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Study of Rheological and Electrical Behaviour of RBC Suspensions in Dextran and PEG under Non-steady Flo#. Role of RBC Deformability and Morphology

机译:非稳定FLO#下葡聚糖和PEG中RBC悬浮液的流变和电能研究。 RBC可变形性和形态的作用

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A concurrent measuring system, using a Contrives Low Shear 30 rotational rheometer, previously described [1-2], was used in the study. It includes a resin replica of the Couette type measuring system MS 1/1 of the rheometer with a pair of platinum electrodes embedded into the wall; a device, constructed by the conductometric method and software (Data acquisition system) [1]. A method, based on dielectric properties of dispersed systems in Couette viscometric blood flow was applied to investigate the kinetics of RBC aggregation and the formation and break-up of the aggregates. Apparent viscosity and conductivity of normal human red blood cell (RBC) suspensions in dextran 70 (Dx 70) and polyethilenglycol (PEG) with various concentrations were evaluated in vitro under steady and unsteady flow conditions. Conductivity time and shear rate dependences in parallel with the rheological properties of the samples were studied under transient flow regimes at different local structure of the uniform Couette flow. Their dependence on dextrans concentrations were evaluated as well. Low shear viscosity and conductivity of RBC suspensions in dextrans were determined and compared to non-aggregating control RBC suspension in PBS. RBCs were treated with glutaraldehyde (GA) with different concentrations (from 0,01% to 1%). A time course of conductivity of normal RBCs and treated with GA suspended in dextran 70 was recorded under trapezoid change of shear rates. It provides experimental description of RBC aggregation-disaggregation processes and other cell-cell interactions. Dextrans induce morphological alterations in RBC shape and arrangement in the suspensions. Echinocytes are observed at low Dx 70 concentrations while spherocytes are found mainly in smears at higher Dx 70 concentrations. Their morphological characteristics affect blood electrical and mechanical properties.
机译:甲并发测量系统,使用Contrives低剪切30旋转流变仪,先前所描述的[1-2],在研究中使用。它包括库埃特型测量系统MS的一对嵌入到壁铂电极的流变仪的1/1的树脂制复制;一个装置中,通过电导方法和软件(数据采集系统)的构造[1]。一种方法中,基于在库埃特测粘血流分散系统的介电性能施加到调查红细胞聚集和形成和破裂的聚集体的动力学。用各种浓度的表观粘度和在葡聚糖70正常人红细胞(RBC)悬浮液的电导率(DX 70)和polyethilenglycol(PEG)体外稳定和不稳定流动条件下进行了评价。在不同局部结构的瞬态流动状态下,在均匀的耦合流动的不同局部结构下,在不同局部结构的情况下并行地与样品的流变特性平行的电导率时间和剪切速率。他们对右旋糖酐浓度依赖性评价为好。低剪切粘度和在葡聚糖悬浮液RBC的电导率进行了测定,并与非聚集控制的RBC悬浮液在PBS中。红细胞用戊二醛(GA)用不同浓度(从0.01%至1%)处理。正常RBC的导电性的时间过程,并用GA处理过的悬浮于葡聚糖70的混合物在剪切速率的变化梯形记录。它提供了红细胞聚集-解聚过程和其他细胞 - 细胞相互作用的实验说明。葡聚糖诱导RBC形状和布置在所述悬浮液形态改变。在低DX 70浓度下观察到棘状细胞,而在较高DX 70浓度下主要发现球织物。它们的形态特征会影响血液电气和机械性能。

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