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A simple and robust procedure for preparing graphene-oxide cryo-EM grids.

Eugene Palovcak1, Feng Wang1, Shawn Q Zheng2

  • 1Department of Biochemistry and Biophysics, University of California San Francisco, CA 94143, United States.

Journal of Structural Biology
|July 19, 2018
PubMed
Summary

We developed a simple method to prepare graphene oxide (GO) EM grids for cryo-electron microscopy (cryo-EM). These GO grids improve macromolecule adherence and aid in motion correction for high-resolution imaging.

Keywords:
Cryo-EMEM gridsGraphene-oxideMotion correction

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Area of Science:

  • Biophysics
  • Materials Science
  • Electron Microscopy

Background:

  • Graphene oxide (GO) sheets are valuable supporting substrates in cryogenic electron-microscopy (cryo-EM).
  • Previous methods for preparing GO-covered holey carbon EM grids have faced challenges, limiting their widespread application.
  • High-resolution imaging of biological macromolecules using cryo-EM requires robust and reliable grid preparation techniques.

Purpose of the Study:

  • To develop a simple and robust method for preparing graphene oxide-covered holey carbon EM grids.
  • To demonstrate the utility of these GO-covered grids for high-resolution single particle cryo-EM.
  • To evaluate the benefits of GO substrates in cryo-EM grid preparation and data analysis.

Main Methods:

  • A straightforward protocol was established for coating holey carbon EM grids with graphene oxide sheets.
  • The prepared GO-covered grids were utilized for single particle cryo-EM experiments.
  • Analysis of cryo-EM data obtained using GO grids was performed to assess image quality and resolution.

Main Results:

  • The new method successfully produced GO-covered holey carbon EM grids suitable for cryo-EM.
  • GO substrates demonstrated enhanced adherence of macromolecules, enabling grid preparation with lower specimen concentrations.
  • The GO lattice provided a high-resolution fiducial marker in micrographs, facilitating the evaluation of beam-induced motion correction.

Conclusions:

  • The developed method offers a practical solution for preparing GO-covered EM grids for cryo-EM.
  • GO substrates enhance cryo-EM grid preparation by improving sample adherence and offering fiducial markers.
  • This technique has the potential to advance high-resolution cryo-EM studies of challenging biological macromolecules.