High photon count rates improve the quality of super-resolution fluorescence fluctuation spectroscopy

Author:

Schneider FalkORCID,Hernandez-Varas PabloORCID,Christoffer Lagerholm BORCID,Shrestha DilipORCID,Sezgin ErdincORCID,Julia Roberti MORCID,Ossato Giulia,Hecht Frank,Eggeling ChristianORCID,Urbančič IztokORCID

Abstract

Abstract Probing the diffusion of molecules has become a routine measurement across the life sciences, chemistry and physics. It provides valuable insights into reaction dynamics, oligomerisation, molecular (re-)organisation or cellular heterogeneities. Fluorescence correlation spectroscopy (FCS) is one of the widely applied techniques to determine diffusion dynamics in two and three dimensions. This technique relies on the temporal autocorrelation of intensity fluctuations but recording these fluctuations has thus far been limited by the detection electronics, which could not efficiently and accurately time-tag photons at high count rates. This has until now restricted the range of measurable dye concentrations, as well as the data quality of the FCS recordings, especially in combination with super-resolution stimulated emission depletion (STED) nanoscopy. Here, we investigate the applicability and reliability of (STED-)FCS at high photon count rates (average intensities of more than 1 MHz) using novel detection equipment, namely hybrid detectors and real-time gigahertz sampling of the photon streams implemented on a commercial microscope. By measuring the diffusion of fluorophores in solution and cytoplasm of live cells, as well as in model and cellular membranes, we show that accurate diffusion and concentration measurements are possible in these previously inaccessible high photon count regimes. Specifically, it offers much greater flexibility of experiments with biological samples with highly variable intensity, e.g. due to a wide range of expression levels of fluorescent proteins. In this context, we highlight the independence of diffusion properties of cytosolic GFP in a concentration range of approx. 0.01–1 µm. We further show that higher photon count rates also allow for much shorter acquisition times, and improved data quality. Finally, this approach also pronouncedly increases the robustness of challenging live cell STED-FCS measurements of nanoscale diffusion dynamics, which we testify by confirming a free diffusion pattern for a fluorescent lipid analogue on the apical membrane of adherent cells.

Funder

MRC Proximity to Discovery funds

Wellcome Institutional Strategic Support Fund

John Fell Fund, University of Oxford

Medical Research Council

H2020 Marie Skłodowska-Curie Actions

Wolfson Foundation

Newton-Katip Celebi Institutional Links

Deutsche Forschungsgemeinschaft

MRC/BBSRC/EPSRC

EPA Cephalosporin Fund

Wellcome Trust

Publisher

IOP Publishing

Subject

Surfaces, Coatings and Films,Acoustics and Ultrasonics,Condensed Matter Physics,Electronic, Optical and Magnetic Materials

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