4.6 Article

Integral refractive index imaging of flowing cell nuclei using quantitative phase microscopy combined with fluorescence microscopy

Journal

BIOMEDICAL OPTICS EXPRESS
Volume 9, Issue 3, Pages 1177-1189

Publisher

OPTICAL SOC AMER
DOI: 10.1364/BOE.9.001177

Keywords

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Funding

  1. Horizon European Research Council (ERC) [678316]
  2. U.S-Israel Binational Science Foundation (BSF) [2013341]
  3. Tel Aviv University Center for Light-Matter Interaction
  4. European Research Council (ERC) [678316] Funding Source: European Research Council (ERC)

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We suggest a new multimodal imaging technique for quantitatively measuring the integral (thickness-average) refractive index of the nuclei of live biological cells in suspension. For this aim, we combined quantitative phase microscopy with simultaneous 2-D fluorescence microscopy. We used 2-D fluorescence microscopy to localize the nucleus inside the quantitative phase map of the cell, as well as for measuring the nucleus radii. As verified offline by both 3-D confocal fluorescence microscopy and 2-D fluorescence microscopy while rotating the cells during flow, the nucleus of cells in suspension that are not during division can be assumed to be an ellipsoid. The entire shape of a cell in suspension can be assumed to be a sphere. Then, the cell and nucleus 3-D shapes can be evaluated based on their in-plain radii available from the 2-D phase and fluorescent measurements, respectively. Finally, the nucleus integral refractive index profile is calculated. We demonstrate the new technique on cancer cells, obtaining nucleus refractive index values that are lower than those of the cytoplasm, coinciding with recent findings. We believe that the proposed technique has the potential to be used for flow cytometry, where full 3-D refractive index tomography is too slow to be implemented during flow. (c) 2018 Optical Society of America under the terms of the OSA Open Access Publishing Agreement

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