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Transient domains of ordered water induced by divalent ions lead to lipid membrane curvature fluctuations

Orly B. Tarun, Halil İ. Okur, Padmini Rangamani, Sylvie Roke

2020Communications Chemistry31 citationsDOIOpen Access PDF

Abstract

Cell membranes are composed of a hydrated lipid bilayer that is molecularly complex and diverse, and the link between molecular hydration structure and membrane macroscopic properties is not well understood, due to a lack of technology that can probe and relate molecular level hydration information to micro- and macroscopic properties. Here, we demonstrate a direct link between lipid hydration structure and macroscopic dynamic curvature fluctuations. Using high-throughput wide-field second harmonic (SH) microscopy, we observe the formation of transient domains of ordered water at the interface of freestanding lipid membranes. These domains are induced by the binding of divalent ions and their structure is ion specific. Using nonlinear optical theory, we convert the spatiotemporal SH intensity into maps of membrane potential, surface charge density, and binding free energy. Using an electromechanical theory of membrane bending, we show that transient electric field gradients across the membrane induce spatiotemporal membrane curvature fluctuations.

Topics & Concepts

MembraneMembrane curvatureChemical physicsCurvatureLipid bilayerDivalentIonElasticity of cell membranesMolecular dynamicsMaterials scienceThermal fluctuationsBilayerBiophysicsChemistryLipid bilayer phase behaviorComputational chemistryThermodynamicsPhysicsMetallurgyBiologyMathematicsOrganic chemistryBiochemistryGeometryLipid Membrane Structure and BehaviorSpectroscopy and Quantum Chemical StudiesNanopore and Nanochannel Transport Studies
Transient domains of ordered water induced by divalent ions lead to lipid membrane curvature fluctuations | Litcius