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Red cells' dynamic morphologies govern blood shear thinning under microcirculatory flow conditions

  • Luca Lanotte
  • , Johannes Mauer
  • , Simon Mendez
  • , Dmitry A. Fedosov
  • , Jean Marc Fromental
  • , Viviana Claveria
  • , Franck Nicoud
  • , Gerhard Gompper
  • , Manouk Abkarian*
  • *Corresponding author for this work
  • Université de Montpellier
  • Jülich Research Centre
  • Institut Montpelliérain Alexander Grothendieck

Research output: Contribution to journalArticlepeer-review

213 Citations (Scopus)

Abstract

Blood viscosity decreases with shear stress, a property essential for an efficient perfusion of the vascular tree. Shear thinning is intimately related to the dynamics and mutual interactions of RBCs, the major component of blood. Because of the lack of knowledge about the behavior of RBCs under physiological conditions, the link between RBC dynamics and blood rheology remains unsettled. We performed experiments and simulations in microcirculatory flow conditions of viscosity, shear rates, and volume fractions, and our study reveals rich RBC dynamics that govern shear thinning. In contrast to the current paradigm, which assumes that RBCs align steadily around the flow direction while their membranes and cytoplasm circulate, we show that RBCs successively tumble, roll, deform into rolling stomatocytes, and, finally, adopt highly deformed polylobed shapes for increasing shear stresses, even for semidilute volume fractions of the microcirculation. Our results suggest that any pathological change in plasma composition, RBC cytosol viscosity, or membrane mechanical properties will affect the onset of these morphological transitions and should play a central role in pathological blood rheology and flow behavior.

Original languageEnglish
Pages (from-to)13289-13294
Number of pages6
JournalProceedings of the National Academy of Sciences of the United States of America
Volume113
Issue number47
DOIs
Publication statusPublished - 22 Nov 2016
Externally publishedYes

Keywords

  • Blood rheology
  • Blood simulation
  • Cell dynamics
  • Red blood cell

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