Search PubMed⌕ Search

SEARCH · Search PubMed

Results for “VISCOSITY”

Search indexed PubMed citations on genomics, clinical trials, systematic reviews and public health. Explore titles, authors and supplied subject terms, then open the PubMed record.

Quote a phrase for an exact phrase match. Source license links do not imply unrestricted reuse.

At least 757 records · Page 42Linked to original sources

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↗

pH- and protein-dependent buffer capacity and viscosity of respiratory mucus. Their interrelationships and influence on health.

The macromolecular proteins (greater than 100,000 daltons) have proved mainly responsible for the protective power of mucus against penetration of the H+ ion into the surrounding tissues. This fraction is also mainly responsible for the buffer capacity and, owing to its content of glycoproteins, for the pH-dependent viscosity of mucus. Viscosity determinations, both on native sputum and on reconstituted human alpha-acid glycoprotein, indicate that either raising or reducing the pH from neutral results in an increase in viscosity. The results suggest that individuals with low pH and/or a low protein concentration (less than 6 mg ml-1) or low buffer capacity (less than 3 mumols H+/pH unit) in their mucus, i.e. a low protective power of their mucus, will risk effects released from the underlying tissues when exposed to acidic pollutants. Alternatively, persons with higher concentrations of mucus proteins will risk effects caused by increased mucus viscosity. Sputum was tested from six smokers without any symptoms other than the ability to clear their throats easily.

Buffers↗

Effects of mannitol on cerebral blood flow, blood pressure, blood viscosity, hematocrit, sodium, and potassium.

In our miniature swine model of brain retraction ischemia under conditions simulating the neurosurgical operating room, we studied the effects of bolus mannitol (2 g/kg) administration on cerebral blood flow, blood pressure, blood viscosity, hematocrit, sodium, and potassium serially for 4 hours following administration, at which time a second bolus was administered. Both viscosity and hematocrit were significantly decreased transiently following both the first and second boluses. Sodium was decreased for 30 minutes following the first bolus, 15 minutes following the second bolus, and increased at 150 minutes and later following the second bolus. There was a mild decrease in blood pressure and a mild increase in cerebral blood flow following mannitol, but little difference between the first hour following a bolus (when the viscosity and hematocrit were decreased) and hours 2-4 (when they were near baseline). Mannitol's effects on blood pressure and cerebral blood flow probably depend on factors in addition to its effects on blood viscosity and hematocrit. The results are discussed in light of previous findings that bolus mannitol administration may improve cerebral blood flow in ischemia, but does not appear to benefit the preservation of brain electrical activity.

Animals↗

Viscosity and flow properties of concentrated solutions of chitosan with different degrees of deacetylation.

The effects of the degree of deacetylation (DD) on the viscosity and flow behaviour of concentrated solutions of chitosan were investigated using 0.2 M CH3COOH and 0.2 M CH3COOH/0.1 M CH3COONa aqueous solutions as solvents. The results indicated that the viscosity and flow properties of the solutions differed with the DD of chitosan. The solution viscosities and the non-Newtonian flow properties as well as the flow activation energies E gamma increased with the increasing DD of chitosan. However, the additional salt decreased the viscosities and the non-Newtonian flow properties of the solutions of chitosan, but did not change the flow activation energies E gamma of the solutions.

Acetylation↗

The association reaction of yeast alcohol dehydrogenase with coenzyme is partly diffusion-controlled in solvents of increased viscosity.

The steady-state kinetics of the yeast and liver alcohol dehydrogenase catalyzed reduction of aldehydes were examined in solvent mixtures of increased viscosity. This was done to investigate the effects of diffusion control on the fast association of NADH with the enzymes. Both glycerol and sucrose were unsatisfactory as viscosogens, as they inhibited the enzyme, but poly(ethylene glycol)/water mixtures were satisfactory. The 5-fold faster reaction of yeast alcohol dehydrogenase with NADH is partly diffusion controlled, whereas the slower liver alcohol dehydrogenase reaction showed no diffusion effects. These results are consistent with a yeast alcohol dehydrogenase active site that has relatively little steric hindrance to NADH binding. It is estimated that contributions to this association reaction from diffusion control and chemical activation control are equal at a solvent viscosity of 10 cP. Thus, under physiological conditions of increased viscosity the NADH association may be significantly affected by diffusion effects. In order to estimate accurately the maximum diffusion-controlled rate constant from diffusion theory, the diffusion coefficients of NADH were measured in poly(ethylene glycol)/water mixtures and were found to vary inversely as the solvent viscosity raised to the power of 0.5. The non-Stokesian behaviour of molecules as large as NADH in polymer/water mixtures may be a serious limitation to the routine use of poly(ethylene glycol) as a viscosogen for diffusion studies.

