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Biomedical subjects

B M Cooke

Publications and source records attributed to B M Cooke.

At least 37 records · Page 2Linked to original sources

Variation in genome organization of the plant pathogenic fungus Colletotrichum lindemuthianum.

The genome structure of Colletotrichum lindemuthianum in a set of diverse isolates was investigated using a combination of physical and molecular approaches. Flow cytometric measurement of genome size revealed significant variation between strains, with the smallest genome representing 59% of the largest. Southern-blot profiles of a cloned fungal telomere revealed a total chromosome number varying from 9 to 12. Chromosome separations using pulsed-field gel electrophoresis (PFGE) showed that these chromosomes belong to two distinct size classes: a variable number of small (< 2.5 Mb) polymorphic chromosomes and a set of unresolved chromosomes larger than 7 Mb. Two dispersed repeat elements were shown to cluster on distinct polymorphic minichromosomes. Single-copy flanking sequences from these repeat-containing clones specifically marked distinct small chromosomes. These markers were absent in some strains, indicating that part of the observed variability in genome organization may be explained by the presence or absence, in a given strain, of dispensable genomic regions and/or chromosomes.

Ascomycota↗

A recombinant peptide based on PfEMP-1 blocks and reverses adhesion of malaria-infected red blood cells to CD36 under flow.

During falciparum malaria infection, severe complications ensue because parasitized red blood cells (PRBCs) adhere to endothelial cells and accumulate in the microvasculature. At the molecular level, adhesion is mediated by interaction of Plasmodium falciparum erythrocyte membrane protein 1 (PfEMP-1) on the PRBC surface with receptors on the surface of endothelial cells, including CD36. We have shown that a recombinant 179-residue subfragment of PfEMP-1 (rC1-2[1-179]), which encompasses the CD36-binding region, inhibits and reverses adhesion of PRBCs to CD36 under physiologically relevant flow conditions. rC1-2[1-179] inhibited adhesion in a concentration-dependent manner over the range 100 pM to 2 microM, with up to 99% of adhesion blocked at the highest concentration tested. The antiadhesive activity of rC1-2[1-179] was not strain specific and almost totally ablated adhesion of four different parasite lines. Furthermore, rC1-2[1-179] showed remarkable ability to progressively reverse adhesion when flowed over adherent PRBCs for 2h. The effect of rC1-2[1-179] was, however, specific for CD36-mediated adhesion and had no effect on adhesion mediated by CSA. Interference with binding of PRBCs to the vascular endothelium using rC1-2[1-179] or smaller organic mimetics may be a useful therapeutic approach to ameliorate severe complications of falciparum malaria.

Animals↗

Malaria and the erythrocyte.

In terms of global health, the most important disease involving human erythrocytes is infection by protozoan parasites of the genus Plasmodium, particularly Plasmodium falciparum. Our understanding of the complex processes of erythrocyte invasion, remodeling, and cytoadherence has advanced considerably over the past few years. Considerable advances have been made in identifying the players in each of these phenomena, although identification of the exact functional roles for many molecules is still missing. The cloning of the parasite adhesin, the development of a transfection system, and a series of new imaging and cell biology assays are recent achievements that promise to further our understanding not only of the pathogenesis of malaria, but also the functioning of erythrocytes.

Animals↗

Targeted gene disruption shows that knobs enable malaria-infected red cells to cytoadhere under physiological shear stress.

Knobs at the surface of erythrocytes infected with Plasmodium falciparum have been proposed to be important in adherence of these cells to the vascular endothelium. This structure contains the knob-associated histidine-rich protein (KAHRP) and the adhesion receptor P. falciparum erythrocyte membrane protein 1. We have disrupted the gene encoding KAHRP and show that it is essential for knob formation. Knob-transfectants adhere to CD36 in static assays; when tested under flow conditions that mimic those of postcapillary venules, however, the binding to CD36 was dramatically reduced. These data suggest that knobs on P. falciparum-infected erythrocytes exert an important influence on adherence of parasitized-erythrocytes to microvascular endothelium, an important process in the pathogenesis of P. falciparum infections.

Animals↗

Plasmodium falciparum-infected erythrocytes adhere to the proteoglycan thrombomodulin in static and flow-based systems.

