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At least 19 recordsLinked to original sources

Red blood cell blood group antigens: structure and function.

Red blood cell (RBC) blood group antigens are polymorphic, inherited, carbohydrate or protein structures located on the extracellular surface of the RBC membrane. They contribute to the architecture of the RBC membrane, and their individual function(s) are being slowly revealed. The biological qualities assigned to these RBC membrane structures are based on observed physiological alteration in RBCs that lack the component, by documenting similarities in its protein sequence (predicted from the nucleotide sequence of the gene) to proteins of known function and by extrapolation to identified functional homologues in other cells. The varied roles of RBC antigens include membrane structural integrity, the transport of molecules through the membrane, as receptors for extracellular ligands, adhesion molecules, enzymes, complement components and regulators, and in glycocalyx formation.

Blood Group Antigens↗

Red blood cell [14C]cholesterol exchange and plasma cholesterol esterifying activity of normal and sickle cell blood.

The present study performed on density fractions of sickle and normal erythrocytes prepared on Stractan density gradient shows that dense erythrocytes have consistently decreased uptake of [14C]cholesterol from plasma in comparison to young, less dense erythrocytes. Plasma of sickle cell patients also shows a reduction in cholesterol-esterifying activity in comparison to normal controls. A possible effect of these processes in the increased cholesterol to phospholipid molar ratio of irreversibly sickled cells has been suggested.

Anemia, Sickle Cell↗

Spurious counts and spurious results on haematology analysers: a review. Part II: white blood cells, red blood cells, haemoglobin, red cell indices and reticulocytes.

Haematology analysers provide quick and accurate results in most situations. However, spurious results, related either to platelets (part I of this report) or to other parameters from the cell blood count (CBC) may be observed in several instances. Spuriously low white blood cell (WBC) counts may be observed because of agglutination in the presence of ethylenediamine tetra-acetic acid (EDTA). Cryoglobulins, lipids, insufficiently lysed red blood cells (RBC), erythroblasts and platelet aggregates are common situations increasing WBC counts. In most of these instances flagging and/or an abnormal WBC differential scattergram will alert the operator. Several situations lead to abnormal haemoglobin measurement or to abnormal RBC count, including lipids, agglutinins, cryoglobulins and elevated WBC counts. Mean (red) cell volume (MCV) may be also subject to spurious determination, because of agglutinins, excess of glucose or salts and technological considerations. In turn, abnormality related to one measured parameter will lead to abnormal calculated RBC indices: mean cell haemoglobin content (MCHC) is certainly the most important RBC indices to consider, as it is as important as flags generated by the haematology analysers (HA) in alerting the user to a spurious result. In many circumstances, several of the measured parameters from CBC may be altered, and the discovery of a spurious change on one parameter frequently means that the validity of other parameters should be considered. Sensitive flags now allow the identification of several spurious counts, but only the most sophisticated HA have optimal flagging and more simple HA, especially those without a WBC differential scattergram, do not possess the same sensitivity for detecting anomalous results. Reticulocytes are integrated now into the CBC in many HA, and several situations may lead to abnormal counts.

Erythrocyte Count↗

Transfusion in premature infants impairs production and/or release of red blood cells, white blood cells and platelets.

OBJECTIVE: To examine whether red blood cell transfusion in infants with anaemia of prematurity alters peripheral counts of red blood cell precursors, total white blood cells and white cell differential and platelets. METHODOLOGY: In 18 consecutive stable premature infants with anaemia of prematurity, peripheral cell counts were prospectively recorded immediately before transfusion of 20 mL/kg packed red blood cells (given over 6 h), and at 48 h after completion of the transfusion. RESULTS: The median (interquartile range) haematocrit increased from 22.0% (21.3-24.0%) pre-transfusion to 37.0% (36.0-38.0%) post-transfusion (P < 0.001). Red-cell precursors decreased: median (interquartile range) reticulocytes from 3.7% (3.0-7.7%) to 3.7% (2.6-4.1%) (P = 0.03); and median (interquartile range) nucleated red blood cells from 0 G/L (0-0.2 G/L) to 0 G/L (0-0 G/L) (P = 0.03). The mean (SD) platelet count decreased from 420 G/L (154 G/L) to 313 G/L (101 G/L) (P = 0.001). The total white blood cell count and neutrophils did not change significantly; however, median (interquartile range) immature neutrophils decreased from 0.12 G/L (0.06-0.74 G/L) to 0.08 G/L (0.01-0.24 G/L) (P = 0.03). Lymphocytes, eosinophils, basophils and plasma cells remained unchanged. Monocytes increased (P = 0.01). CONCLUSIONS: Forty-eight hours after red blood cell transfusion to premature infants, there is an absolute decrease in red blood cell precursors, immature white blood cells and platelets, probably due to erythropoietin-suppression.