Alcohol Dehydrogenase↗

Substrate specificity of solvent viscosity effects in carboxypeptidase A catalyzed peptide hydrolysis.

We have investigated the viscosity of carboxypeptidase A catalyzed Bz-Gly-Phe hydrolysis at pH 7.5 (Tris) and 0.5 mol.l-1 NaCl over the range 10-100 mp, varied by addition of glycerol or sucrose. In contrast to previous reports of strong viscosity effects on the corresponding Cbz-Ala-Ala-Ala hydrolysis, both the catalytic constant and the Michaelis constant are virtually independent of viscosity over the 10-fold range investigated. Furthermore, the CD spectra of carboxypeptidase A in the high-viscosity media point to no change in the alpha-helix and beta-sheet structure in these media. The data are compatible either with a compacter, more rigid enzyme-substrate structure or with a more prominent role of intramolecular nuclear reorganization compared to protein reorganization for Bz-Gly-Phe than for Cbz-Ala-Ala-Ala. These views can be given a preciser frame in terms of stochastic chemical rate theory.

Amino Acid Sequence↗

Effect of salt concentration of buffer on the binding of sodium dodecyl sulfate and on the viscosity behavior of the protein polypeptide derived from bovine serum albumin in the presence of the surfactant.

The complex between SDS and a protein polypeptide derived from bovine serum albumin was characterized with respect to binding of SDS and viscosity behavior. The amount of bound SDS increased from 1.0 to 2.2 g/g with increase of the buffer concentration from 10 to 220 mM. A logarithmic plot of the amount of bound SDS against the buffer concentration gave a linear relation like in the plot where the number of SDS molecules constituting a spherical micelle of SDS is plotted similarly. The increase in the buffer concentration up to 25 mM, from 25 to 100 mM and beyond 100 mM, was accompanied by a sharp rise, monotonic decrease and levelling-off of the intrinsic viscosity in the respective region. In the region 45-175 mM, a linear relation was found between the intrinsic viscosity and reciprocal square root of the buffer concentration. The observed changes can be interpreted as follows: (1), the electrostatic repulsion between charges introduced by the bound SDS caused the initial increase; (2), shielding of the charges as the result of ion condensation with further increase in ionic strength caused the viscosity drop and subsequent levelling-off. The characteristics of the plots are consistent with the necklace model proposed previously for such complexes in which SDS is bound to a protein polypeptide forming micelle-like clusters and which behave like a flexible polyelectrolyte (Shirahama, K., Tsujii, K. and Takagi, T. (1974) J. Biochem. 75, 309-319).

Buffers↗

Influence of glycemic control on viscosity and density of plasma and whole blood in type-1 diabetic patients.

The hemorheological properties of blood play an important role in determining blood flow. Blood inertia, as characterized by blood density, controls blood flow in the large arteries, whereas blood viscosity becomes increasingly important with decreasing vessel diameter. In order to evaluate the impact of glycemic control on the rheological properties of blood, we examined viscosity (shear range: 600-0.2 s-1) and density of plasma and whole blood in 26 Type-1 diabetic patients and in 24 healthy controls, matched for age and sex. The diabetic subjects were subdivided into two groups according to their degree of glycemic control: 14 patients with good (HbA1c = 7.1 +/- 0.6%), and 12 patients with poor control (HbA1c = 8.7 +/- 0.7%). Diabetic patients as a whole did not differ from healthy controls in any of the rheological parameters. Subdivision of the patients due to their degree of glycemic control led to a marked rheological separation of Type-1 diabetic subjects with significantly lower plasma (P < 0.008) and whole blood viscosity (P < 0.03 at 10 and 25 s-1), and plasma density (P < 0.05) in well controlled patients. Compared with healthy controls, well controlled diabetic patients had significantly lower values of viscosity (P < 0.005) and density (P < 0.05) of plasma. Poorly controlled patients, on the other hand, did not differ from healthy controls in the examined rheological parameters. There seems to be a positive influence of good glycemic control on hemorheology in Type-1 diabetic patients.

