Published September 23, 2024 | Version v1
Journal article

Margination of artificially stiffened red blood cells

  • 1. Experimental Physics, Saarland University, 66123 Saarbrücken, Germany
  • 2. Aix Marseille Universite, CNRS, Centrale Marseille, IRPHE, Marseille, France
  • 3. Helmholtz Institute Erlangen-Nürnberg for Renewable Energy, Forschungszentrum Jülich, Cauerstraße 1, 91058 Erlangen, Germany
  • 4. Department of Chemical and Biological Engineering and Department of Physics, Friedrich-Alexander-Universität Erlangen-Nürnberg, Cauerstraße 1, 91058 Erlangen, Germany
  • 5. Experimental Physics, Saarland University, 66123 Saarbrucken, Germany
  • 6. Department of Physics and Materials Science, University of Luxembourg, L-1511 Luxembourg, Luxembourg
  • 7. Aix Marseille Universite, CNRS, Centrale Marseille, M2P2, Marseille, France
  • 8. Aix Marseille Universite, CNRS, CINAM, Turing Centre for Living Systems, Marseille, France

Description

Margination, a fundamental process in which leukocytes migrate from the flowing blood to the vessel wall, is well-documented in physiology. However, it is still an open question on how the differences in cell size and stiffness of white and red cells contribute to this phenomenon. To investigate the specific influence of cell stiffness, we conduct experimental and numerical studies on the segregation of a binary mixture of artificially stiffened red blood cells within a suspension of healthy cells. The resulting distribution of stiffened cells within the channel is found to depend on the channel geometry, as demonstrated with slit, rectangular, and cylindrical cross sections. Notably, an unexpected central peak in the distribution of stiffened red blood cells, accompanied by fourfold peaks at the corners, emerges in agreement with simulations. Our results unveil a nonmonotonic variation in segregation/margination concerning hematocrit and flow rate, challenging the prevailing belief that higher flow rates lead to enhanced margination.

Additional details

Identifiers

DOI
10.1103/PhysRevFluids.9.L091101;
Crossref Funder ID
10.13039/501100001659; 10.13039/100020994; 10.13039/501100001665;

Publishing Information

Journal Title
Physical Review Fluids
Journal Volume
9
Journal Issue
9
Journal Page Range
12 pgs.
ISSN
2469-990X

Optional Information

Copyright
©2024 American Physical Society
Contract/Grant/Project number
WA 1336/12-2; HA 4382/8-2; ANR-13-BS09-0015-01
Notes
Contact Email: Contact author: christian.wagner@uni-saarland.de; Contact Email: Contact author: marc.leonetti@univ-amu.fr; Record automatically processed
Funding organization
Deutsche Forschungsgemeinschaft; Centre national d'études spatiales; Agence Nationale de la Recherche