Plasmodium falciparum-infected erythrocytes can bind to the glycosaminoglycan chondroitin sulfate A. In this paper, we demonstrate that thrombomodulin, a proteoglycan present on endothelial cells and placental syncytiotrophoblasts, supports binding of selected lines of P. falciparum-infected erythrocytes in both static and flow-based assays, and that adhesion is dependent on the presence of the chondroitin sulfate A chain of thrombomodulin. Chondroitinase treatment of thrombomodulin abolished binding, and free chondroitin sulfate A prevented it, whereas other soluble glycosaminoglycans had little or no effect. Soluble thrombomodulin (with, but not without, its chondroitin sulfate chain) inhibited binding at 40 micrograms/ml, but not at physiological concentrations. Parasitized erythrocytes bound to cells expressing thrombomodulin, including human umbilical vein endothelial cells and A549 cells, and binding was inhibited by free chondroitin sulfate A. Established binding to A549 cells or to immobilized thrombomodulin was substantially reversed by chondroitin sulfate A at 10 micrograms/ml. The chondroitin sulfate chain of thrombomodulin is a receptor for malaria-infected erythrocytes in static assays and under physiological flow.

Animals↗

Adhesion of malaria-infected red blood cells to chondroitin sulfate A under flow conditions.

Adhesion of parasitized red blood cells (PRBCs) to microvascular endothelial cells (ECs) is a distinctive feature of Plasmodium falciparum malaria and is a central event in the development of life-threatening complications such as cerebral malaria. PRBCs adhere to several EC-expressed molecules in vitro, but the relative importance of these interactions in vivo remains unclear. Chondroitin sulfate A (CSA) is the most recent EC surface-associated molecule to be implicated in the adhesive process. Accordingly, we have studied adhesion of PRBCs to CSA in vitro using a parallel-plate flow chamber. Under controlled flow conditions, PRBCs adhered to CSA in a concentration-dependent manner at wall-shear stresses up to 0.2 Pa, a value that is within the physiological range for venules. Once adhered, PRBCs remained stationary (rather than rolling) and continued to remain stationary even when the wall-shear stress was raised to supravenular levels. The adhesive interaction was strong and a proportion of adherent PRBCs could withstand detachment at stresses up to 2.5 Pa. Soluble CSA at pharmacological concentrations prevented adhesion of flowing PRBCs in a concentration-dependent manner but failed to reverse established adhesion. Adhesion of PRBCs to CSA could contribute to the pathogenesis of malaria, and soluble CSA may have a useful therapeutic effect.

Cell Adhesion↗

Plasmodium falciparum: characterization of adhesion of flowing parasitized red blood cells to platelets.

Adhesion of parasitized red blood cells to vascular endothelium contributes to the ischaemic pathology of severe falciparum malaria. One of the endothelial cytoadhesion receptors, CD36, is also expressed by platelets. We have studied adhesion of flowing parasitized cells to a surface coated with immobilized, activated platelets, both as a model for CD36-mediated adhesion and because interaction with platelets might play a direct role in thrombotic complications of malaria. Parasitized cells were able to bind firmly to platelets over a range of shear stress (up to 0.3 Pa) close to those found in the microcirculation. The binding was largely abolished by treatment of platelets with antibody to CD36, with only a small effect by antibody to ICAM-1. Binding showed pH sensitivity consistent with previous reports of CD36-mediated cytoadhesion. Fixation of the platelet surface with formaldehyde preserved adhesion and its antibody sensitivity, while fixation with glutaraldehyde greatly reduced adhesion and increased the sensitivity to antibody against ICAM-1. Thus CD36-mediated binding is inhibited by glutaraldehyde--but not formaldehyde--fixation, while ICAM-1 can mediate adhesion after either form of fixation. We conclude that platelet-coated surfaces (with or without fixation) represent a practically simple model for studying malarial cytoadhesion and that platelets are likely to be able to bind parasitized cells in vivo and could thus promote vascular occlusion.

Animals↗

Cytoadhesion and falciparum malaria: going with the flow.