Adult↗

Postprandial change in canine blood viscosity.

1. Postprandial variation in blood viscosity was studied in beagle dogs. 2. Blood viscosity increased following feeding. This change was caused by haematocrit elevation, which resulted mainly from splenic contraction. 3. Haemoconcentration, plasma viscosity and erythrocyte deformability did not contribute to the postprandial increment in blood viscosity.

Animals↗

Viscosity and transient solvent accessibility of Trp-63 in the native conformation of lysozyme.

We have measured the rates of isotope exchange at the nitrogen of the indole ring of Trp-63 of lysozyme and of L-tryptophan as a function of solution viscosity. We have used two cosolvents, glycerol and ethylene glycol, to modify the relative viscosity. We have derived the appropriate kinetic equations for the alternative possibilities that the exchange takes place either in solution or in the intact protein matrix. Because we chose to study the proton-catalyzed exchange reaction, the rate of it is not expected to be diffusion-limited. We confirmed this by measuring the exchange from tryptophan. These results and the known effects of glycerol and ethylene glycol on the solvation of indole allow us to predict that if the exchange reaction takes place in a protein matrix the effects of the two cosolvents when compared under isoviscous conditions should be identical. This is what we find for Trp-63 in lysozyme at 15, 20 and 26 degrees C. The slope of the linear plot of log k vs. log relative viscosity is 0.6. This strongly supports a model for conformational fluctuations where transient solvation takes place without major changes in protein folding. The most interesting feature of our findings is the fact that a slow reaction admittedly not diffusion-limited shows, when taking place in a protein matrix, a linear dependence on solution viscosity. We suggest that what we observe is the effect of damping of movement of the side chain expressed as a change in the friction along the reaction coordinate in the corresponding phase space. The presence of such effects stresses the validity and usefulness of Kramers model of rate processes for reactions taking place in a protein matrix. Such behavior is predicted by several of the recently proposed general mechanisms of enzyme catalysis.

Hydrogen-Ion Concentration↗

Role of directional Ca2+ effect on reduced viscosities of mucus secretions from chicken trachea in vitro.

Reduced viscosities of fibrillar and gelatinous type mucins produced in response to high submucosal Ca2+ and low luminal Ca2+ effects were significantly higher than those of corresponding types of normal mucins. The increased reduced viscosity of experimental mucin samples was due to their aggregation with unique low molecular weight (mr 325,000 and 46,200) sulphate-rich components. The Ca2+ appeared to exert two opposing effects on viscosity properties of mucins; whereas Ca2+-dependent complexes between different types of mucins appeared to be a selective phenomenon between sulphate-rich mucins and components. Ester sulphate residue content rather than N-acetylneuraminic acid residue content of these mucins and low molecular weight components showed a very good correlation with their reduced viscosity and Ca2+-binding values.

Animals↗

Dermatitis herpetiformis and gluten sensitive enteropathy (including celiac disease)--increased subepithelial extracellular matrix viscosity due to gliadin.

