Literature DB >> 34891327

Parametric Deconvolution for Cancer Cells Viscoelasticity Measurements from Quantitative Phase Images.

Tomas Vicar, Jaromir Gumulec, Radim Kolar, Jiri Chmelik, Jiri Navratil, Larisa Chmelikova, Vratislav Cmiel, Ivo Provaznik, Michal Masarik.   

Abstract

In this contribution, we focused on optimising a dynamic flow-based shear stress system to achieve a reliable platform for cell shear modulus (stiffness) and viscosity assessment using quantitative phase imaging. The estimation of cell viscoelastic properties is influenced by distortion of the shear stress waveform, which is caused by the properties of the flow system components (i.e., syringe, flow chamber and tubing). We observed that these components have a significant influence on the measured cell viscoelastic characteristics. To suppress this effect, we applied a correction method utilizing parametric deconvolution of the flow system's optimized impulse response. Achieved results were compared with the direct fitting of the Kelvin-Voigt viscoelastic model and the basic steady-state model. The results showed that our novel parametric deconvolution approach is more robust and provides a more reliable estimation of viscosity with respect to changes in the syringe's compliance compared to Kelvin-Voigt model.

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Year:  2021        PMID: 34891327     DOI: 10.1109/EMBC46164.2021.9630524

Source DB:  PubMed          Journal:  Annu Int Conf IEEE Eng Med Biol Soc        ISSN: 2375-7477


  1 in total

1.  Cancer cell viscoelasticity measurement by quantitative phase and flow stress induction.

Authors:  Tomas Vicar; Jiri Chmelik; Jiri Navratil; Radim Kolar; Larisa Chmelikova; Vratislav Cmiel; Jiri Jagos; Ivo Provaznik; Michal Masarik; Jaromir Gumulec
Journal:  Biophys J       Date:  2022-04-04       Impact factor: 3.699

  1 in total

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