<?xml version='1.0' encoding='UTF-8'?><codeBook xmlns="ddi:codebook:2_5" xmlns:xsi="http://www.w3.org/2001/XMLSchema-instance" xsi:schemaLocation="ddi:codebook:2_5 https://ddialliance.org/Specification/DDI-Codebook/2.5/XMLSchema/codebook.xsd" version="2.5"><docDscr><citation><titlStmt><titl>Raw Microscopy Data for: Correlative single-molecule and structured illumination microscopy of fast dynamics at the plasma membrane.</titl><IDNo agency="DOI">doi:10.26249/FK2/V8HWWH</IDNo></titlStmt><distStmt><distrbtr source="archive">osnaData</distrbtr><distDate>2024-06-18</distDate></distStmt><verStmt source="archive"><version date="2024-06-18" type="RELEASED">1</version></verStmt><biblCit>Kurre, Rainer; Winkelmann, Hauke, 2024, "Raw Microscopy Data for: Correlative single-molecule and structured illumination microscopy of fast dynamics at the plasma membrane.", https://doi.org/10.26249/FK2/V8HWWH, osnaData, V1</biblCit></citation></docDscr><stdyDscr><citation><titlStmt><titl>Raw Microscopy Data for: Correlative single-molecule and structured illumination microscopy of fast dynamics at the plasma membrane.</titl><IDNo agency="DOI">doi:10.26249/FK2/V8HWWH</IDNo></titlStmt><rspStmt><AuthEnty affiliation="Integrated Bioimaging Facility iBiOs, Department of Biology/Chemistry, Osnabrück University, Barbarastraße 11, D-49076 Osnabrück, Germany">Kurre, Rainer</AuthEnty><AuthEnty affiliation="Division of Biophysics, Department of Biology/Chemistry, Osnabrück University, Barbarastraße 11, D-49076 Osnabrück, Germany">Winkelmann, Hauke</AuthEnty></rspStmt><prodStmt><producer affiliation="Integrated Bioimaging Facility iBiOs, Department of Biology/Chemistry, Osnabrück University, Barbarastraße 11, D-49076 Osnabrück, Germany">Kurre, Rainer</producer><prodDate>2024-06-14</prodDate></prodStmt><distStmt><distrbtr source="archive">osnaData</distrbtr><contact affiliation="Integrated Bioimaging Facility iBiOs, Department of Biology/Chemistry, Osnabrück University, Barbarastraße 11, D-49076 Osnabrück, Germany" email="rainer.kurre@uos.de">Kurre, Rainer</contact><depositr>Kurre, Rainer</depositr><depDate>2024-06-11</depDate></distStmt></citation><stdyInfo><subject><keyword>Medicine, Health and Life Sciences</keyword><keyword>Physics</keyword></subject><abstract date="2024-06-11">Total internal reflection fluorescence (TIRF) microscopy offers powerful means to uncover the functional organization of proteins in the plasma membrane with very high spatial and temporal resolution. Traditional TIRF illumination, however, shows a Gaussian intensity profile, which is typically deteriorated by overlaying interference fringes hampering precise quantification of intensities – an important requisite for quantitative analyses in single-molecule localization microscopy (SMLM). Here, we combine flat-field illumination by using a standard πShaper with multi-angular TIR illumination by incorporating a spatial light modulator compatible with fast super-resolution structured illumination microscopy (SIM). This unique combination enables quantitative multi-color SMLM with a highly homogenous illumination. By using a dual camera setup with optimized image splitting optics, we achieve versatile combination of SMLM and SIM with up to three channels. We deploy this setup for establishing robust detection of receptor stoichiometries based on single-molecule intensity analysis and single-molecule Förster resonance energy transfer (smFRET). Homogeneous illumination furthermore enables long-term tracking and localization microscopy (TALM) of cell surface receptors identifying spatial heterogeneity of mobility and accessibility in the plasma membrane. By combination of TALM and SIM, spatially and molecularly heterogenous diffusion properties can be correlated with nanoscale cytoskeletal organization and dynamics.</abstract><sumDscr/></stdyInfo><method><dataColl><sources/></dataColl><anlyInfo/></method><dataAccs><notes type="DVN:TOU" level="dv">CC0 Waiver</notes><setAvail/><useStmt/></dataAccs><othrStdyMat/></stdyDscr></codeBook>