It is now firmly established that dermatitis herpetiformis (DH) is associated with gluten sensitive enteropathy (GSE), although the GSE of DH is generally milder than that form which occurs in celiac disease. The toxic fraction of gluten is in the gliadin, a protein fraction. Gliadin is absorbed in GSE and antigliadin antibodies are present in both DH and celiac disease. There is a question of a cross reactivity between reticulin and gliadin. Gliadin is reported to bind to reticulin. Reticulin has a glycosaminoglycan component. Fibronectin, another component of ground substance, also binds to reticulin. Reticulin and fibronectin are important in basement membrane areas and play a role in basement membrane attachment. Gluten may also exert a lectin effect on gastrointestinal mucosa which contributes to the underlying extracellular matrix. DH and GSE have different pathologies because of their different anatomical sites. The pathomechanisms of both diseases can be explained by one mechanism. Gliadin, or a peptide fraction from it, enters or combines with the extracellular matrix and increases tissue viscosity. The protein fraction of glycosaminoglycans in the extracellular matrix is known to control viscosity. In DH the increased extracellular matrix viscosity would interfere with the diffusion of tissue fluid in the dermal papillae and leads to vesicle formation. The intestinal villi serve a very different function. In GSE the increased extracellular matrix viscosity would decrease adsorption from the intestinal tract producing villi with less volume (shortened or atrophic). The shortened villi decrease the production of digestive enzymes and the absorptive surface. The decreased movement of nutrient tissue fluid supplied to the intestinal epithelial cells also eliminates the microvilli.(ABSTRACT TRUNCATED AT 250 WORDS)

Celiac Disease↗

Effect of sucralfate on the viscosity and retardation of hydrogen ion diffusion by gastric mucus glycoprotein.

The effect of an antiulcer drug (sucralfate) on the viscosity and the ability of pig gastric mucus glycoprotein to retard the diffusion of hydrogen ions was investigated. Preincubation with sucralfate produced a marked enhancement in the glycoprotein viscosity. This enhancement was concentration-dependent and at 1.0 X 10(-3) M sucralfate a 60% increase in viscosity was attained. Permeability measurements revealed that sucralfate caused a substantial improvement in the ability of the glycoprotein to retard the diffusion of hydrogen ions. At 1.0 X 10(-3) M sucralfate, permeability decreased by 25% and a 43% reduction was obtained with 1.0 X 10(-3) M sucralfate. It is suggested that sucralfate, by increasing the viscosity of the glycoprotein and by improving its ability to retard the diffusion of hydrogen ions, strengthens the integrity of gastric mucus.

Aluminum↗

Human tear viscosity: an interactive role for proteins and lipids.

Human tear viscosity is poorly understood. Tears need to remain on the ocular surface for lubrication without causing damage to the surface epithelia due to drag when blinking. Whole tears are shear-thinning (non-Newtonian), which cannot be explained by the amount of mucin present, nor by individual proteins. Whole tears minus lipids become Newtonian. Though no free lipids had previously been found in collected tears, tear lipocalin (TL), a major tear protein, is known to bind lipids. In this study, we aimed to confirm whether there are any free lipids in collected tears, and to clarify the combined contribution of tear proteins to viscosity, including experiments on recombinant TL, both without (apo-TL) and with (holo-TL) bound lipid. We also investigated possible oligomer formation by holo- and apo-TL as a mechanism for viscosity using SDS-PAGE and analytical ultracentrifugation (AU). For comparison, we have included results for beta-lactoglobulin, a well-characterised lipocalin protein. No free lipids were detected in whole tears. Rheology showed that any protein combination that included lysozyme or lactoferrin was shear-thinning, as was apo-TL, though holo-TL was Newtonian (linear). Results from SDS-PAGE and AU showed apo-TL to be entirely monomeric, but holo-TL showed some dimerization. Both apo- and holo-beta-lactoglobulin exhibited a monomer-dimer equilibrium. We conclude that hetero-protein interactions, possibly electrostatic, involving lipid-binding-induced structural changes to TL, significantly contribute to the viscosity of human tears.

Carrier Proteins↗

Catheter-based impedance measurements in the right atrium for continuously monitoring hematocrit and estimating blood viscosity changes; an in vivo feasibility study in swine.

Hematocrit is the most important determinant of whole blood viscosity and it affects thrombosis. As hematocrit can be measured accurately in vitro by using an electrical impedance technique, aim of the present study is to investigate the diagnostic potential of using this technique in vivo to continuously monitor hematocrit. Characteristics of a special catheter for in vivo measurement of electrical resistivity in blood in the right atrium are described. In five anesthetized swine hematocrit is monitored continuously with this catheter while different levels of hemoconcentration are induced. In addition, blood viscosity is increased by inducing 'acute phase' reaction the day before surgery, resulting in variable degree of elevated fibrinogen levels in the five swine. Good reproducibility of the resistivity measurements (S.D < 0.01) and excellent correlation between resistivity data in vivo and hematocrit levels in each swine are found (r2 = 0.95-0.99). Furthermore, stepwise regression analysis of data from all swine shows a highly significant contribution also of other important parameters of blood viscosity, such as fibrinogen, total protein and temperature (cumulative r2 = 0.97). Determining hematocrit continuously in vivo by electrical resistivity measurements with a catheter in the right atrium is feasible and these measurements correlate significantly also with other important parameters of blood viscosity.