Sequestration of parasitized red blood cells in the cerebral vasculature is the predisposing event to the development of cerebral malaria during infection with Plasmodium falciparum. The adhesive interaction between these cells and receptors on the endothelial cell (cytoadhesion) occurs in the dynamic environment of the microcirculation, but most studies have neglected this factor and have concentrated on measuring adhesion in static (no flow) assays. Such studies ignore the markedly different rheological properties of parasitized red blood cells that become apparent when adhesion is examined under dynamic, flow conditions that resemble those of the circulation in vivo. Here, Brian Cooke and Ross Coppel review a number of novel aspects of cytoadhesion that have been identified using flow-based assays, and discuss their relevance to the pathophysiology, investigation and clinical management of falciparum malaria.

Journal Article↗

Mechanisms of cytoadhesion of flowing, parasitized red blood cells from Gambian children with falciparum malaria.

Adhesion of parasitized red blood cells to vascular endothelium is considered to be a major factor in the pathophysiology of falciparum malaria, and so the molecular mechanisms and rheologic characteristics of this interaction are of profound importance. We have investigated the adhesive behavior of wild-type parasite isolates cultured from the blood of Gambian children with falciparum malaria and allowed to flow over surfaces coated with formaldehyde-fixed human umbilical vein endothelial cells (HUVEC) or platelets. Parasitized cells were able to attach to HUVEC and/or to platelets, and studies with monoclonal antibodies showed that intercellular adhesion molecule-1 (ICAM-1) and CD36 antigen were the major mediators of adhesion for the two surfaces, respectively. The levels of adhesion to HUVEC and to platelets were highly variable but did not correlate with each other, so that different isolates express independently variable capacities to bind to the two receptors. Adhesion was stationary for platelets and generally at a higher level compared with binding to HUVEC, which was predominantly (about 60%) of a rolling type. The stationary component of adhesion to HUVEC represented a greater proportion of adhesion for the wild isolates than for laboratory-adapted strains, and this form of adhesion was relatively insensitive to antibody to ICAM-1. This suggests the existence of an additional endothelial cell-expressed receptor for the wild isolates. These studies show wide variation in the ability of wild isolates of Plasmodium falciparum to adhere to ICAM-1, CD36 antigen, and possibly other receptors in the presence of physiologically relevant flow.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals↗

Rolling and stationary cytoadhesion of red blood cells parasitized by Plasmodium falciparum: separate roles for ICAM-1, CD36 and thrombospondin.

Adhesion of parasitized erythrocytes to microvascular endothelium is a central event in the pathogenesis of severe falciparum malaria. We have characterized the adhesion of flowing parasitized red blood cells to three of the known endothelial receptors coated on plastic surfaces (CD36, intercellular adhesion molecule-1 (ICAM-1) and thrombospondin (TSP)), and also to cells bearing these receptors (human umbilical vein endothelial cells (HUVEC) and platelets). All of the surfaces could mediate adhesion at wall shear stress within the physiological range. The great majority of adherent parasitized cells formed rolling rather than static attachments to HUVEC and ICAM-1, whereas static attachments predominated for platelets, CD36 and TSP. Studies with monoclonal antibodies verified that binding the HUVEC was mainly via ICAM-1, and to platelets via CD36. Adhesion via ICAM-1 was least sensitive to increasing wall shear stress, but absolute efficiency of adhesion was greatest for CD36, followed by ICAM-1, and least for TSP. TSP did not give long-lasting adhesion under flow, whereas cells remained adherent to CD36 or ICAM-1. We propose that the different receptors may have complementary roles in modulating adhesion in microvessels. Initial interaction at high wall shear stress may be of a rolling type, mediated by ICAM-1 or other receptors, with immobilization and stabilization occurring via CD36 and/or TSP.

Animals↗

A simplified method for culture of endothelial cells and analysis of adhesion of blood cells under conditions of flow.

