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Originally published as Biophys J. BioFAST on October 6, 2006.
doi:10.1529/biophysj.106.087494
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Biophysical Journal 92:115-125 (2007)
© 2007 The Biophysical Society

Growth Dynamics of Domains in Ternary Fluid Vesicles

Miho Yanagisawa *, Masayuki Imai *, Tomomi Masui *, Shigeyuki Komura {dagger} and Takao Ohta {ddagger}

* Department of Physics, Ochanomizu University, Bunkyo, Tokyo112-8610, Japan; {dagger} Department of Chemistry, Tokyo Metropolitan University, Tokyo 192-0397, Japan; and {ddagger} Yukawa Institute for Theoretical Physics, Kyoto University, Kyoto 606-8502, Japan

Correspondence: Address reprint requests to Masayuki Imai, E-mail: imai{at}phys.ocha.ac.jp.

We have studied the growth dynamics of domains on ternary fluid vesicles composed of saturated (dipalmitoylphosphatidylcholine), unsaturated (dioleoylphosphatidylcholine) phosphatidylcholine lipids, and cholesterol using a fluorescence microscopy. The domain coarsening processes are classified into two types: normal coarsening and trapped coarsening. For the normal coarsening, the domains having flat circular shape grow in a diffusion-and-coalescence manner and phenomenologically the mean size grows as a power law of ~t2/3. The observed growth law is not described by a two-dimensional diffusion-and-coalescence growth mechanism following the Saffman and Delbrück theory, which may originate from the two-body hydrodynamic interactions between domains. For trapped coarsening, on the other hand, the domain coarsening is suppressed at a certain domain size because the repulsive interdomain interactions obstruct the coalescence of domains. The two-color imaging of the trapped domains reveals that the repulsive interactions are induced by the budding of domains. The model free energy consisting of the bending energy of domains, the bending energy of matrix, the line energy of domain boundary, and the translation energy of domains can describe the observed trapped coarsening. The trapping of domains is caused by the coupling between the phase separation and the membrane elasticity under the incompressibility constraint.







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Copyright © 2007 by the Biophysical Society.