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Biomedical subjects

O K Baskurt

Publications and source records attributed to O K Baskurt.

At least 19 recordsLinked to original sources

Hemorheological parameters as determinants of myocardial tissue hematocrit values.

It is well known that the hematocrit in microvessels with diameters smaller than 1000 microm is lower than either venous or arterial hematocrit, thereby resulting in significantly lower mean hematocrit values for vessels perfusing a given tissue (i.e., lower tissue hematocrit). The mechanisms that underlie this reduction of microvascular hematocrit include axial migration, plasma skimming and the Fahraeus Effect. It has been previously demonstrated in rats that a linear hematocrit gradient normally exists through the thickness of the left ventricular myocardium, and that this gradient is sensitive to alterations of the rheological properties of the circulating blood. The gradient is abolished if the RBC in the perfusate are rigid; fibrinogen infusions, and thus increases of both plasma viscosity and RBC aggregation, also affect this gradient. In a new series of studies, it has been observed that enhanced RBC aggregation affects the myocardial hematocrit gradient regardless of alterations of plasma viscosity. Although the exact mechanisms responsible for the myocardial hematocrit gradient, as well as its physiological significance, are not yet clearly known, it is possible to speculate that alterations in local hematocrit could adversely affect myocardial perfusion and function.

Animals↗

L-carnitine deficiency and red blood cell mechanical impairment in beta-thalassemia major.

L-carnitine is an essential element of intermediary metabolism and also was shown to be effective in maintaining normal red blood cell (RBC) function. This study aimed at investigating plasma free L-carnitine concentrations and effectiveness of L-carnitine supplementation in protecting deterioration of RBC properties in beta-thalassemia major patients. Plasma free L-carnitine concentrations were determined in the blood samples obtained before their regular transfusion (about one month after the previous transfusion). Each patient received 100 mg/kg/day oral L-carnitine supplementation. RBC deformability, lipid peroxidation and intracellular free calcium concentrations were investigated before and after this treatment. Plasma free L-carnitine levels and RBC deformability before the treatment were found to be lower whereas lipid peroxidation and intracellular calcium concentration in RBC were higher compared to those of the control subjects before the L-carnitine treatment. After one month supplementation of L-carnitine lipid peroxidation and intracellular calcium concentrations were found to be decreased and RBC deformability was improved, accompanying the significantly increased plasma L-carnitine concentrations. These results suggest that L-carnitine can be used as a supplement in beta-thalassemic patients, to prevent RBC deterioration.

Adolescent↗

Influence of cell-specific factors on red blood cell aggregation.

The reversible aggregation of red blood cells (RBC) into linear and three-dimensional structures continues to be of basic science and clinical interest: RBC aggregation affects low shear blood viscosity and microvascular flow dynamics, and can be markedly enhanced in several clinical states. Until fairly recently, most research efforts were focused on relations between suspending medium composition (i.e., protein levels, polymer type and concentration) and aggregate formation. However, there is now an increasing amount of experimental evidence indicating that RBC cellular properties can markedly affect aggregation, with the term "RBC aggregability" coined to describe the cell's intrinsic tendency to aggregate. Variations of aggregability can be large, with some changes of aggregation substantially greater than those resulting from pathologic states. The present review provides a brief overview of this topic, and includes such areas as donor-to-donor variations, polymer-plasma correlations, effects of RBC age, effects of enzymatic treatment, and current developments related to the mechanisms involved in RBC aggregation.

Adult↗

The relationship between the enzyme activity, lipid peroxidation and red blood cells deformability in hemizygous and heterozygous glucose-6-phosphate dehydrogenase deficient individuals.

Glucose-6-phosphate dehydrogenase (G6PD) activity, red blood cell (RBC) lipid peroxidation and deformability were investigated in hemizygous and heterozygous G6PD deficient subjects and compared with normal individuals. None of the subjects were in acute hemolytic crises. G6PD activity was assessed based on the spectrophotometric determination of generated NADPH. Lipid peroxidation was measured as thiobarbutiric acid reactive substances (TBARS). RBC deformability was analyzed by ektacytometry. RBC lipid peroxidation was found to be significantly higher in hemizygous subjects compared to control and heterozygous subjects, while RBC deformability was found to be significantly impaired. However, although lipid peroxidation was higher than control, RBC deformability was not significantly different from control in heterozygous individuals, characterized by significantly lower RBC G6PD activity. There were no significant correlations between these three parameters when the three groups were analyzed separately, but a significant negative correlation was found to exist between G6PD activity and TBARS when the pooled data from the three groups were used for the analysis. This was also true for the relationship between RBC deformability and G6PD activity. It has been concluded that G6PD activity is not a good predictor of oxidative damage resulting in mechanical impairment in heterozygous individuals.

