Trains of Red Blood Cells in a bi-dimensional microflows.

ORAL

Abstract

In the vascular microcirculation RBC distribution is uneven in the direction normal to the blood flow, as first evidenced by the existence of a cell-free layer near the vessel wall. In addition, the most rigid cells such as white blood cells and platelets are known to segregate to the walls while flowing in wide channels. We use microfluidic bi-dimensional channels (60 µm wide, 8 µm high, 5 mm long) to explore the flow structure in RBC suspensions at several hematocrits, flow rates and RBC rigidities. We observe the dynamical formation of RBC clusters and their motion along the flow direction. We study healthy RBCs, RBCs stiffened with glutaraldehyde, mixture of healthy and stiffened RBCs and RBC from sickle cell patients. Initially dispersed healthy RBCs organize, while flowing along the channel, into series of parallel trains. The train length depends on RBC hematocrit and flow rate. Stiffened RBCs do not cluster and mainly display tumbling motion like rigid disks. They destabilize existing trains and are preferentially observed close to the walls. We compared our results to that observed in microcapillaries, where trains of RBCs entirely fill in width the microchannel (G. Tomaiuolo, L. Lanotte, G. Ghigliotti, C. Misbah, and S. Guido, Phys Fluids, 24, 051903 (2012).

*This work has been carried out thanks to the support of the A*MIDEX project (n° ANR-11-IDEX-0001-02) funding by the "Investissements d'Avenir" French Government program, ma,ged by ANR

Authors

  • Annie Viallat

    • Aix Marseille Univ, CNRS, CINAM, Marseille, France
    • CNRS Aix - Marseille Université , France
  • Cecile Iss

    • CNRS Aix - Marseille Université , France
  • Delphine Held

    • CNRS Aix - Marseille Université , France
  • catherine badens

    • Assistance Publique des Hôpitaux de Marseille, Dpt de Génétique Médicale, Aix Marseille Université, INSERM, Centre de reference thalassemie
  • anne charrier

    • CNRS Aix - Marseille Université , France
  • Emmanuèle Helfer

    • CNRS Aix - Marseille Université , France