Blood Transfusion↗

The hydrolysis of fatty acid ethyl esters in low-density lipoproteins by red blood cells, white blood cells and platelets.

Fatty acid ethyl esters (FAEE), esterification products of fatty acids and ethanol, have been implicated as toxic mediators of ethanol ingestion. In this study, we investigated the in vitro hydrolysis of FAEE reconstituted in low-density lipoproteins (LDL) when incubated with human blood, cell free plasma, red blood cells, white blood cells, and platelets. We also determined the metabolic fate of the fatty acid originally incorporated in the FAEE following FAEE hydrolysis. When FAEE were incubated with human red blood cells. white blood cells, or platelets, at physiologic cell counts, 80% of the FAEE were hydrolyzed at 2 h. The FAEE-derived fatty acid was predominantly found in phospholipid and free fatty acid fractions. Cell free plasma contained minimal FAEE hydrolytic activity. These studies demonstrate that FAEE are degraded to free fatty acids and ethanol by the cellular elements in the blood. The generation of free fatty acids from extensive hydrolysis of FAEE adds support to the growing concept that at least some of the toxic effects of FAEE are mediated by the free fatty acids generated upon hydrolysis of the ethyl esters.

Alcoholism↗

Blood cells and blood cell development in the animal kingdom.

Recent findings strongly suggest that the molecular pathways involved in the development and function of blood cells are highly conserved among vertebrates and various invertebrate phyla. This has led to a renewed interest regarding homologies between blood cell types and their developmental origin among different animals. One way to address these areas of inquiry is to shed more light on the biology of blood cells in extant invertebrate taxa that have branched off the bilaterian tree in between insects and vertebrates. This review attempts, in a broadly comparative manner, to update the existing literature that deals with early blood cell development. I begin by providing a brief survey of the different types of blood cell lineages among metazoa. There is now good reason to believe that, in vertebrates and invertebrates alike, blood cell lineages diverge from a common type of progenitor cell, the hemocytoblast. I give a synopsis of the origin and determination of the hematocytoblast, beginning with a look at the hematopoietic organs that house hemocytoblasts in adult animals, followed by a more detailed overview of the embryonic development of the hematopoietic organ. Finally, I compare the process of blood lineage diversification in vertebrates and Drosophila.

Animals↗

A comparison of plasma, white blood cell, red blood cell, and tissue distribution of amiodarone and desethylamiodarone in anesthetized dogs.