We have developed a simplified technique for culturing human umbilical vein endothelial cells under shear flow conditions, using prefabricated glass microcapillary tubes ("microslides") with a well-defined rectangular cross section and good optical quality. These microslides have been incorporated into a controlled flow system for quantitative video-microscopic analysis of the adhesion of blood cells to endothelial cells. Microslides were pretreated with 3-aminopropyltriethoxy-silane, or gelatin, and then loaded with a suspension of endothelial cells. After the cells had settled and attached to the substrate, the microslides were inserted into a flow-based culture system. Medium was drawn through them at intervals or continuously until confluency was reached (approximately 24 hr). Cells were cultured at wall shear stresses over a range 0.06 to 2.2 Pa. For adhesion assays, the endothelialized microslides were attached to microscope slides, and suspensions of blood cells were drawn through at desired wall shear stresses (0.02-0.5 Pa). Adhesion of malarial-infected red blood cells and of neutrophilic granulocytes was quantitated by direct microscopic observation. The adhesive behavior of both cell types closely resembled that previously described by ourselves and others using flow chambers incorporating endothelial-coated glass coverslips. The use of microslides represents a significant simplification of methodology for endothelial cell growth and adhesion studies under flow conditions.

Blood Cells↗

Adhesion of parasitized red blood cells to cultured endothelial cells: a flow-based study of isolates from Gambian children with falciparum malaria.

Adhesion of parasitized red blood cells to vascular endothelium is thought to play an important role in the development of the ischaemic complications associated with severe falciparum malaria. Using a novel, flow-based assay, we have investigated the adhesion of parasitized red blood cells to formalin-fixed human umbilical vein endothelial cells (HUVEC), for isolates obtained from 32 Gambian subjects with mild or severe falciparum malaria. Red cells infected with wild strains of Plasmodium falciparum were able to adhere to HUVEC under physiologically relevant flow conditions, but the level of adhesion was highly variable, ranging from 1 to 688 adherent cells per mm2 of HUVEC. Within isolates, some adherent parasitized cells remained stationary, whilst other formed less stable interactions and rolled slowly over the cell surface. There was no significant difference in adhesion of parasitized cells between isolates obtained from mild or severe cases of malaria, although a subset of isolates did show very high levels of adhesion. The results suggest that there is not a simple relationship between the adhesion of parasitized cells to cultured endothelial cells (presumably via the receptor ICAM-1) and the clinical severity of the disease, although variation in microvascular adhesion in vivo may still be a determinant of ischaemic complications.

Cell Adhesion↗

Comparative study of the adhesion of sickle cells and malarial-parasitized red cells to cultured endothelium.

Increased adhesion of red cells to vascular endothelium has been implicated in the pathogenesis of falciparum malaria and sickle cell disease. We have carried out a comparative study of the adhesiveness of normal (AA), sickle trait (AS), and homozygous sickle (SS) red cells, with and without parasitization by Plasmodium falciparum, with an in vitro flow system. Adhesion of nonparasitized red cells to cultured human umbilical vein endothelial cells (either glutaraldehyde fixed or untreated) was strongly dependent on the wall shear stress. Many AA and SS cells adhered at low stress (0.02 Pa), but far fewer did so when the stress was increased to a physiologic level (0.1 Pa). Compared with AA cells, SS adhered in greater number (about threefold) and required greater stress (about two-fold) for their subsequent removal. In contrast, the efficiency of adhesion of AA cells parasitized by Plasmodium falciparum was essentially constant up to 0.1 Pa, where it was about 1000 times greater than the efficiency for nonparasitized cells. The stress required to remove parasitized cells was about 6 times that for controls. When parasites were grown in SS cells, fewer cells adhered than when parasites were grown in AA cells. However, the adhesion of malarial-parasitised AS cells was only slightly less than that of parasitized AA cells, so that modulation of adhesion is unlikely to underlie the protective effect of sickle gene in malaria. Adhesion of red cells to endothelium may promote blockage of microvessels, and the interaction of parasitized cells appears strong enough to directly cause ischemic complications in falciparum malaria.

Anemia, Sickle Cell↗

Rheological analysis of the adhesive interactions of red blood cells parasitized by Plasmodium falciparum.

