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Transgenic mice overexpressing erythropoietin adapt to excessive erythrocytosis by regulating blood viscosity.

Severe elevation of red blood cell number is often associated with hypertension and thromboembolism resulting in severe cardiovascular complications. However, some individuals such as high altitude dwellers cope well with an increased hematocrit level. We analyzed adaptive mechanisms to excessive erythrocytosis in our transgenic (tg) mice that, due to hypoxia-independent erythropoietin (Epo) overexpression, reached hematocrit values of 0.8 to 0.9 without alteration of blood pressure, heart rate, or cardiac output. Extramedullar erythropoiesis occurred in the tg spleen, leading to splenomegaly. Upon splenectomy, hematocrit values in tg mice decreased from 0.89 to 0.62. Tg mice showed doubled reticulocyte counts and an increased mean corpuscular volume. In tg mice, plasma volume was not elevated whereas blood volume was up to 25% of the body weight compared with 8% in wild-type (wt) siblings. Although plasma viscosity did not differ between tg and wt mice, tg whole-blood viscosity increased to a lower degree (4-fold) than expected from corresponding hemoconcentrated wt blood (8-fold). This moderate increase in viscosity is explicable by the up to 3-fold higher elongation of tg erythrocytes at physiologic shear rates. Apart from the nitric oxide-mediated vasodilation we reported earlier, adaptation to high hematocrit levels in tg mice involves regulated elevation of blood viscosity by increasing erythrocyte flexibility.

Adaptation, Physiological↗

Measurement of blood viscosity using a pressure-scanning capillary viscometer.

A newly designed pressure-scanning capillary viscometer is extended to measure the viscosity of whole blood over a range of shear rates without the use of anticoagulants in a clinical setting. In the present study, a single measurement of pressure variation with time replaces the flow rate and pressure drop measurements that are usually required for the operation of a capillary tube viscometer. Using a pressure transducer and capillary, we measured the variation of pressure flowing through capillary tube with respect to time, p(t), from which viscosity and the shear rate were mathematically calculated. For water and anticoagulant-added bloods, there was an excellent agreement found between the results from the pressure scanning capillary viscometer and those from a commercially available rotating viscometer. Also, the pressure-scanning capillary viscometer measured the viscosity of whole blood without heparin or EDTA. This new method overcomes the drawbacks of conventional viscometers in the measurement of whole blood viscosity. First, the pressure-scanning capillary viscometer can accurately and consistently measure the whole blood viscosity over a range of shear rates in less than 2 min without any anticoagulants. Second, this design provides simplicity (i.e., ease of operation, no moving parts, and disposable) and low cost.

Blood Viscosity↗

Blood viscosity and platelet function in thrombolytic therapy of acute myocardial infarction.

The mechanisms by which thrombolytic drugs accomplish their impressive clinical effects in the treatment of acute myocardial infarction are as yet incompletely appreciated. Factors other than lysis of thrombi and restoration of blood flow most likely play a role, and blood viscosity and platelet function probably are important factors. Blood viscosity is inversely related to oxygen supply to myocardial tissue and therefore a decrease in viscosity might contribute to preservation of myocardial function. Since fibrinogen is a major determinant of blood viscosity and this protein is largely degraded by some thrombolytic drugs, it is conceivable that a systemic fibrinogenolytic state is of additional benefit for the patient. Fibrinogen and other plasma proteins which change during thrombolytic therapy are also essential for adequate platelet function. Besides, thrombolytic drugs can directly affect platelet activity. Although the exact effects are still unknown, it is certain that changes in platelet function induced by thrombolytic drugs are important for the clinical efficacy and probably for the side-effects of thrombolytic therapy.

Anistreplase↗

Blood viscosity and sensorineural hearing loss.

Two groups of 33 subjects each, one experimental and one control, matched one-to-one for age and occupation, were chosen from a large number of subjects who were covered by special insurance for annual medical control at our hospital. The periodical checkups included cardiovascular, nervous, and renal systems, as well as vision and hearing. In addition routine blood tests, including whole blood viscosity, were also performed. The experimental group consisted of subjects in whom a bilateral, slight, and unexplained sensorineural loss of hearing was detected in the routine audiological testing, without any known reason. In the control group, the routine hearing tests demonstrated normal hearing. The differences between the two groups were statistically significant in pure-tone threshold level and in speech discrimination score, when the test was performed at a -5dB signal-to-noise ratio. The results of the vestibular tests were normal in both groups. Hematocrit and whole blood viscosity were slightly but significantly higher in the experimental group if compared with the control group. The number of subjects with abnormal whole blood viscosity results was higher in the experimental group. The whole blood viscosity as the etiological factor responsible for the hearing deterioration is described.

