TY - JOUR
T1 - Numerical study on flows of red blood cells with liposome-encapsulated hemoglobin at microvascular bifurcation
AU - Hyakutake, Toru
AU - Tominaga, Shouko
AU - Matsumoto, Takeshi
AU - Yanase, Shinichiro
PY - 2008/1/1
Y1 - 2008/1/1
N2 - Flow analysis at microvascular bifurcation after partial replacement of red blood cell (RBC) with liposome-encapsulated hemoglobin (LEH) was performed using the lattice Boltzmann method. A two-dimensional symmetric Y bifurcation model with a parent vessel diameter of 20 μm and daughter branch diameters of 20 μm was considered, and the distributions of the RBC, LEH, and oxygen fluxes were calculated. When only RBCs flow into the daughter branches with unevenly distributed flows, plasma separation occurred and the RBC flow to the lower-flow branch was disproportionately decreased. On the other hand, when half of RBC are replaced by LEH, the biasing of RBC flow was enhanced whereas LEH flowed favorably into the lower-flow branch, because many LEH within the parent vessel are suspended in the plasma layer, where no RBCs exist. Consequently, the branched oxygen fluxes became nearly proportional to flows. These results indicate that LEH facilitates oxygen supply to branches that are inaccessible to RBCs.
AB - Flow analysis at microvascular bifurcation after partial replacement of red blood cell (RBC) with liposome-encapsulated hemoglobin (LEH) was performed using the lattice Boltzmann method. A two-dimensional symmetric Y bifurcation model with a parent vessel diameter of 20 μm and daughter branch diameters of 20 μm was considered, and the distributions of the RBC, LEH, and oxygen fluxes were calculated. When only RBCs flow into the daughter branches with unevenly distributed flows, plasma separation occurred and the RBC flow to the lower-flow branch was disproportionately decreased. On the other hand, when half of RBC are replaced by LEH, the biasing of RBC flow was enhanced whereas LEH flowed favorably into the lower-flow branch, because many LEH within the parent vessel are suspended in the plasma layer, where no RBCs exist. Consequently, the branched oxygen fluxes became nearly proportional to flows. These results indicate that LEH facilitates oxygen supply to branches that are inaccessible to RBCs.
KW - Biased flux
KW - Lattice Boltzmann method
KW - Liposome-encapsulated hemoglobin
KW - Microvascular bifurcation flow
KW - Red blood cell
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U2 - 10.1115/1.2838024
DO - 10.1115/1.2838024
M3 - Article
C2 - 18298190
AN - SCOPUS:47149114935
SN - 0148-0731
VL - 130
JO - Journal of Biomechanical Engineering
JF - Journal of Biomechanical Engineering
IS - 1
M1 - 011014
ER -