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Rapid flow of passive neutrophils into a 4 microns pipet and measurement of cytoplasmic viscosity.

Neutrophils from five different individuals are isolated with a density separation technique. A total of 151 unactivated (passive) cells are rapidly aspirated at constant suction pressure and at room temperature into a pipet with a diameter of 4 microns. The suction pressures in excess of an initial yield threshold are 0.5, 1 and 2 kPa and are comparable to those encountered in the microcirculation. These pressures are well in excess of the small suction pressure of approximately 20 Pa that is required to form a static hemispherical bump on the cell. At a given aspiration pressure, the leading edge of an individual cell is "tracked" as it flows into the pipet. A theory based on the flow of a Newtonian liquid from either a hemisphere or a spherical segment into a cylinder is used to model the entry process. Both theory and experiment show that during most of the entry process the leading edge of the cell moves at a nearly constant velocity with a rapid acceleration at the end. For cells from five different individuals at the three different excess aspiration pressures, Newtonian theory gives a cytoplasmic viscosity of 135 +/- 54 Pa.s and overall entry times of 3.3s (0.5 kPa), 1.6s (1 kPa) and 0.82s (2 kPa). These results and those of Evans and Yeung at lower aspiration pressures indicate that the complex cytoplasm inside unactivated neutrophils behaves as a nearly Newtonian fluid with a viscosity on the order of 10(2) Pa.s over almost a two order of magnitude range in aspiration pressure and, thus, rate of deformation.

Cytoplasm↗

Quantifying elasticity and viscosity from measurement of shear wave speed dispersion.

The propagation speed of shear waves is related to frequency and the complex stiffness (shear elasticity and viscosity) of the medium. A method is presented to solve for shear elasticity and viscosity of a homogeneous medium by measuring shear wave speed dispersion. Harmonic radiation force, introduced by modulating the energy density of incident ultrasound, is used to generate cylindrical shear waves of various frequencies in a homogeneous medium. The speed of shear waves is measured from phase shift detected over the distance propagated. Measurements of shear wave speed at multiple frequencies are fit with the theoretical model to solve for the complex stiffness of the medium. Experiments in gelatin phantoms show promising results validated by an independent method. Practical considerations and challenges in possible medical applications are discussed.

Adipose Tissue↗

Shear dependence of effective cell volume as a determinant of blood viscosity.

The viscosity of suspensions of human erythrocytes (normal cells in plasma, normal cells in Ringer's solution containing albumin, and hardened cells in Ringer's solution containing albumin) was measured over a wide range of shear rates, and the macrorheological data were correlated with the microrheological behavior of erythrocytes and rigid particles. The formation of rouleaux increases the effective volume of erythrocytes as a result of (i) the increase in axial ratio and (ii) the limitation of deformation of individual erythrocytes. The effective cell volume is the fundamental determinant of blood viscosity.

Blood Viscosity↗

Viscosity of cellular protoplasm.

The protoplasmic viscosity was studied by using a small spin label having high permeability and broad solubility properties and nickel chloride as an extracellular spin-subtracting agent to localize signal inside cells. The viscosity is variable and in some cells is many times that of water or phospholipids, suggesting that lateral diffusion in biological membranes is important to cell function.

Chlamydomonas↗

Reduction in viscosity of cystic fibrosis sputum in vitro by gelsolin.

Obstruction of airways by viscous sputum causes lung damage in patients with cystic fibrosis (CF). Sputum samples from CF patients were shown to contain filamentous actin. Human plasma gelsolin, a protein that severs actin filaments, rapidly decreased the viscosity of CF sputum samples in vitro. Gc globulin and deoxyribonuclease I, proteins that sequester monomeric actin but do not sever actin filaments, were less efficient than gelsolin in diminishing sputum viscosity. These results suggest that gelsolin may have therapeutic potential as a mucolytic agent in CF patients.

Actins↗

Action of microorganisms on bituminous materials. I. Effect of bacteria on asphalt viscosity.

Visual effects of Mycobacterium ranae on a 135-penetration asphalt (asphalt 1A) are described, which show the texture and rheological characteristics of the asphalt to be modified by microbial action. A bentonite-asphalt emulsion system for asphalts 1A, 3A, and 6A was used to subject these materials to the degradative activity of M. ranae and Nocardia coeliaca for 4 months at 30 C. N. coeliaca caused 1.5-, 3.9-, and 6.8-fold increases in relative viscosity of asphalts 1A, 3A, and 6A, respectively. A similar susceptibility pattern for M. ranae was obtained on the same asphalts, but apparently this organism exerted even a greater effect on asphalt 6A since the viscosity of this residue was too hard to be determined satisfactorily. Comparison of these data with analyses of the three asphalts indicates that the organisms probably attack the resin components of the asphalts.