Adult↗

The role of pentoxifylline in endotoxin-induced alterations of red cell deformability and whole blood viscosity in the neonate.

Endotoxin induces alterations in the neonatal red cell membrane that result in decreased deformability and an increase in whole blood viscosity. These rheologic alterations are detrimental to flow in the microcirculation. Pentoxifylline (PTX), a methyl xanthine derivation, increases red cell deformability presumably through its effect on intracellular adenosine 5-triphosphate. The purpose of this study was to evaluate the effect of PTX on endotoxin-induced alterations in the neonatal red blood cell. Anticoagulated whole blood specimens obtained from the cord of 12 neonates at birth were used to study the effects of Escherichia coli endotoxin (LPS) with and without PTX (50 micrograms/mL) on red cell deformability and whole blood viscosity. LPS resulted in a significant (P less than .001) decrease in deformability compared with controls. PTX reversed these endotoxin-induced alterations (P less than .01), normalizing deformability to control values (P = NS). LPS resulted in a significant increase (P less than .005) in blood viscosity that was reversed by PTX (P = NS). Pentoxifylline reverses the detrimental rheologic effect of endotoxin in the neonate. This activity may be helpful in sustaining normal microcirculation in neonatal sepsis.

Blood Viscosity↗

Measurement of blood viscosity using mass-detecting sensor.

A newly designed mass-detecting capillary viscometer is extended to measure the viscosity of whole blood over a range of shear rates without the use of anticoagulants in a clinical setting. In the present study as proof of principle, a single measurement of liquid-mass variation with time replaces the flow rate and pressure drop measurements that are usually required for the operation of a capillary tube viscometer. Using a load cell and capillary, we measured the change of mass flowing through capillary tube with respect to the time, m(t), from which viscosity and shear rate were mathematically calculated. For water and adulterated bloods, excellent agreement was found between the results from the mass-detecting capillary viscometer and those from a commercially available rotating viscometer. Also, the mass-detecting capillary viscometer measured the viscosity of unadulterated whole blood without heparin or EDTA. This new method overcomes the drawbacks of conventional viscometers in the measurement of the whole blood viscosity. First, the mass-detecting capillary viscometer can accurately and consistently measure the unadulterated blood viscosity over a range of shear rates in less than 2 min without any anticoagulants. Second, this design provides simplicity (i.e. ease of operation, no moving parts, and disposable) and low cost.

Anticoagulants↗

Reticulocytosis, increased mean red cell volume, and greater blood viscosity in altitude susceptible compared to altitude resistant rats.

We have identified two strains (H and M) of Sprague-Dawley rat with markedly different susceptibilities and cardiopulmonary responses to chronic hypobaria. To further characterize factors responsible for these differing cardiopulmonary responses to chronic hypobaria, the present study examined differences in hematologic responses between the strains and assessed the contribution of differences in blood viscosity to differences in pulmonary vascular resistance. Following a 4-5 week exposure to simulated high altitude (0.5 atm), hemoglobin, hematocrit, mean red cell volume, and reticulocyte count were all increased in the susceptible H compared to the resistant M rats, whereas red blood cell counts were similar. Sea level controls manifested no differences. Blood viscosity, measured in a capillary viscometer, was 53% greater in chronically hypoxic H than in M rats, and plasma viscosities were similar. Blood from high altitude H rats increased pulmonary vascular resistance more than blood from high altitude M rats when perfused into lungs isolated from high altitude rats of either strain. In conclusion, high altitude H rats have an increased population of immature red cells, leading to a greater mean red cell volume and hematocrit than in high altitude M rats. These hematologic differences contribute to the the increased blood viscosity and greater pulmonary vascular resistance of H compared to M rats after 4 weeks' high altitude exposure.

