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Tuning Membrane Thickness Fluctuations in Model Lipid Bilayers

  • Rana Ashkar
  • , Michihiro Nagao
  • , Paul D. Butler
  • , Andrea C. Woodka
  • , Mani K. Sen
  • , Tadanori Koga
  • National Institute of Standards and Technology
  • University of Maryland, College Park
  • Indiana University Bloomington
  • University of Delaware
  • United States Military Academy
  • Stony Brook University

Research output: Contribution to journalArticlepeer-review

52 Scopus citations

Abstract

Abstract Membrane thickness fluctuations have been associated with a variety of critical membrane phenomena, such as cellular exchange, pore formation, and protein binding, which are intimately related to cell functionality and effective pharmaceuticals. Therefore, understanding how these fluctuations are controlled can remarkably impact medical applications involving selective macromolecule binding and efficient cellular drug intake. Interestingly, previous reports on single-component bilayers show almost identical thickness fluctuation patterns for all investigated lipid tail-lengths, with similar temperature-independent membrane thickness fluctuation amplitude in the fluid phase and a rapid suppression of fluctuations upon transition to the gel phase. Presumably, in vivo functions require a tunability of these parameters, suggesting that more complex model systems are necessary. In this study, we explore lipid tail-length mismatch as a regulator for membrane fluctuations. Unilamellar vesicles of an equimolar mixture of dimyristoylphosphatidylcholine and distearoylphosphatidylcholine molecules, with different tail-lengths and melting transition temperatures, are used as a model system for this next level of complexity. Indeed, this binary system exhibits a significant response of membrane dynamics to thermal variations. The system also suggests a decoupling of the amplitude and the relaxation time of the membrane thickness fluctuations, implying a potential for independent control of these two key parameters.

Original languageEnglish
Article number6595
Pages (from-to)106-112
Number of pages7
JournalBiophysical Journal
Volume109
Issue number1
DOIs
StatePublished - Jul 9 2015

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