Animals↗

Single cell measurement of micro-viscosity by ratio imaging of fluorescence of styrylpyridinium probe.

In aqueous solution, compounds containing the styrylpyridinium group showed dual fluorescence, in which excitation at either 469 or 360 nm each produced an emission band around 600 nm. The ratio of fluorescence intensities of the two bands (R = I469/I360) was sensitive to local viscosity. The N-carboxymethyl butyl ester of DMASP was found to be able to irreversibly load into a living cell; presumably by hydrolysis involving cellular lipases it was transformed to a membrane-impermeable fluorescent carboxylate. A map of the ratio, R, from a single cell was generated using fluorescence imaging microscopy with a spectrofluorimeter in dual-excitation single-emission mode. After calibrating the ratio for the probe in water/glycerol solutions, the intracellular viscosities were obtained for a single cell of smooth muscle of a rat embryonic thoracic aorta. The intracellular viscosity is differentiated inside the cell and the obtained values 18-7 cP obey all the values reported by other laboratories. Fluorescence emission of the probe (500-650 nm) is in a very favourable region for its use with visible fluorescence microscopy, without interferences from cell or tissue auto-fluorescence. The results present ability to detect and follow small changes in the ratio of fluorescence intensities, and apparently of the micro-viscosity.

Animals↗

Viscosity measurements of methanol-water and acetonitrile-water mixtures at pressures up to 3500 bar using a novel capillary time-of-flight viscometer.

A new type of viscometer based on the Poiseuille flow principle has been developed that is capable of measuring solution viscosities at ultrahigh pressures. The capillary time-of-flight (CTOF) viscometer has been used to measure the viscosity of methanol-water and acetonitrile-water mixtures in decade volume% increments from atmospheric pressure to 3500 bar (50,000 psi), at 25 degrees C. This instrument works by utilizing a relatively small pressure drop (approximately 200 bar) across a capillary which has both inlet and outlet pressurized so that the average column pressure can be significantly elevated (up to 3500 bar). Measurements from the CTOF viscometer match high-pressure viscosity data collected previously using falling-body viscometers of the Bridgman design. This manuscript serves to bring viscosity data at ultrahigh pressures for the two most common liquid chromatographic mobile phases into the chromatographic literature.

Acetonitriles↗

A new method to determine the partial solubility parameters of polymers from intrinsic viscosity.

A modification of the extended Hansen method, formerly used to determine the partial solubility parameters of drugs and non-polymeric excipients is tested with a polymer for the first time. The proposed method relates the logarithm of the intrinsic viscosities of the polymer in a series of solvents and solvent mixtures with the Hansen (three parameter model) and Karger (four parameter model) partial solubility parameters. The viscosity of diluted solutions of hydroxypropyl methylcellulose (HPMC) was determined in pure solvents and binary mixtures of varying polarity. The intrinsic viscosity was obtained from the common intercept of the Huggins and Kraemer relationships. The intrinsic viscosity tends to increase with increasing the solubility parameter of the medium. The results show that hydrogen bonding and polarity of the polymer largely determine polymer-solvent interactions. The models proposed provided reasonable partial and total solubility parameters for the polymer and enable one to quantitatively characterize, for the first time, the Lewis acid-base ability of a polymer thus, providing a more realistic picture of hydrogen bonding for solvent selection/compatibility and to predict drug-polymer interactions. Combination of the dispersion and polar parameters into a single non-specific solubility parameter was also tested. The results extend earlier findings and suggest that the models are quite versatile and may be applied to drugs, non-polymeric and polymeric excipients.

Models, Chemical↗