Adolescent↗

Red blood cell rheological alterations in a rat model of ischemia-reperfusion injury.

Red blood cell (RBC) deformability and aggregation characteristics were investigated in an experimental model of ischemia-reperfusion injury. Ischemia was produced in rat hind limb by occluding the femoral artery for 10 minutes, followed by reperfusion. Blood samples were obtained either following the ischemia or 15 minutes after reperfusion. RBC deformability measured by ektacytometry was found to be significantly impaired immediately after the end of ischemic period in the blood samples obtained from femoral vein of the ischemic limb, while there was no significant difference after 15 minutes of reperfusion. In contrast, RBC aggregability was found to be decreased only after the reperfusion period and this alteration was not only limited to the blood returning from the ischemic limb but was also observed in the samples obtained from non-ischemic, contralateral hind limb, indicating a systemic alteration. RBC electrophoresis studies suggested that the altered aggregability might be related to altered RBC surface properties including increased RBC surface charge density.

Analysis of Variance↗

Erythropoietin-induced rheological changes of rat erythrocytes.

The effects of recombinant human erythropoietin (rhEPO) on red blood cell (RBC) rheological properties were investigated in rats. Rats received intramuscular injections of 150 U/kg/d rhEPO for 5 d, following which blood samples were obtained 1, 5 or 10 d later. RBC deformability was assessed by determining cell transit times through 5-microm micropores (CTA) and RBC shape recovery time constants via photometry, aggregation in plasma and dextran was measured by photometry and RBC electrophoretic mobility was determined in a cylindrical electrophoresis system. RBC aggregation was found to be significantly decreased on day 5 after rhEPO treatment (P < 0.05), yet was unchanged from control on days 1 and 10. Mean RBC micropore transit times remained unchanged, but the distributions of transit times were altered; compared with control, the 5th percentiles on both days 1 and 5 were decreased and the 95th percentile on day 1 was elevated. Electrophoretic mobility of RBCs in phosphate-buffered saline was significantly increased on day 5 after rhEPO treatment (P < 0.05), with mobility measurements in dextran 500 (MW = 500 kDa) solutions suggesting that the cells' surface properties related to the formation of a 'depletion layer' may be altered on day 1. These results indicate that the rheological behaviour of RBC as a consequence of rhEPO treatment are temporal and are affected by the presence of reticulocytes as well as by the average age of the circulating cells.

Animals↗

Effects of swimming exercise on red blood cell rheology in trained and untrained rats.

Red blood cell (RBC) mechanical properties were investigated after swimming exercise in trained and untrained rats. A group of rats was trained for 6 wk (60 min swimming, daily), and another group was kept sedentary. Blood samples were obtained either within 5 min or 24 h after 60 min swimming in both groups. In the untrained rats, the RBC aggregation index decreased to 2.60 +/- 0.4 immediately after exercise from a control value of 6.73 +/- 0.18 (P < 0.01), whereas it increased to 13.13 +/- 0.66 after 24 h (P < 0.01). RBC transit time through 5-microm pores increased to 3.53 +/- 0.16 ms within 5 min after the exercise from a control value of 2.19 +/- 0. 07 ms (P < 0.005). A very significant enhancement (166%) in RBC lipid peroxidation was detected only after 24 h. In the trained group, the alterations in all these parameters were attenuated; there was a slight, transient impairment in RBC deformability (transit time = 2.64 +/- 0.13 ms), and lipid peroxidation was found to be unchanged. These findings suggest that training can significantly limit the hemorheological alterations related to a given bout of exercise. Whether this effect is secondary to the training-induced reduction in the degree of metabolic and/or hormonal perturbation remains to be determined.

Animals↗

Aggregation behavior and electrophoretic mobility of red blood cells in various mammalian species.

Differences of red blood cell (RBC) aggregation among various mammalian species has been previously reported for whole blood, for RBC in autologous plasma, and for washed RBC re-suspended in polymer solutions. The latter observation implies the role of cellular factors, yet comparative studies of such factors are relatively limited. The present study thus investigated RBC aggregation and RBC electrophoretic mobility (EPM) for guinea pigs, rabbits, rats, humans and horses; RBC were re-suspended in isotonic 500 kDa dextran solutions for the EPM and aggregation measurements, with aggregation studies also done in autologous plasma. Salient results included: (1) species-specific RBC aggregation in both plasma and dextran (horse > human > rat > rabbit approximately = guinea pig) with a significant correlation between aggregation in the two media; (2) similar EPM values in PBS for rat, human and horse, a lower value for guinea pig, and a markedly reduced EPM for rabbit RBC; (3) EPM values in dextran with a rank order identical to that for cells in PBS; (4) relative EPM results indicating formation of a polymer-poor, low viscosity depletion layer at the RBC surface (greatest depletion for horse RBC). EPM-aggregation correlations were evident and generally consistent with the Depletion Model for aggregation, yet did not fully explain differences between species; additional studies at various ionic strengths and with various dextran fractions thus seem warranted.