Hydrocarbons↗

Cerebral blood flow and blood viscosity in patients with polycythaemia secondary to hypoxic lung disease.

Blood viscosity, cerebral blood flow (CBF) and cerebral oxygen carriage (CBF X arterial oxygen content) were measured in 12 patients with polycythaemia secondary to hypoxic lung disease. CBF and cerebral oxygen carriage were both significantly higher than in a comparative group of 20 patients with raised packed cell volumes and normal lung function. The patients with secondary polycythaemia then underwent venesection and their mean packed cell volume fell from 0.613 to 0.495. This led to a consistent reduction in blood viscosity, which fell by 44% at a low shear rate (0.67/s) and 33% at a high shear rate (0.91/s). CBF rose by 21% (p less than 0.01), but cerebral oxygen carriage did not significantly increase in the group as a whole. Four of the patients with secondary polycythaemia had complained of episodes of confusion before venesection, which improved considerably once the packed cell volume had been lowered. Headache was relieved in a further two patients and none of the subjects was adversely affected by venesection. It was not possible, however, to show a correlation between symptomatic improvement and an increase in cerebral oxygen carriage.

Aged↗

Viscosity of gastric mucus in duodenal ulceration.

A preliminary study of the rheological behaviour of visible gastric mucus in patients with duodenal ulcer and in controls indicates that duodenal ulceration is associated with an increase in the viscosity of visible gastric mucus. The methods of measuring the viscosity of gastric mucin are described and the limitations of simple capillary viscometry are discussed. Several theories are advanced which may account for the findings described in this investigation.

Duodenal Ulcer↗

Blood viscosity in multiple sclerosis.

Native blood from healthy subjects and from some pathological cases showed a fall in viscosity after the first passage through a stainless steel capillary viscometer in 97% of tests. Fortyfive blood samples from 27 active multiple sclerosis patients were tested. Blood from 19 of these patients showed no fall in viscosity.

Blood Viscosity↗

The effect of propranolol on blood viscosity changes induced by experimental coronary occlusion.

The effect of propranolol treatment was investigated in the myocardial ischemia-induced hyperviscosity state in anesthetized dogs. In untreated control dogs, low shear blood viscosity rose progressively, following an acute occlusion of the left anterior descending coronary artery; this effect was partially but significantly reduced by intravenously administered propranolol (0.2 mg/kg). The effect of the in vitro addition of propranolol was also determined upon viscosity of blood samples obtained at hourly intervals from dogs subjected to similar coronary ligation. The in vitro addition of propranolol did not produce a similar reversal of the hyperviscosity state observed in the blood obtained from dogs after coronary ligation.

Animals↗

Roles of cell geometry and cellular viscosity in red cell passage through narrow pores.

The relative roles of two fundamental determinants of red cell deformability, namely cell size and cellular viscosity, in affecting red cell passage through narrow channels have been assessed by determining the filterability of red cells subjected to osmotic variations. Suspensions of red cells (10(6) cells/microliter) in eight different osmolalities ranging from 172 +/- 3 (mean +/- SD) to 665 +/- 28 mosmol/kg H2O were filtered through polycarbonate sieves with three different pore diameters (2.6 +/- 0.2, 4.5 +/- 0.6, and 6.9 +/- 0.8 micron). The mean corpuscular volume varied inversely with osmolality and ranged from 149 +/- 9 to 67 +/- 10 fl; the mean corpuscular hemoglobin concentration varied directly with osmolality and ranged from 23.7 +/- 0.8 to 55.9 +/- 3.9 g/dl. The filtration data were analyzed with a theoretical model to derive the parameter beta, which is the ratio of resistance in a pore bearing a red blood cell to that in a pore filled with the suspending medium alone. For each pore size, beta showed a V-shaped relationship with osmolality; the optimum osmolality for minimum beta varied inversely with the pore size. For the small 2.6-micron pores, the minimum beta was attained following hyperosmotic shrinkage of the red cells at 400 mosmol/kg H2O, whereas passage through the large 6.9-micron pores was facilitated by hypoosmotic swelling of the red cells in about 200 mosmol/kg H2O. Red cell filtration through small pores is more sensitive to alterations in cell volume, whereas that through large pores is primarily determined by changes in cellular viscosity.(ABSTRACT TRUNCATED AT 250 WORDS)

Erythrocyte Deformability↗

Effects of viscosity and fluid outflow on postcibal gastric emptying of solids.

