4.8 Article

Atomic Recombination in Dynamic Secondary Ion Mass Spectrometry Probes Distance in Lipid Assemblies: A Nanometer Chemical Ruler

Journal

JOURNAL OF THE AMERICAN CHEMICAL SOCIETY
Volume 138, Issue 51, Pages 16737-16744

Publisher

AMER CHEMICAL SOC
DOI: 10.1021/jacs.6b10655

Keywords

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Funding

  1. National Institutes of Health [GM069630, GM118044]
  2. National Science Foundation Biophysics Program [MCB-1408785]
  3. Center for Molecular Analysis and Design
  4. National Science Foundation [0922648]
  5. Div Of Electrical, Commun & Cyber Sys
  6. Directorate For Engineering [0922648] Funding Source: National Science Foundation

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The lateral organization of biological membranes is thought to take place on the nanometer length scale. However, this length scale and the dynamic nature of small lipid and protein domains have made characterization of such organization in biological membranes and model systems difficult. Here we introduce a new method for measuring the colocalization of lipids in monolayers and bilayers using stable isotope labeling. We take advantage of a process that occurs in dynamic SIMS called atomic recombination, in which atoms on different molecules combine to form diatomic ions that are detected with a NanoSIMS instrument. This process is highly sensitive to the distance between molecules. By measuring the efficiency of the formation of (CN-)-C-13-N-15 ions from C-13 and N-15 atoms on different lipid molecules, we measure variations in the lateral organization of bilayers even though these heterogeneities occur on a length scale of only a few nm, well below the diameter of the primary ion beam of the NanoSIMS instrument or even the best super-resolution fluorescence methods. Using this technique, we provide direct evidence for nanoscale phase separation in a model membrane, which may provide a better model for the organization of biological membranes than lipid mixtures with microscale phase separation. We expect this technique to be broadly applicable to any assembly where very short scale proximity is of interest or unknown, both in chemical and biological systems.

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