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Cold. Spring. Harb. Protoc. 2011(7), 815–23 (2011)
142. J.R. Kremer, D.N. Mastronarde, J.R. McIntosh, Computer visualization of three-dimensional
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32
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5 (2016)
120. M.F. Schmid, C.R. Booth, Methods for aligning and for averaging 3D volumes with missing
data. J. Struct. Biol. 161(3), 243–8 (2008)
121. L. Kovacik et al., A simple Fourier filter for suppression of the missing wedge ray artefacts
in single-axis electron tomographic reconstructions. J. Struct. Biol. 186(1), 141–52 (2014)
122. B. Turonova, L. Marsalek, P. Slusallek, On geometric artifacts in cryo electron tomography.
Ultramicroscopy 163, 48–61 (2016)
123. C.M. Palmer, J. Lowe, A cylindrical specimen holder for electron cryo-tomography.
Ultramicroscopy 137, 20–9 (2014)
124. W. Kukulski et al., Precise, correlated fluorescence microscopy and electron tomography of
lowicryl sections using fluorescent fiducial markers. Methods Cell. Biol. 111, 235–57 (2012)
125. J. Arnold et al., Site-specific cryo-focused ion beam sample preparation guided by 3d
correlative microscopy. Biophys. J. 110(4), 860–9 (2016)
126. R. Henderson, Avoiding the pitfalls of single particle cryo-electron microscopy: einstein
from noise. Proc. Natl. Acad. Sci. U.S.A. 110(45), 18037–18041 (2013)
127. G.P. Henderson, L. Gan, G.J. Jensen, 3-D ultrastructure of O. tauri: electron cryotomography
of an entire eukaryotic cell. PLoS ONE 2(8), e749 (2007)
128. M.M. Farley et al., Minicells. Back in Fashion. J. Bacteriol. 198(8), 1186–95 (2016)
129. A. Rigort et al., Focused ion beam micromachining of eukaryotic cells for cryoelectron
tomography. Proc. Natl. Acad. Sci. U.S.A. 109(12), 4449–4454 (2012)
130. W.E. Moerner, M. Orrit, Illuminating single molecules in condensed matter. Science 283
(5408), 1670–6 (1999)
131. C.L. Schwartz et al., Cryo-fluorescence microscopy facilitates correlations between light and
cryo-electron microscopy and reduces the rate of photobleaching. J. Microsc. 227(Pt 2), 98–
109 (2007)
132. E. Betzig et al., Imaging intracellular fluorescent proteins at nanometer resolution. Science
313(5793), 1642–1645 (2006)
133. Y.W. Chang et al., Correlated cryogenic photoactivated localization microscopy and
cryo-electron tomography. Nat. Methods 11(7), 737–9 (2014)
134. R. Kaufmann, C. Hagen, K. Grunewald, Fluorescence cryo-microscopy: current challenges
and prospects. Curr. Opin. Chem. Biol. 20, 86–91 (2014)
135. R. Kaufmann et al., Super-resolution microscopy using standard fluorescent proteins in
intact cells under cryo-conditions. Nano. Lett. 14(7), 4171–5 (2014)
136. G. Wolff, et al., Towards correlative super-resolution fluorescence and electron
cryo-microscopy. Biol. Cell. (2016)
137. W. Kukulski et al., Plasma membrane reshaping during endocytosis is revealed by
time-resolved electron tomography. Cell 150(3), 508–20 (2012)
138. J. Sun, H. Li, How to operate a cryo-electron microscope. Methods Enzymol. 481, 231–49
(2010)
139. C.V. Iancu et al., Electron cryotomography sample preparation using the Vitrobot. Nat.
Protoc. 1(6), 2813–2819 (2006)
140. R.A. Grassucci, D.J. Taylor, J. Frank, Preparation of macromolecular complexes for
cryo-electron microscopy. Nat. Protoc. 2(12), 3239–3246 (2007)
141. G.P. Resch et al., Immersion freezing of cell monolayers for cryo-electron tomography.
Cold. Spring. Harb. Protoc. 2011(7), 815–23 (2011)
142. J.R. Kremer, D.N. Mastronarde, J.R. McIntosh, Computer visualization of three-dimensional
image data using IMOD. J. Struct. Biol. 116(1), 71–6 (1996)
32
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