It is known that the food-filled stomach retains large spheres or pieces of food, allowing the passage of food particles or of plastic spheres with diameters mainly below 2 mm. We have recently shown that spheres having densities greater or less than water emptied from the food-filled canine stomach more slowly than spheres of the same diameter with a density of 1. Thus, hydrodynamics seem to govern gastric emptying of spheres. The present studies were undertaken to determine how altering other hydrodynamic factors, viscosity and velocity of fluid outflow, might affect gastric sieving. Ten mongrel dogs were prepared with chronic duodenal fistulas, which allowed collecting and measuring of emptied spheres and food. The dogs were fed a standard meal of 75 g of steak plus 25 g of 99mTc-labeled chicken liver. Immediately afterward, 50 3.2-mm Teflon spheres were instilled into the stomachs along with 200- or 800-ml volumes of saline or saline plus guar (a viscous polysaccharide). Whether 200- or 800-ml volumes were instilled, the guar significantly sped the emptying of the spheres. Fluid outflow was twice as fast after the 800-ml instillates, but the faster outflow with the 800 ml of saline did not speed emptying of spheres. With the guar instillates, the faster outflow slightly sped the emptying of the spheres and significantly increased the diameter of emptied particles of 99mTc-labeled chicken liver. We conclude that meal viscosity significantly affects gastric sieving.

Animals↗

Transient rheological behavior of blood in low-shear tube flow: velocity profiles and effective viscosity.

Velocity profiles of human blood flowing through vertical and horizontal glass tubes (25-100 microns ID) were measured as a function of time following a sudden reduction of wall shear stress (tau w) from a high value to values ranging from 2 to 100 mPa. Cell velocities at various radial positions were determined off-line from video recordings by digital image analysis. In vertical tubes, symmetric velocity profiles were obtained that developed increasing bluntness with time, particularly at lower tau w and in smaller tubes. In horizontal tubes, velocity profiles developed strong asymmetry as a function of time. Red blood cell (RBC) sedimentation was associated with uniform low flow velocities in the concentrating cell sediment, whereas faster flow and almost parabolic profiles were observed in the supernatant plasma region. Calculations of effective blood viscosity showed a decrease with time at low tau w in vertical tubes but an increase in horizontal tubes. The differences between profile shape and effective viscosity in vertical and horizontal tubes disappeared at tau w > 50 mPa. These findings are related to the cross-sectional distribution of RBC, which depends on RBC aggregation and sedimentation.

Blood Flow Velocity↗

Perfusate viscosity and hematocrit determine pulmonary vascular responsiveness to NO synthase inhibitors.

The pulmonary vascular responses to changes in perfusate viscosity were studied in isolated rat lungs treated with the nitric oxide synthase (NOS) inhibitors, N omega-nitro-L-arginine methyl ester (L-NAME) and N omega- monomethyl-L-arginine (L-NMMA). Lungs were isolated according to standard protocols and perfused with varying concentrations of albumin in physiological salt solution (PSS) and with low, intermediate, and normal hematocrits using washed erythrocytes. Pressure-flow curves were generated by increasing pulmonary arterial pressure (PPA) while keeping pulmonary venous pressure (PPV) constant and measuring flow at each pressure interval. Neither perfusate flow nor pulmonary vascular resistance changed after L-NAME or L-NMMA (300 microM) at any pressure interval in lungs perfused with 4 and 10% albumin/PSS. In lungs perfused with 20% albumin/PSS, L-NMMA decreased flow at all PPA tested except 10 cm H2O (P < 0.05). L-NAME decreased flow in lungs perfused with normal (39.2 +/- 2.1%) hematocrits at all PPA tested. Conversely, L-NAME decreased flow in lungs perfused with low and intermediate hematocrits only at the highest pressure intervals. L-Arginine, when given after NOS inhibitors, failed to restore flow to baseline values in any group of lungs. N omega-nitro-D-arginine methyl ester (300 microM) did not change flow at any pressure interval in lungs perfused with normal (43 +/- 1.5%) hematocrit, washed erythrocytes. We conclude that lungs perfused with intermediate and normal hematocrit, washed erythrocytes, as well as with high-viscosity albumin/PSS solutions, show increased pulmonary vascular responses to NOS inhibitors.

