Forces of interaction of red blood cells and endothelial cells at different concentrations of fibrinogen: Measurements with laser tweezers in vitro.

Petr B Ermolinskiy, Matvey K Maksimov, Alexey V Muravyov, Andrei E Lugovtsov, Olga N Scheglovitova, Alexander V Priezzhev
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Abstract

Blood microrheology depends on the constituents of blood plasma, the interaction between blood cells resulting in red blood cell (RBC) and platelets aggregation, and adhesion of RBC, platelets and leukocytes to vascular endothelium. The main plasma protein molecule -actuator of RBC aggregation is fibrinogen. In this paper the effect of interaction between the endothelium and RBC at different fibrinogen concentrations on the RBC microrheological properties was investigated in vitro. Laser tweezers were used to measure the RBC-endothelium interaction forces. It was shown for the first time that the interaction forces between RBC and endothelium are comparable with the RBC aggregation forces, they increase with fibrinogen concentration and reach the saturation level of about 4 pN at the concentration of 4 mg/ml. These results are important for better understanding the mechanisms of RBC and endothelium interaction and developing the novel therapeutic protocols of the microrheology correction in different pathologies.

不同纤维蛋白原浓度下红细胞和内皮细胞的相互作用力:体外激光镊子测量。
血液微流变学取决于血浆的成分、导致红细胞和血小板聚集的血细胞之间的相互作用,以及红细胞、血小板和白细胞与血管内皮的粘附。红细胞聚集的主要血浆蛋白分子致动器是纤维蛋白原。本文研究了不同纤维蛋白原浓度下内皮细胞与红细胞相互作用对红细胞微流变特性的影响。用激光镊子测量红细胞与内皮细胞的相互作用力。首次发现红细胞与内皮细胞之间的相互作用力与红细胞聚集力相当,它们随着纤维蛋白原浓度的增加而增加,在4 mg/ml。这些结果对于更好地理解红细胞和内皮相互作用的机制以及开发不同病理中微流变学校正的新治疗方案具有重要意义。
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