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PMID: 19157711 Published · ppublish English Journal Article Research Support, N.I.H., Extramural Research Support, Non-U.S. Gov't

Practical factors affecting the performance of a thin-film phase plate for transmission electron microscopy.

Ultramicroscopy ·Vol. 109 ·No. 4 ·2009-03-00 ·Pages 312-25

Danev R, Glaeser RM, Nagayama K

Abstract

A number of practical issues must be addressed when using thin carbon films as quarter-wave plates for Zernike phase-contrast electron microscopy. We describe, for example, how we meet the more stringent requirements that must be satisfied for beam alignment in this imaging mode. In addition we address the concern that one might have regarding the loss of some of the scattered electrons as they pass through such a phase plate. We show that two easily measured parameters, (1) the low-resolution image contrast produced in cryo-EM images of tobacco mosaic virus particles and (2) the fall-off of the envelope function at high resolution, can be used to quantitatively compare the data quality for Zernike phase-contrast images and for defocused bright-field images. We describe how we prepare carbon-film phase plates that are initially free of charging or other effects that degrade image quality. We emphasize, however, that even though the buildup of hydrocarbon contamination can be avoided by heating the phase plates during use, their performance nevertheless deteriorates over the time scale of days to weeks, thus requiring their frequent replacement in order to maintain optimal performance.

MeSH Terms
Bacteria/ultrastructure Carbon/chemistry Microscopy, Electron, Transmission/instrumentation,standards
Chemicals
Carbon
Authors & Affiliations
3 authors, click to expand affiliations / ORCID
Danev Radostin
Okazaki Institute for Integrative Bioscience, National Institutes of Natural Sciences, 5-1 Higashiyama, Miyodaiji-cho, Okazaki, Aichi 444-8787, Japan. rado@nips.ac.jp
Glaeser Robert M
Nagayama Kuniaki
References (18)
18 references, click to expand
  1. Zernike phase contrast electron microscopy of ice-embedded influenza A virus.
    J Struct Biol. 2008 May;162(2):271-6 PMID: 18313941
  2. Electron energy filtering significantly improves amplitude contrast of frozen-hydrated protein at 300kV.
    J Struct Biol. 2006 Dec;156(3):524-36 PMID: 16987672
  3. Restoration of weak phase-contrast images recorded with a high degree of defocus: the "twin image" problem associated with CTF correction.
    Ultramicroscopy. 2008 Aug;108(9):921-8 PMID: 18508199
  4. Development of phase plates for electron microscopes and their biological application.
    Eur Biophys J. 2008 Apr;37(4):345-58 PMID: 18259741
  5. Design of a microfabricated, two-electrode phase-contrast element suitable for electron microscopy.
    Ultramicroscopy. 2007 Apr-May;107(4-5):329-39 PMID: 17079082
  6. Experimental characterization and mitigation of specimen charging on thin films with one conducting layer.
    Microsc Microanal. 2004 Dec;10(6):783-9 PMID: 19780320
  7. Transmission electron microscopy with Zernike phase plate.
    Ultramicroscopy. 2001 Sep;88(4):243-52 PMID: 11545320
  8. A formula for the image intensity of phase objects in Zernike mode.
    Ultramicroscopy. 2008 Aug;108(9):953-8 PMID: 18487020
  9. A Novel Phase-contrast Transmission Electron Microscopy Producing High-contrast Topographic Images of Weak objects.
    J Biol Phys. 2002 Dec;28(4):627-35 PMID: 23345803
  10. Electron holography of thin amorphous carbon films: measurement of the mean inner potential and a thickness-independent phase shift.
    Ultramicroscopy. 2006 Mar;106(4-5):341-5 PMID: 16343774
  11. Single particle analysis based on Zernike phase contrast transmission electron microscopy.
    J Struct Biol. 2008 Feb;161(2):211-8 PMID: 18082423
  12. X-ray solution scattering (SAXS) combined with crystallography and computation: defining accurate macromolecular structures, conformations and assemblies in solution.
    Q Rev Biophys. 2007 Aug;40(3):191-285 PMID: 18078545
  13. Optimizing phase contrast in transmission electron microscopy with an electrostatic (Boersch) phase plate.
    Ultramicroscopy. 2007 Feb-Mar;107(2-3):213-26 PMID: 16949755
  14. Specimen charging on thin films with one conducting layer: discussion of physical principles.
    Microsc Microanal. 2004 Dec;10(6):790-6 PMID: 19780321
  15. Using cryo-EM to measure the dipole potential of a lipid membrane.
    Proc Natl Acad Sci U S A. 2006 Dec 5;103(49):18528-33 PMID: 17116859
  16. Experimental characterisation of CCD cameras for HREM at 300 kV
    Ultramicroscopy. 2000 Sep;85(1):9-13 PMID: 10981735
  17. High resolution structural analysis of Helicobacter pylori VacA toxin oligomers by cryo-negative staining electron microscopy.
    J Struct Biol. 2005 Sep;151(3):215-28 PMID: 16125415
  18. Quantitative energy-filtered electron microscopy of biological molecules in ice.
    Ultramicroscopy. 1992 Oct;46(1-4):349-73 PMID: 1336234
Article Info
Journal
Ultramicroscopy
Abbr.
Ultramicroscopy
ISSN
0304-3991
Published
2009-03-00
Epub
2008-00-11
Pages
312-25
Language
English
Region
Netherlands
NLM ID
7513702
PMCID
PMC3223123
Subset
IM
Grants
NIGMS NIH HHS · R01 GM083039 · United States
NIGMS NIH HHS · R01 GM083039-01 · United States
NIGMS NIH HHS · GM083039 · United States
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