Animals↗

Oxygen delivery at high blood viscosity and decreased arterial oxygen content to brains of conscious rats.

We addressed the question to which extent cerebral blood flow (CBF) is maintained when, in addition to a high blood viscosity (Bvis) arterial oxygen content (CaO2) is gradually decreased. CaO2) was decreased by hemodilution to hematocrits (Hct) of 30, 22, 19, and 15% in two groups. One group received blood replacement (BR) only and served as the control. The second group received an additional high viscosity solution of polyvinylpyrrolidone (BR/PVP). Bvis was reduced in the BR group and was doubled in the BR/PVP. Despite different Bvis, CBF did not differ between BR and BR/PVP rats at Hct values of 30 and 22%, indicating a complete vascular compensation of the increased Bvis at decreased CaO2. At an Hct of 19%, local cerebral blood flow (LCBF) in some brain structures was lower in BR/PVP rats than in BR rats. At the lowest Hct of 15%, LCBF of 15 brain structures and mean CBF were reduced in BR/PVP. The resulting decrease in cerebral oxygen delivery in the BR/PVP group indicates a global loss of vascular compensation. We concluded that vasodilating mechanisms compensated for Bvis increases thereby maintaining constant cerebral oxygen delivery. Compensatory mechanisms were exhausted at a Hct of 19% and lower as indicated by the reduction of CBF and cerebral oxygen delivery.

Animals↗

Effects of surface tension and viscosity on airway reopening.

We studied airway opening in a benchtop model intended to mimic bronchial walls held in apposition by airway lining fluid. We measured the relationship between the airway opening velocity (U) and the applied airway opening pressure in thin-walled polyethylene tubes of different radii (R) using lining fluids of different surface tensions (gamma) and viscosities (mu). Axial wall tension (T) was applied to modify the apparent wall compliance characteristics, and the lining film thickness (H) was varied. Increasing mu or gamma or decreasing R or T led to an increase in the airway opening pressures. The effect of H depended on T: when T was small, opening pressures increased slightly as H was decreased; when T was large, opening pressure was independent of H. Using dimensional analysis, we found that the relative importance of viscous and surface tension forces depends on the capillary number (Ca = microU/gamma). When Ca is small, the opening pressure is approximately 8 gamma/R and acts as an apparent "yield pressure" that must be exceeded before airway opening can begin. When Ca is large (Ca greater than 0.5), viscous forces add appreciably to the overall opening pressures. Based on these results, predictions of airway opening times suggest that airway closure can persist through a considerable portion of inspiration when lining fluid viscosity or surface tension are elevated.

Airway Obstruction↗

Seminars in thrombosis, thrombolysis, and vascular biology. Part 5: Cellular rheology and plasma viscosity.

The fundamental determinants of coronary blood flow include the vessel radius, pressure gradient, and the physical characteristics of the cellular components and fluid medium. Specifically, cellular rheology and plasma viscosity determine, to a significant degree, both macro- and microcirculatory blood flow, particularly when either is compromised by existing atherosclerotic narrowing or reperfusion injury. Among individuals with coronary heart disease, abnormalities in cellular rheology and plasma viscosity may be the best predictors of subsequent cardiac events. Therefore, efforts to limit morbidity and mortality may depend on a more in-depth understanding of these basic areas.

Blood Flow Velocity↗

Are platelet cytosolic free calcium, serotonin concentration and blood viscosity different between hypertensive and normotensive subjects?

In this study, the platelet intracellular calcium and serotonin (5-HT) concentrations as well as the hemorheological properties were compared in 65 hypertensive (HT) and 25 age-matched normotensive (NT) subjects. The result showed that the platelet intracellular calcium concentration in the HT group was significantly higher than in the NT group (165.4 +/- 12.6 vs. 118.9 +/- 12.4 nM, p < 0.05). However, the platelet 5-HT content in the HT group was significantly lower than in the NT group (0.28 +2- 0.03 vs. 0.38 +/- 0.03 nmol/10(8) platelets, p < 0.05). Moreover, red cell flexibility, red cell deformability, hematocrit, fibrinogen concentration and plasma viscosity were all significantly increased in HT subjects. The whole blood viscosity was generally higher in the HT group. In conclusion, the higher platelet intracellular calcium and lower 5-HT level as well as abnormality of hemorheological properties may be important factors in the initiation and perpetuation of hypertension.

Aged↗