Animals↗

The role of spleen in suppressing the rheological alterations in circulating blood.

The role of spleen in maintaining the normal rheological properties of red blood cells (RBC) has been investigated by comparing the time course of RBC deformability assessed by the cell transit analyzer (CTA), after the induction of RBC mechanical alterations, in splenectomized and normal guinea pigs. After the exchange transfusions with glutaraldehyde treated (hardened) RBC, most of these cells were removed from the circulation in the splenectomized animals as well as the animals with intact spleens. However, the CTA could detect the longer existence of a small population of hardened RBC in circulation in the splenectomized animals. Measurement of RBC transit times after the onset of experimental sepsis (cecal ligature-puncture) revealed that, in the splenectomized guinea pigs RBC deformability impairment started earlier, in comparison with the animals with intact spleens. These results suggest that the spleen plays an important role in maintaining the normal rheological properties of the circulating blood, especially in the presence of pathophysiological processes affecting RBC mechanics.

Animals↗

Susceptibility of equine erythrocytes to oxidant-induced rheologic alterations.

OBJECTIVE: To evaluate the rheologic responses of equine versus human RBC to oxidant stress induced by superoxide anions. SAMPLE POPULATION: Equine blood samples were obtained from 8 healthy, 3- to 6-year-old various breed horses of either sex; human blood samples were obtained from 8 healthy adults. PROCEDURE: Washed RBC were exposed to superoxide anions generated by the xanthine oxidase (XO)-hypoxanthine system (XO activity of 0 to 0.1 U/ml). Deformability of RBC was assessed by ektacytometry, and RBC aggregation was measured in autologous plasma or 3% solution of dextran 70 via a defined-shear photometric technique. RESULTS: Equine RBC had XO dose-dependent increases in methemoglobin concentration that were greater by 60 to 110% than in human RBC and an enhanced tendency for echinocyte formation (ie, 40% echinocyte formation at highest activity of XO). Oxidant stress reduced deformability (ie, increased rigidity) for equine and human RBC with the effect more prominent for equine RBC. Equine RBC aggregation had a biphasic response with a significant increase in plasma and dextran 70 at low XO activities and inhibition at high activities; echinocytes were incorporated into equine, but not human, RBC aggregates. CONCLUSIONS AND CLINICAL RELEVANCE: Compared with human RBC, equine RBC are more sensitive to oxidant damage as judged by the extent of methemoglobin formation, alteration of aggregation, and reduction of cellular deformability. The high susceptibility of equine RBC to oxidant damage, and the resulting hemorheologic alterations, may have important consequences for tissue perfusion and cardiovascular adequacy in horses; they may be of particular relevance in physiologic or pathophysiologic changes associated with increased oxidant stress.

Animals↗

Effect of superoxide anions on red blood cell rheologic properties.

The human red blood cell (RBC) is known to be susceptible to oxidant damage, with both structural and functional properties altered consequent to oxidant attack. Such oxidant-related alterations may lead to changes of RBC rheologic behavior (i.e., deformability, aggregability). Two different models of oxidant stress were used in this study to generate superoxide anions either internal or external to the RBC. Our results indicate that generation of superoxide within the RBC by phenazine methosulfate decreases RBC deformability without effects on cell aggregation. Conversely, superoxide generated externally by the xanthine oxidase-hypoxanthine system primarily affects RBC aggregability: the shear rate necessary to disaggregate RBC was markedly increased while the extent of aggregation decreased slightly. Increased disaggregation shear rate (i.e., greater aggregate strength) as a result of superoxide radical damage may adversely affect the dynamics of blood flow in low-shear portions of the circulation, and may also play a role in the no-reflow phenomena encountered after ischemia-reperfusion.

Erythrocyte Aggregation↗

Activated polymorphonuclear leukocytes affect red blood cell aggregability.

