Deformation under flow and morphological recovery of cancer cells

被引:0
作者
Gasser, Emile [1 ,2 ,3 ]
Su, Emilie [3 ,4 ]
Vaidziulyte, Kotryna [5 ,6 ]
Abbade, Nassiba [1 ,2 ,5 ,6 ]
Cognart, Hamizah [1 ,2 ]
Manneville, Jean-Baptiste [4 ]
Viovy, Jean-Louis [1 ,2 ]
Piel, Matthieu [5 ,6 ]
Pierga, Jean-Yves [7 ,8 ]
Terao, Kyohei [9 ]
Villard, Catherine [3 ]
机构
[1] Univ PSL, Inst Curie, CNRS, UMR168, F-75005 Paris, France
[2] Univ PSL, Inst Pierre Gilles Gennes Phys Cellules & Canc, CNRS, UMR168, F-75005 Paris, France
[3] Univ Paris Cite, Lab Interdisciplinaire Energies Demain, CNRS, UMR 8236, F-75013 Paris, France
[4] Univ Paris Cite, Lab Matiere & Syst Complexes, CNRS, UMR 7057, 10 Rue Alice Domon & Leonie Duquet, F-75013 Paris, France
[5] Univ PSL, Inst Curie, F-75005 Paris, France
[6] Univ PSL, Inst Pierre Gilles Gennes, CNRS, UMR144, F-75005 Paris, France
[7] Inst Curie, Dept Oncol Med, Paris, France
[8] Univ Paris Cite, Paris, France
[9] Kagawa Univ, Nanomicro Struct Device Integrated Res Ctr, 2217-20 Hayashi Cho, Takamatsu 7610396, Japan
基金
欧洲研究理事会;
关键词
TUMOR-CELLS; DEFORMABILITY; METASTASIS; EXTRAVASATION; MIGRATION;
D O I
10.1039/d4lc00246f
中图分类号
Q5 [生物化学];
学科分类号
071010 ; 081704 ;
摘要
The metastatic cascade includes a blood circulation step for cells detached from the primary tumor. This stage involves significant shear stress as well as large and fast deformation as the cells circulate through the microvasculature. These mechanical stimuli are well reproduced in microfluidic devices. However, the recovery dynamics after deformation is also pivotal to understand how a cell can pass through the multiple capillary constrictions encountered during a single hemodynamic cycle. The microfluidic system developed in this work allows single cell recovery to be studied under flow-free conditions following pressure-actuated cell deformation inside constricted microchannels. We used three breast cancer cell lines - namely MCF-7, SK-BR3 and MDA-MB231 - as cellular models representative of different cancer phenotypes. Changing the size of the constriction allows exploration of moderate to strong deformation regimes, the latter being associated with the formation of plasma membrane blebs. In the regime of moderate deformation, all cell types display a fast elastic recovery behavior followed by a slower viscoelastic regime, well described by a double exponential decay. Among the three cell types, cells of the mesenchymal phenotype, i.e. the MDA-MB231 cells, are softer and the most fluid-like, in agreement with previous studies. Our main finding here is that the fast elastic recovery regime revealed by our novel microfluidic system is under the control of cell contractility ensured by the integrity of the cell cortex. Our results suggest that the cell cortex plays a major role in the transit of circulating tumor cells by allowing their fast morphological recovery after deformation in blood capillaries. A novel microfluidic device dedicated to cell rheology after flow-induced deformation in constricted channel: a focus on the recovery properties of circulating tumor cells.
引用
收藏
页码:3930 / 3944
页数:15
相关论文
共 66 条
  • [1] Are cancer cells really softer than normal cells?
    Alibert, Charlotte
    Goud, Bruno
    Manneville, Jean-Baptiste
    [J]. BIOLOGY OF THE CELL, 2017, 109 (05) : 167 - 189
  • [2] Cytoplasm mechanics and cellular organization
    Arjona, Maria Isabel
    Najafi, Javad
    Minc, Nicolas
    [J]. CURRENT OPINION IN CELL BIOLOGY, 2023, 85
  • [3] Clusters of circulating tumor cells traverse capillary-sized vessels
    Au, Sam H.
    Storey, Brian D.
    Moore, John C.
    Tang, Qin
    Chen, Yeng-Long
    Javaid, Sarah
    Sarioglu, A. Fatih
    Sullivan, Ryan
    Madden, Marissa W.
    O'Keefe, Ryan
    Haber, Daniel A.
    Maheswaran, Shyamala
    Langenau, David M.
    Stott, Shannon L.
    Toner, Mehmet
    [J]. PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2016, 113 (18) : 4947 - 4952
  • [4] Metastasis of circulating tumor cells: Favorable soil or suitable biomechanics, or both?
    Azevedo, Ana Sofia
    Follain, Gautier
    Patthabhiraman, Shankar
    Harlepp, Sebastien
    Goetz, Jacky G.
    [J]. CELL ADHESION & MIGRATION, 2015, 9 (05) : 345 - 356
  • [5] Baran U, 2015, J BIOPHOTONICS, V8, P46, DOI [10.1002/jbio.201300154, 10.1002/jbio.201500192]
  • [6] Bonakdar N, 2016, NAT MATER, V15, P1090, DOI [10.1038/NMAT4689, 10.1038/nmat4689]
  • [7] Fractional viscoelastic models for power-law materials
    Bonfanti, A.
    Kaplan, J. L.
    Charras, G.
    Kabla, A.
    [J]. SOFT MATTER, 2020, 16 (26) : 6002 - 6020
  • [8] Characterizing deformability and surface friction of cancer cells
    Byun, Sangwon
    Son, Sungmin
    Amodei, Dario
    Cermak, Nathan
    Shaw, Josephine
    Kang, Joon Ho
    Hecht, Vivian C.
    Winslow, Monte M.
    Jacks, Tyler
    Mallick, Parag
    Manalis, Scott R.
    [J]. PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2013, 110 (19) : 7580 - 7585
  • [9] Actomyosin Cortical Mechanical Properties in Nonadherent Cells Determined by Atomic Force Microscopy
    Cartagena-Rivera, Alexander X.
    Logue, Jeremy S.
    Waterman, Clare M.
    Chadwick, Richard S.
    [J]. BIOPHYSICAL JOURNAL, 2016, 110 (11) : 2528 - 2539
  • [10] Myosin II Activity Softens Cells in Suspension
    Chan, Chii J.
    Ekpenyong, Andrew E.
    Golfier, Stefan
    Li, Wenhong
    Chalut, Kevin J.
    Otto, Oliver
    Elgeti, Jens
    Guck, Jochen
    Lautenschlaeger, Franziska
    [J]. BIOPHYSICAL JOURNAL, 2015, 108 (08) : 1856 - 1869