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Originally published as Biophys J. BioFAST on October 13, 2006.
doi:10.1529/biophysj.106.091157
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Biophysical Journal 92:3-9 (2007)
© 2007 The Biophysical Society

Enhanced Surfactant Adsorption via Polymer Depletion Forces: A Simple Model for Reversing Surfactant Inhibition in Acute Respiratory Distress Syndrome

Patrick C. Stenger and Joseph A. Zasadzinski

Department of Chemical Engineering, University of California, Santa Barbara, California

Correspondence: Address reprint requests to J. A. Zasadzinski, Tel.: 805-893-4769; E-mail: gorilla{at}engineering.ucsb.edu.

Lung surfactant adsorption to an air-water interface is strongly inhibited by an energy barrier imposed by the competitive adsorption of albumin and other surface-active serum proteins that are present in the lung during acute respiratory distress syndrome. This reduction in surfactant adsorption results in an increased surface tension in the lung and an increase in the work of breathing. The reduction in surfactant adsorption is quantitatively described using a variation of the classical Smolukowski analysis of colloid stability. Albumin adsorbed to the interface induces an energy barrier to surfactant diffusion of order 5 kBT, leading to a reduction in adsorption equivalent to reducing the surfactant concentration by a factor of 100. Adding hydrophilic, nonadsorbing polymers such as polyethylene glycol to the subphase provides a depletion attraction between the surfactant aggregates and the interface that eliminates the energy barrier. Surfactant adsorption increases exponentially with polymer concentration as predicted by the simple Asakura and Oosawa model of depletion attraction. Depletion forces can likely be used to overcome barriers to adsorption at a variety of liquid-vapor and solid-liquid interfaces.







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Copyright © 2007 by the Biophysical Society.