• DocumentCode
    1765633
  • Title

    Deformability Measurement of Single-Cells at High-Throughput With Imaging Flow Cytometry

  • Author

    Eluru, Gangadhar ; Srinivasan, Rajesh ; Gorthi, Sai Siva

  • Author_Institution
    Dept. of Instrum. & Appl. Phys., Indian Inst. of Sci., Bangalore, India
  • Volume
    33
  • Issue
    16
  • fYear
    2015
  • fDate
    Aug.15, 15 2015
  • Firstpage
    3475
  • Lastpage
    3480
  • Abstract
    Disease conditions like malaria, sickle cell anemia, diabetes mellitus, cancer, etc., are known to significantly alter the deformability of certain types of cells (red blood cells, white blood cells, circulating tumor cells, etc.). To determine the cellular deformability, techniques like micropipette aspiration, atomic force microscopy, optical tweezers, quantitative phase imaging have been developed. Many of these techniques have an advantage of determining the single cell deformability with ultrahigh precision. However, the suitability of these techniques for the realization of a deformability based diagnostic tool is questionable as they are expensive and extremely slow to operate on a huge population of cells. In this paper, we propose a technique for high-throughput (800 cells/s) determination of cellular deformability on a single cell basis. This technique involves capturing the image(s) of cells in flow that have undergone deformation under the influence of shear gradient generated by the fluid flowing through the microfluidic channels. Deformability indices of these cells can be computed by performing morphological operations on these images. We demonstrate the applicability of this technique for examining the deformability index on healthy, diabetic, and sphered red blood cells. We believe that this technique has a strong role to play in the realization of a potential tool that uses deformability as one of the important criteria in disease diagnosis.
  • Keywords
    bioMEMS; biomechanics; biomedical optical imaging; cellular biophysics; deformation; diseases; mechanical variables measurement; microchannel flow; atomic force microscopy; cancer; cellular deformability; circulating tumor cells; deformability measurement; deformability-based diagnostic tool; diabetes mellitus; diabetic red blood cells; disease diagnosis; imaging flow cytometry; malaria; microfluidic channels; micropipette aspiration; morphological operations; optical tweezers; quantitative phase imaging; red blood cells; shear gradient; sickle cell anemia; single cell deformability; single-cells; sphered red blood cells; white blood cells; Diabetes; Diseases; Imaging; Instruments; Pathology; Red blood cells; Throughput; Cell deformability; Clinical diagnostics; High-throughput imaging; Microfluidics; Morphological analysis; clinical diagnostics; high-throughput imaging; microfluidics; morphological analysis;
  • fLanguage
    English
  • Journal_Title
    Lightwave Technology, Journal of
  • Publisher
    ieee
  • ISSN
    0733-8724
  • Type

    jour

  • DOI
    10.1109/JLT.2015.2413834
  • Filename
    7061422