Membrane Structure and Behavior