Altitude↗

Blood viscosity in man following decompression: correlations wiht hematocrit and venous gas emboli.

Whole blood viscosities were measured in U.S. Navy personnel before and after chamber compressions to 5 ATA (132FSW) and 7.4 ATA (210 FSW) by a new method described here. Bubble scores as a quantitative measure of venous gas emboli were determined during decompression and for 30 min thereafter. Hematocrit was measured both before and after each dive. There were five cases of decompression sickness in the two groups. No significant changes in whole blood viscosity, or hematocrit, were noted either in the group that was affected by decompression sickness or in all of the subjects taken as a group. No correlations between total bubble score and changes in viscosity or hematocrit could be made. These results imply that no major changes in viscosity occur in the usual forms of decompression sickness encountered in human beings.

Blood Viscosity↗

Safety from thromboembolism using intravenous immunoglobulin therapy in Kawasaki disease: Study of whole-blood viscosity.

BACKGROUND: High-dose intravenous infusions of immunoglobulin (IVIG) are well established as a standard therapy for Kawasaki disease (KD) for reducing the risk of coronary artery aneurysms. IVIG therapy might increase the blood viscosity both in vitro and in vivo, which has been reported as a risk factor for cardiovascular or cerebrovascular thromboembolism in adults. METHODS: We measured the whole-blood viscosity in vitro, serum IgG and albumin, and blood hematocrit in 10 patients with KD and 10 with non-KD (five with acute encephalitis, one with sepsis, one with idiopathic thrombocytopenic purpura, one with Guillain-Barré syndrome, one with insulin-dependent diabetes mellitus, and one with Evans syndrome) before and after IVIG therapy. RESULTS: The blood viscosity increased significantly after IVIG therapy in the patients with non-KD, but did not increase in those with KD. CONCLUSION: The results of the present study suggest that the use of IVIG therapy for KD might be relatively safe, with no risk of thromboembolism due to hyperviscosity.

Blood Viscosity↗

[Clinico-experimental studies on blood viscosity].

After their preponderated surgical treatment by 144 patients have been taken the blood-viscosity in dependence of some physiological and pathophysiological parameters after infusion of infucoll 6%. We have used for these compared examinations the rheo-viscometer after Höppler. So we succeeded in proving the relationship between increased blood-viscosity, maligne tumour sufferings, and illness of the respiratory system. The results of the infucoll preparation are - with regard to the coagulation, hindrance of thrombocyte aggregations, and viscosity reduction - to qualify as discreet, showing more regulating character.

Adolescent↗

Effects of glucose in drinking water on the changes in whole blood viscosity and plasma osmolality of broiler chickens during high temperature exposure.

This study was conducted to elucidate the influence of glucose in drinking water on whole blood viscosity and plasma osmolality of broilers during high temperature exposure. Two groups of birds, which had ad libitum access to either a 4% glucose-water solution (Group G) or tap water (Group W), were exposed simultaneously to 30 C from 0300 h for 12 h each day for 3 d. During the experimental period, Group G birds had greater metabolic energy intake and body weight gain than Group W. Hematocrit and whole blood viscosity decreased significantly at 30 C compared to controls at 20 C in Group W, whereas, in Group G, no changes were found for these two variables. Plasma osmolality also decreased at 30 C compared to 20 C in Group W, whereas no change was noted in this variable in Group G. However, at 20 C, plasma osmolality was significantly higher in Group W than in Group G, but no difference was observed between the two groups at 30 C. Plasma protein concentration decreased during exposure to 30 C in both groups, but the decrease tended to be greater in Group W than in Group G. These results suggest that glucose intake may alleviate the influence of heat stress on whole blood viscosity and plasma osmolality.

Animals↗

Increased blood viscosity in patients with Legg-Perthes disease: a preliminary report.

Based on studies by others, it appears that Legg-Perthes disease is an avascular necrosis of the femoral head due to occlusion of the blood supply. In an effort to delineate the pathogenesis of the disorder, we determined blood viscosity and percent platelet aggregation in 22 patients with Legg-Perthes disease and 21 control patients. Statistically significant higher blood viscosities were found in our patients with Legg-Perthes when compared with normals. No difference was found in the platelet aggregation studies. In accordance with Poiseuille's law, we propose that increased blood viscosity in patients with the affliction could lead to a diminution in blood flow to the capital femoral epiphysis, ultimately resulting in osteonecrosis and symptomatic manifestations of the disease.

