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Viscoelastic properties of suspended cells measured with shear flow deformation cytometry

delete2022-09-02
delete28
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OA
AI
R
Richard Gerum
E
Elham Mirzahossein
M
Mar Eroles
J
Jennifer Elsterer
A
Astrid Mainka
A
Andreas Bauer
S
Selina Sonntag
A
Alexander Winterl
J
Johannes D. Bartl
L
Lena Fischer
S
Shada Abuhattum
R
Ruchi Goswami
S
Salvatore Girardo
J
Jochen Guck
S
Stefan Schrüfer
N
Nadine Ströhlein
M
Mojtaba Nosratlo
H
Harald Herrmann
D
Dorothea Schultheis
F
Félix Rico
M
Mueller, Sebastian Johannes
S
Stephan Gekle
B
BrownRobert (Ben Fabry) *
DOI:10.7554/eLife.78823delete
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Abstract

Abstract

En 中文
Numerous cell functions are accompanied by phenotypic changes in viscoelastic properties, and measuring them can help elucidate higher level cellular functions in health and disease. We present a high-throughput, simple and low-cost microfluidic method for quantitatively measuring the elastic (storage) and viscous (loss) modulus of individual cells. Cells are suspended in a high-viscosity fluid and are pumped with high pressure through a 5.8 cm long and 200 mu m wide microfluidic channel. The fluid shear stress induces large, ear ellipsoidal cell deformations. In addition, the flow profile in the channel causes the cells to rotate in a tank-treading manner. From the cell deformation and tank treading frequency, we extract the frequency-dependent viscoelastic cell properties based on a theoretical framework developed by R. Roscoe [1] that describes the deformation of a viscoelastic sphere in a viscous fluid under steady laminar flow. We confirm the accuracy of the method using atomic force microscopy-calibrated polyacrylamide beads and cells. Our measurements demonstrate that suspended cells exhibit power-law, soft glassy rheological behavior that is cell-cycle-dependent and mediated by the physical interplay between the actin filament and intermediate filament networks.
Keywords:
cell rheology
viscoelasticity
shear flow
tank treading
microfluidics
Human
Mouse

Journal

eLife cover
eLife
IF:
0
Papers:
1.8W
Citations:
16

Organization

U
University of Erlangen Nuremberg
Scholars:
3.2W
Papers: 2.6W
Citations: 29
C
centre national de la recherche scientifique (cnrs)
Scholars:
24.4W
Papers: 18.1W
Citations: 279
A
aix-marseille universite
Scholars:
3.8W
Papers: 2.7W
Citations: 77
M
Max Planck Society
Scholars:
8.2W
Papers: 7.7W
Citations: 3.3W
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