Why the study?
Does Dextran 500-induced red blood cell aggregation reduce venular flow and functional vascular density in the microvasculature of rats?
Does Dextran 500-induced red blood cell aggregation reduce venular flow and functional vascular density in the microvasculature of rats?
Dextran-induced red blood cell aggregation significantly reduces microvascular perfusion and venular flow velocity, particularly under low arterial pressure conditions.
Suggests microvascular risks with dextran at low MAP; leaves open translation to human resuscitation.
This study examined the effect of dextran-induced RBC aggregation on the venular flow in microvasculature. We utilized the laser speckle contrast imaging (LSCI) as a wide-field imaging technique to visualize the flow distribution in venules influenced by abnormally elevated levels of RBC aggregation at a network-scale level, which was unprecedented in previous studies. RBC aggregation in rats was induced by infusing Dextran 500. To elucidate the impact of RBC aggregation on microvascular perfusion, blood flow in the venular network of a rat cremaster muscle was analyzed with a stepwise reduction of the arterial pressure (100 → 30 mmHg). The LSCI analysis revealed a substantial decrease in the functional vascular density after the infusion of dextran. The relative decrease in flow velocity after dextran infusion was notably pronounced at low arterial pressures. Whole blood viscosity measurements implied that the reduction in venular flow with dextran infusion could be due to the elevation of medium viscosity in high shear conditions (> 45 s-1). In contrast, further augmentation to the flow reduction at low arterial pressures could be attributed to the formation of RBC aggregates (< 45 s-1). This study confirmed that RBC aggregation could play a dominant role in modulating microvascular perfusion, particularly in the venular networks.
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Namgung et al. (2015) studied this question.
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