Activated leukocytes can affect adjacent cells by generating oxygen free radicals and secreting proteolytic enzymes, and red blood cells (RBC) exposed to such agents should be susceptible to their effects. This study was thus designed to investigate the effects of activated polymorphonuclear leukocytes (PMN) on RBC aggregability (i.e., on intrinsic RBC aggregation characteristics). PMN were isolated from human blood by density separation and suspended in glucose-enriched buffer with RBC isolated from the same blood sample (RBC/PMN ratio of 150:1). PMN were then activated in this suspension by adding 1 ng/mL tumor necrosis factor alpha (TNF-alpha) and 10(-7) M N-formyl-methionyl-leucyl-phenylalanine (fMLP) or fMLP alone. After incubation for 2 h at 37 degrees C, RBC aggregation behavior in autologous plasma was assessed; RBC deformability and partition coefficients were also measured. RBC aggregation was significantly increased after incubation and deformability and partitioning were decreased; these effects were prevented by phenylmethylsulfonyl fluoride (1 mM) or superoxide dismutase (20 microg/mL) plus catalase (40 microg/mL). TNF-alpha and fMLP alone had no effect on RBC aggregation if PMN were not present. Activated PMN can thus markedly affect RBC aggregability, apparently via both proteolytic enzymes and oxygen free radicals; enhanced aggregation seen in clinical states associated with PMN activation or observed during in vivo RBC aging may also involve such PMN-RBC interactions.

Adult↗

Deformability and oxidant stress in red blood cells under the influence of halothane and isoflurane anesthesia.

1. The effects of halothane and isoflurane anesthesia on red blood cell (RBC) deformability, lipid peroxidation and antioxidant enzymes were tested in rabbits. 2. RBC transit time was significantly increased to 2.12 +/- 0.07 msec after 1-hr halothane anesthesia preceded by 6 mg/kg pentobarbital injections from 1.98 +/- 0.07 msec preanesthesia value (p < 0.05). Thiobarbituric acid-reactive substances also were increased significantly, being 23.35 +/- 2.75 nmol/gHb and 33.11 +/- 5.34 nmol/gHb before and after anesthesia, respectively (p < 0.05). 3. Under halothane anesthesia without prior pentobarbital injection or under isoflurane anesthesia with or without pentobarbital injection, no significant alterations were observed in these parameters. 4. RBC superoxide dismutase activity was decreased in the group anesthetized with the pentobarbital-halothane combination. The impaired RBC deformability and increased oxidant damage might be related to the free radical formation during the metabolism of halothane. Pentobarbital can potentiate this effect either by inducing cytochrome P-450 or by altering antioxidant defense. 5. Alterations in RBC mechanical properties may contribute to the tissue perfusion problems that develop after surgery under general anesthesia.

Adjuvants, Anesthesia↗

Red blood cell deformability in sepsis.

The microcirculatory disturbances in sepsis have prompted micropore bulk-filtration studies of red blood cell (RBC) mechanical behavior (i.e., deformability). However, these prior reports may not solely reflect RBC behavior because of possible white blood cell (WBC) occlusion of the filter pores. The present study was designed to examine RBC mechanical alterations in human and experimental sepsis using techniques that are not affected by WBC artifacts. RBC were obtained from adult patients with sepsis and from healthy control donors. RBC were also obtained from Swiss-albino rats in which experimental sepsis was induced via cecal ligation-puncture. Red cell mechanical behavior was tested using a computerized micropore filtration system (CTA) and a laser-diffraction shearing device (LORCA); the latter provides the extent of RBC deformation at various stresses and the time constant for RBC shape recovery. Salient findings include: (1) for human RBC, significantly decreased deformability at fluid shear stresses < 5 Pa (LORCA) yet no differences from control with the CTA; (2) for rat RBC in experimental sepsis, significant decreases of deformability and shape-recovery time constant (LORCA) but no differences with the CTA. We conclude that RBC deformability is reduced in sepsis but that micropore bulk-filtration methods may not be appropriate for detecting these changes.

Adult↗

Measurement of red blood cell aggregation in a "plate-plate" shearing system by analysis of light transmission.

The analysis of light reflection from or transmission through a blood sample under defined shearing conditions is widely used to assess red blood cell (RBC) aggregation. Different shearing geometries have been used to generate a constant shear rate within the blood sample, including "cone on plate" and Couette systems. In this study, a rotating glass plate, together with a parallel stationary plate, was used to generate a given shear rate at the point of light transmission measurement. The system gave reproducible results and proved to be sensitive to alterations in RBC aggregation. A comparison between different RBC aggregation parameters that can be calculated using the same light transmission curves (syllectograms) was also made. The index calculated by integrating the area under the syllectogram (M index) was found to be the most appropriate aggregation parameter to be used for comparisons between two groups of blood samples with different aggregation characteristics.

Adult↗