English

Nanometer resolution imaging and tracking of fluorescent molecules with minimal photon fluxes

Optics 2017-04-12 v1 Biological Physics

Abstract

We introduce MINFLUX, a concept for localizing photon emitters in space. By probing the emitter with a local intensity minimum of excitation light, MINFLUX minimizes the fluorescence photons needed for high localization precision. A 22-fold reduction of photon detections over that required in popular centroid-localization is demonstrated. In superresolution microscopy, MINFLUX attained ~1 nm precision, resolving molecules only 6 nm apart. Tracking single fluorescent proteins by MINFLUX increased the temporal resolution and the localizations per trace by 100-fold, as demonstrated with diffusing 30S ribosomal subunits in living E. coli. Since conceptual limits have not been reached, we expect this localization modality to break new ground for observing the dynamics, distribution, and structure of macromolecules in living cells and beyond.

Keywords

Cite

@article{arxiv.1611.03401,
  title  = {Nanometer resolution imaging and tracking of fluorescent molecules with minimal photon fluxes},
  author = {Francisco Balzarotti and Yvan Eilers and Klaus C. Gwosch and Arvid H. Gynnå and Volker Westphal and Fernando D. Stefani and Johan Elf and Stefan W. Hell},
  journal= {arXiv preprint arXiv:1611.03401},
  year   = {2017}
}

Comments

Equal contributions: Francisco Balzarotti, Yvan Eilers, Klaus C. Gwosch Correspondence to: [email protected]; Phone +495512012500 Pages: 17 (main paper), Figures: 5