Adolescent↗

In vitro effects of helium-neon laser irradiation on human blood: blood viscosity and deformability of erythrocytes.

OBJECTIVE: The purpose of this study was to investigate the in vitro effects of He-Ne laser irradiation on some rheological factors of human blood, such as blood viscosity, erythrocyte deformability, and sedimentation rate. BACKGROUND DATA: The intravascular irradiation of low power laser has been applied in pre-clinical and clinical to treat various pathological processes. However, the mechanism is not fully understood so far. Especially the interaction and related mechanism between the laser and blood are unclear. In this work, by measuring the change of the main rheological factors after laser irradiation, the interaction and mechanism were explored. METHODS: A30-mW He-Ne laser was used for irradiation with a 4-5-mm-diameter beam spot on blood samples, with a fluence rate of about 150 mW/cm.(2) The irradiation time was 60 min, so the total dose of irradiation was 540 J/cm.(2) The pathological samples of blood were obtained from patients (volunteers), and each sample was divided into two tubes for irradiation and control. The blood viscosity, erythrocyte deformability, and sedimentation rate were measured after laser irradiation and compared with un-irradiated control. The blood samples with poor erythrocyte deformability were prepared by adding Ca(2+) to the normal erythrocytes of a healthy person for investigating the laser effect on erythrocyte deformability further. RESULTS: Laser irradiation reduced the erythrocyte sedimentation rate of blood samples, which had a hyper-sedimentation rate originally. The blood viscosity of samples in hyper-values was lowered by laser irradiation in all shear rates measured (10-110 S(-1)), with a relative variation of approximately 10%. The deformability of erythrocytes from pathological samples and Ca(2+)-treated samples was improved after laser irradiation. CONCLUSIONS: The positive effects of laser irradiation on improving the rheological properties of blood were demonstrated in vitro.

Blood Sedimentation↗

Blood viscosity as a factor in sensorineural hearing impairment.

The cause of sensorineural hearing impairment is unknown in a high proportion of patients. Since ischaemia is a possible factor, the relation between hearing threshold and blood viscosity, plasma viscosity, and haematocrit was investigated in 49 patients with idiopathic hearing loss, taking into account age, sex, smoking, and socioeconomic group. Hearing thresholds were unrelated to haematocrit or low-shear blood viscosity. Hearing impairment at high frequencies was directly related to high-shear blood viscosity and inversely related to plasma viscosity. The derived measure of red-cell rigidity was significantly related at all frequencies to hearing thresholds. A second study of 92 subjects from a population sample confirmed the inverse relation with plasma viscosity and lack of relation with haematocrit. Increased pure-tone thresholds appear to be related to increased red-cell rigidity; this may be an important factor in sensorineural hearing impairment with implications for diagnosis and prevention.

Adult↗

No influence of C-peptide, insulin, and glucagon on blood viscosity in vitro in healthy humans and patients with diabetes mellitus.

The influence of the hormones most involved in glucose homeostasis, C-peptide, insulin and glucagon on blood viscosity was tested in vitro. Whole blood (adjusted to haematocrit 45%) from healthy volunteers (n=24) and patients with diabetes mellitus (n=17) was incubated with 10(-7)-10(-10) M C-peptide, insulin or glucagon. None of these peptide hormones, neither at physiological nor at supraphysiological levels, had an influence on high (94.5 s(-1)) or low (0.1 s(-1)) shear rate viscosity. The small group of diabetic patients had a higher plasma viscosity and increased blood viscosity at 94.5 s(-1), which is in agreement with earlier studies, but decreased viscosity at low shear rate. We conclude that C-peptide, insulin and glucagon have no direct effect on blood viscosity in vitro. It is, therefore, unlikely that microvascular disturbances seen with either deficiency or excess of these hormones is due to haemorheological factors.

Adult↗

Relation of blood viscosity to demographic and physiologic variables and to cardiovascular risk factors in apparently normal adults.