Desethylamiodarone (DA) is a major metabolite of amiodarone (AM), a Class III antiarrhythmic drug. The plasma pharmacokinetics and tissue distribution of AM and DA (10 mg/kg i.v.) were compared in anesthetized dogs. Plasma, white blood cell (WBC), red blood cell (RBC), liver, and skeletal muscle samples were obtained at frequent intervals up to 6 h after a single i.v. bolus of the two drugs. Drug concentrations in these and other tissues, i.e., lung, kidney, heart (right and left atrium, right and left ventricle, Purkinje fibers, and AV node), and femoral nerve were measured by a highly sensitive and specific high-pressure liquid chromatographic technique developed in our laboratory. Four different patterns of AM and DA uptake and washout could be identified in these experiments. The first pattern is biexponential decline in plasma drug levels with a rapid distribution phase (t1/2 alpha = 5.1 +/- 2.1 min for AM and 5.5 +/- 1.2 min for DA, respectively) and a slower elimination phase (t1/2 beta = 3.7 +/- 1.3 h for AM and 4.96 +/- 0.8 h for DA, respectively). The volume of distribution of DA was significantly larger than that of AM. The second pattern is that both WBCs and RBCs showed an initial uptake within 5 min followed by a biexponential decrease in drug levels, with t1/2 alpha similar to that in plasma but t1/2 beta significantly longer than in plasma. In both these types of cells, the elimination half-life for DA was significantly longer than that of AM. The third pattern is that in the liver there was a rapid uptake of both drugs with peak concentrations at 15 min; the decline in hepatic levels of AM was biexponential, but that of DA appeared to be monoexponential. In addition, in dogs given AM alone, the metabolite (DA) was easily detected in the liver from the earliest time of measurement, suggesting that the parent drug is rapidly metabolized to DA. In the experiments where DA was injected, two new peaks were also identified in the liver suggesting that DA was metabolized further in the liver. The fourth pattern was in the skeletal muscle, where AM uptake was relatively slow, reaching peak concentrations between 1.5-2 h followed by a monoexponential decline; however, DA was rapidly taken up by skeletal muscle, but the rate of decline appeared to be slower as compared to that of AM.(ABSTRACT TRUNCATED AT 400 WORDS)

Amiodarone↗

Dynamics of cutaneous laser Doppler flux with concentration of moving blood cells and blood cell velocity in legs with venous ulcers and in healthy legs.

Laser Doppler flux (LDF) is a product of the concentration of moving blood cells (CMBC) and the blood cell velocity (BCV). In an attempt to obtain more information about the cutaneous microcirculation in legs with venous ulcers and in healthy legs, the dynamics of the curves of the LDF, the CMBC, and the BCV were analyzed in 8 patients with venous leg ulcers and in 10 subjects with healthy legs. The curves of the CMBC and of the BCV were found to be in opposite phases both in the ulcerous legs and in the healthy legs. The maximal amplitude of the curves of the LDF and of the CMBC was greater in the legs with ulcers than in the healthy legs (p = 0.021 and p = 0.0085, respectively). The finding that the curves of the CMBC and the BCV were in opposite phase can be interpreted to reflect the capillary blood flow by fits and starts both in legs with venous ulcers and in healthy legs. The greater amplitude of the LDF and the CMBC in legs with venous ulcers reflects the blood flow in anatomically altered capillaries in those legs. It is useful to record the curves of the CMBC and the BCV together with the LDF because this gives additional information about the microcirculation of the skin.

Aged↗

Separation and labeling of specific subpopulations of Botryllus blood cells.

Blood cells of the colonial tunicate Botryllus were separated by density gradient centrifugation in Percoll. Unseparated blood cells were used to immunize mice for development of hybridoma cell lines producing anti-Botryllus monoclonal antibodies. These antibodies identify specific subpopulations of blood cells, indicating possible divisions of these cells into defined subgroups sharing particular differentiation antigens. Additional studies utilizing fluorescein- conjugated lectins also revealed differential binding to density- and monoclonal antibody-defined blood cell fractions. These methods allow separation of the different Botryllus blood cell types for functional studies.

Animals↗

Stress proteins induced by exposure to sublethal levels of heavy metals in sea bream (Sparus sarba) blood cells.

Blood cells freshly collected from silver sea bream (Sparus sarba) were exposed in vitro to different sublethal concentrations of cadmium(II), lead(II) or chromium(VI). HSP70 stress proteins were significantly overexpressed after exposure to metal concentration as low as 0.1 microM. Under our experimental conditions, no overexpression of metallothioneins in blood cells was evidenced. Our results show that fish blood cells may constitute an interesting biological model for experimental and applied toxicology, especially in the case of environmental pollution.

Animals↗

Studies of the blood of Ascidia ceratodes. Total blood cell counts, differential blood cell counts, hematocrit values, seasonal variations, and fluorescent characteristics of blood cells.

Seasonal, and animal size and weight variations of the blood cells of the vanadium-containing ascidian. Ascidia ceratodes, were determined. The fluorescent properties of various cell types were ascertained, and discussed in terms of cell development, phylogenic position of the species, and chemicals in the cells.

Acclimatization↗