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Biophys. J. BioFAST: First Published December 1, 2006. doi:10.1529/biophysj.106.096461
© 2006 by the Biophysical Society.


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MEMBRANES

On the decrease in lateral mobility of phospholipids by sugars

Geert van den Bogaart 1, Nicolaas Hermans 1, Victor Krasnikov 1, Alex de Vries 1 and Bert B Poolman 1*

1 University of Groningen

* To whom correspondence should be addressed. E-mail: b.poolman{at}rug.nl.

Submitted on August 31, 2006
Revised on October 27, 2006
Accepted on 9 November 2006


   Abstract
Upon cold and drought stress, sucrose and trehalose protect membrane structures from fusion and leakage. Similarly, these sugars protect membrane proteins from inactivation during dehydration. We studied the interactions between sugars and phospholipid membranes in giant unilamellar vesicles with the fluorescent lipid analog DiO incorporated. Using fluorescence correlation spectroscopy, it was found that sucrose decreased the lateral mobility of phospholipids in the fully rehydrated, liquid crystalline membrane more than other sugars did, including trehalose. To describe the nature of the difference in the interaction of phospholipids with sucrose and trehalose, atomistic molecular dynamics studies were performed. Simulations up to 100 ns showed that sucrose interacted with more phospholipid head-groups simultaneously than trehalose, resulting in a larger decrease of the lateral mobility. Using coarse-grained molecular dynamics, we show that this increase in interactions can lead to a relatively large decrease in lateral phospholipid mobility.

Key Words: lateral diffusion, lipid mobility, membrane protection, phospholipids, sucrose, trehalose







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Copyright © 2006 by the Biophysical Society.