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Method Article

Preparation of Mica Supported Lipid Bilayers for High Resolution Optical Microscopy Imaging

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DOI:

10.3791/52054

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June 7th, 2014

In This Article

Summary

We present a method of preparing mica supported lipid bilayers for high resolution microscopy. Mica is transparent and flat on an atomic scale, but rarely used in imaging because of handling difficulties; our preparation results in even deposition of the mica sheet, and reduces the material used in bilayer preparation.

Abstract

Supported lipid bilayers (SLBs) are widely used as a model for studying membrane properties (phase separation, clustering, dynamics) and its interaction with other compounds, such as drugs or peptides. However SLB characteristics differ depending on the support used.

Commonly used techniques for SLB imaging and measurements are single molecule fluorescence microscopy, FCS and atomic force microscopy (AFM). Because most optical imaging studies are carried out on a glass support, while AFM requires an extremely flat surface (generally mica), results from these techniques cannot be compared directly, since the charge and smoothness properties of these materials strongly influence diffusion. Unfortunately, the high level of manual dexterity required for the cutting and gluing thin slices of mica to the glass slide presents a hurdle to routine use of mica for SLB preparation. Although this would be the method of choice, such prepared mica surfaces often end up being uneven (wavy) and difficult to image, especially with small working distance, high numerical aperture lenses. Here we present a simple and reproducible method for preparing thin, flat mica surfaces for lipid vesicle deposition and SLB preparation. Additionally, our custom made chamber requires only very small volumes of vesicles for SLB formation. The overall procedure results in the efficient, simple and inexpensive production of high quality lipid bilayer surfaces that are directly comparable to those used in AFM studies.

Introduction

The overall goal of the present protocol is to show a method for preparing mica surfaces for high resolution imaging of mica supported lipid bilayers (SLBs) using optical total internal reflection fluorescence microscopy (TIRFM) or confocal microscopy, which could also be combined with atomic force microscopy (AFM).

SLBs are a widely used model for numerous studies of lipid clustering, phase separation, dynamics of bilayer components or their interactions with peptides, proteins or other compounds1-5. Different substrates might be used for SLB formation (i.e. glass, mica, silicon dioxide, polymers) depending on the natur....

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Protocol

1. Mica and Slides Preparation

  1. Place No. 1œ (0.17 mm) coverslips into staining rack.
  2. Sonicate for 30 min in 2% detergent at 60 °C.
  3. Wash 20 times with deionized water.
  4. Remove slides using forceps and blow dry using compressed air or nitrogen.
  5. Cut mica sheet into 10 x 10 mm square pieces using scissors or razor blade.
  6. Cut each mica piece into 2-3 thinner leaflets using razor blade.
    NOTE: This step requires use of sharp blade.

2. Mica Assembly and Chamber Mounting

  1. Clean microscopic glass slide with ethanol.
  2. Glue leaflet of mica....

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Results

The diffusion behavior of fluorescent lipid probes in SLBs is different depending on the substrate. TIRFM combined with the SMT technique is a valuable method for visualizing particle movements and extracting their diffusion coefficients. Single molecule signals of a Sphingomyelin-ATTO647N probe diffusing in a DOPC (1,2-dioleoyl-sn-glycero-3-phosphocholine) bilayer supported on glass and mica are shown on the attached animated figure. The mica surface was prepared according to the protocol presented here. To est.......

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Discussion

This protocol describes a method for preparing smooth and thin mica surfaces for lipid bilayer deposition and high resolution imaging. The technique requires minimal manual skills, limited mostly to the careful disassembly of the glass-mica-glass sandwich (step 2.8), which is critical for obtaining a high quality mica surface. Inspection of the freshly cleaved mica is always required at this point, since it is possible for the mica to detach from the optical adhesive without cleaving, leaving exposed areas of optical adh.......

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Disclosures

The authors have nothing to disclose.

Acknowledgements

The authors have no acknowledgements.

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Materials

List of materials used in this article
NameCompanyCatalog NumberComments
Bath SonicatorFisher ScientificFB15051
Coverslips 24 x 50 mm - No H1.5Marienfeld102222
DOPCAvanti Polar Lipids850357
Hellmanex III (detergent)Hellma Analytics320.003
Mica V-1 GradeSPI Suppliers1872-CA
Optical Adhesive (high viscosity)Norland ProductsNOA63
Optical Adhesive (low viscosity)Norland ProductsNOA60
Sphingomyelin-ATTO647NAttoTecAD 647N-171
UV lampSynoptics Ltd.GelVue GVM20The lamp was set to 100% power

References

  1. Giocondi, M. -C., et al. Surface topography of membrane domains. Biochimica et Biophysica Acta (BBA) - Biomembranes. 1798, 703-718 (2010).
  2. Garcia-Saez, A. J., Schwille, P. Surface analysis of membrane dynamics. Biochim Biophys Acta. 1798, 766-776 (2010)....

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Tags

Lipid Bilayer PreparationMica Surface PreparationOptical Adhesive BondingSingle Molecule TrackingVesicle Deposition MethodCustom Chamber AssemblyHigh Resolution ImagingDiffusion Behavior Analysis