Although increased blood viscosity occurs in several cardiovascular diseases, little is known of factors influencing blood rheology in normal adults. Accordingly, we examined the relations of whole blood viscosity (WBV) to its rheologic determinants (hematocrit level, plasma viscosity, protein concentration, and red cell aggregability and rigidity), to demographic and laboratory variables, and to cardiovascular risk factors in 128 normotensive employed adults. Hematocrit levels accounted for 67-84% of variability of WBV at shear rates from 208 to 0.1 sec-1 with lesser contributions from plasma viscosity, red cell aggregability, and rigidity (multiple r = 0.95-0.97); WBV was predicted accurately from standard measurements of hematocrit and total plasma protein levels (multiple r = 0.78-0.92 in "learning" and "test" analysis). Male sex, obesity, dietary Na+ intake, and increasing age had additive effects on WBV (multiple r greater than or equal to 0.59, p less than 0.00001); the last three of these factors and black race independently predicted plasma viscosity (multiple r = 0.36, p less than 0.001). Among regulators of plasma volume, plasma renin activity and urinary Na+ excretion bore independent positive relations to WBV. Diastolic and mean blood pressures were independent predictors of WBV and hematocrit levels (all p less than 0.05). Conventional risk factors (e.g., triglycerides, obesity, and cholesterol levels) were positively related to WBV or plasma viscosity. Thus, in apparently normal adults, 1) WBV or plasma viscosity are increased by male sex, obesity, high sodium intake, aging, and black race, 2) WBV is positively related to plasma renin activity, 3) WBV or plasma viscosity are related to diastolic and mean blood pressures, triglycerides and cholesterol concentrations, and 4) WBV can be predicted from simple measurements of hematocrit and total plasma protein levels.

Adult↗

Correlation between retinal fluorescein angiography and blood viscosity and other factors in patients with primary open angle glaucoma.

OBJECTIVE: To investigate the correlation among retinal fluorescein angiography, blood viscosity, and other factors in patients with open angle glaucoma (POAG). METHODS: Multiple step regression analysis was made to investigate the correlation between each of the following blood vessel filling times: the arm-choroid (A-CT), arm-retinal artery (A-AT), and retinal artery-venous (A-VT) of the fundus fluorescein angiography (FFA) in 122 eyes with POAG and each of the following related factors in hemorrheology: whole blood apparent viscosity at low, medium and high shear rates, plasma viscosity and hematocrit. Also, the same analysis was applied to investigate the correlation between each of the A-AT, A-VT of the FFA in 70 eyes with POAG and the following factors: systolic blood pressure, diastolic blood pressure, age and whole blood apparent viscosity at low shear rate. RESULTS: The whole blood apparent viscosity at low shear rate was closely related to A-CT and A-AT, while hematocrit was closely related to A-VT of the FFA. The whole blood apparent viscosity at low shear rate and age, especially the whole blood apparent viscosity, was closely related to A-AT, A-VT of the FFA. CONCLUSION: Blood viscosity can affect the filling times of the FFA in POAG.

Blood Viscosity↗

Morning increase in whole blood viscosity: a consequence of a homeostatic nocturnal haemodynamic pattern.

In a series of studies, we have shown that in non-human primates there is a consistent overnight fall in cardiac output and central venous pressure, and a rise in total peripheral resistance. This haemodynamic pattern is associated with a higher haematocrit level in the morning suggesting that these changes in the circulation are homeostatic adjustments to a nighttime fall in plasma volume. The present study was designed to test the hypothesis that in the morning whole blood viscosity also is higher. Whole blood viscosity was measured at shear rates of 450, 225, 90, 45, and 22.5 s-1 in each of six monkeys, on four occasions, at 2-week intervals, at 17.00 and 09.00 h the next morning. The average haematocrit was 4.2% higher in the morning than in the previous evening (P < 0.01). Viscosity decreased monotonically at progressively higher shear rates but was always significantly higher in the morning than in the evening (P < 0.01 at all shear rates). When viscosity was adjusted by covarying for haematocrit level, the morning/evening differences became non-significant. However, the morning/evening differences in linear trend of shear stress as a function of shear rate persisted. These findings add further support to our hypothesis that the nocturnal haemodynamic pattern in non-human primates is related to a reduction in plasma volume, and they also suggest that the morning rise in haematocrit is a major contributing factor to the elevated viscosity.

Animals↗