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Originally published as Biophys J. BioFAST on February 4, 2005.
doi:10.1529/biophysj.104.051458
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Biophysical Journal 88:3681-3688 (2005)
© 2005 The Biophysical Society

High-Resolution Near-Field Optical Imaging of Single Nuclear Pore Complexes under Physiological Conditions

C. Höppener *, J. P. Siebrasse {dagger}, R. Peters {dagger}, U. Kubitscheck {ddagger} and A. Naber *

* Institut für Angewandte Physik, Universität Karlsruhe, Karlsruhe, Germany; {dagger} Institut für Medizinische Physik und Biophysik, Universität Münster, Münster, Germany; and {ddagger} Institut für Physikalische und Theoretische Chemie, Universität Bonn, Bonn, Germany

Correspondence: Address reprint requests to Dr. A. Naber, Institut für Angewandte Physik, Wolfgang-Gaede-Str. 1, D-76131 Karlsruhe, Germany. Tel.: 49-721-608-3416; Fax: 49-721-608-8480; E-mail: andreas.naber{at}physik.uni-karlsruhe.de.

Scanning near-field optical microscopy (SNOM) circumvents the diffraction limit of conventional light microscopy and is able to achieve optical resolutions substantially below 100 nm. However, in the field of cell biology SNOM has been rarely applied, probably because previous techniques for sample-distance control are less sensitive in liquid than in air. Recently we developed a distance control based on a tuning fork in tapping mode, which is also well-suited for imaging in solution. Here we show that this approach can be used to visualize single membrane protein complexes kept in physiological media throughout. Nuclear envelopes were isolated from Xenopus laevis oocytes at conditions shown recently to conserve the transport functions of the nuclear pore complex (NPC). Isolated nuclear envelopes were fluorescently labeled by antibodies against specific proteins of the NPC (NUP153 and p62) and imaged at a resolution of ~60 nm. The lateral distribution of epitopes within the supramolecular NPC could be inferred from an analysis of the intensity distribution of the fluorescence spots. The different number densities of p62- and NUP153-labeled NPCs are determined and discussed. Thus we show that SNOM opens up new possibilities for directly visualizing the transport of single particles through single NPCs and other transporters.




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