Adhesion of parasitized red blood cells (RBCs) to vascular endothelium is thought to be a key factor in the pathology of falciparum malaria. However, quantitative analyses of the intercellular forces and of the effects of flow on adhesion have been lacking. We have characterized cytoadhesion of RBCs parasitized by the strains ITO4 (which can bind to receptors ICAM-1 or CD36) and FCR3A2 (which can bind to CD36 only) using micropipette manipulation and flow chamber techniques. Target cells were unfixed or glutaraldehyde-fixed human umbilical vein endothelial cells (HUVEC, bearing ICAM-1 only) or human amelanotic melanoma cells (C32, bearing CD36 and ICAM-1). In the static, micropipette assay, 60% to 70% of parasitized cells would adhere when tested at up to three successive sites. The percentage of cells adhering and the force required for their detachment (approximately 10(-10) N) were similar for each combination of parasite strain and adhesion target (ITO4/HUVEC, ITO4/C32, FCR3A2/C32). In the flow chamber, efficiency of initial adhesion of parasitized cells was essentially constant (at about 1%) up to a stress of 0.1 Pa, and then decreased rapidly with increasing stress. Either receptor (ICAM-1 or CD36) could immobilize flowing cells at a physiologic flow stress (0.1 Pa), but the numbers of cells adhering varied for the different combinations (ITO4/C32 greater than ITO4/HUVEC greater than FCR3A2/C32). When flow was increased in steps, adhered cells were gradually washed off but many could withstand stresses at which they would not initially adhere. The force for detachment estimated in this way was similar to the pipette value, and again, was similar for the different combinations of strains and targets. Adhesion from flow depends on the affinity between surfaces being above a critical level, and once adhesion is established, the fracture energy determines resistance to disruption of adhesion. The results show that the fracture energy is greater than the affinity (ie, that adhesion becomes stabilized after it is initially established) and that the ratio of affinity to fracture energy is different for different receptor/ligand pairs, with ICAM-1 appearing to be the more efficient immobilizing receptor. Also, static and flow-based assays of adhesion clearly differ; the affinity is less critical in the static situation, so that most parasitized cells were capable of adhering in a static assay, but fewer did so under flow. Adhesiveness varied markedly from cell to cell, both for targets and parasitized cells.(ABSTRACT TRUNCATED AT 400 WORDS)

Animals↗

Rheological properties of rosettes formed by red blood cells parasitized by Plasmodium falciparum.

A proportion of red blood cells parasitized by Plasmodium falciparum form rosettes with non-parasitized red cells. Although these rosettes are thought to impair microcirculatory flow, their rheological characteristics have not been fully described. Using dual-micropipette manipulation to pull apart individual rosettes, we found that the forces binding rosettes together were strong (average force for removal of a cell was 4.4 x 10(-10) N, approximately 5 times that required to detach a parasitized cell adhered to cultured endothelium). If disrupted rosettes were re-formed, cells rosetted immediately on contact, but the strength of attachment increased over minutes, and did not apparently reach its maximal level for hours. All non-parasitized cells tested could adhere to rosette-forming parasitized cells. Rosettes could withstand arterial flow stresses (1.4-1.6 Pa) for minutes without disintegration. To test the effects of rosetting on flow resistance, the time required for entry into a 4.3 microns pipette was measured. Entry times depended strongly on the number of cells in the rosette, and averaged 35 times longer than for non-parasitized cells. Our studies show that the cell-cell attachments within rosettes are strong, and suggest that rosettes might survive both the arterial circulation and passage through microvessels and could contribute to the ischaemic complications of falciparum malaria.

Animals↗

Automated measurement of plasma viscosity by capillary viscometer.

Plasma viscosity has several advantages over the erythrocyte sedimentation rate as a measurement of an acute phase response of more than 24 hours' duration. A new capillary viscometer (Coulter Viscometer II), which gives an automated measurement of plasma viscosity, was compared with the selected manual method (Harkness viscometer) of the International Committee for Standardization in Haematology. Automated measurement of plasma viscosity at 25 degrees C showed close correlation (r = 0.979, p less than 0.002) with the selected method for 160 specimens of plasma. Satisfactory precision both within batch and between batch (coefficients of variation of 1.7% or less) was obtained at viscosity values up to 5.7 mPa.s. There was no detectable carry over between samples and viscosity values were corrected adequately for ambient temperature for the range 15-32 degrees C. Careful daily cleaning was required to prevent accumulation of protein within the automatic sampling valve of the instrument. Automated measurement of plasma viscosity is an attractive alternative to measurement of the erythrocyte sedimentation rate.

Acute-Phase Proteins↗

Use of heart rate responses to standing and hyperventilation at rest to detect coronary artery disease: correlation with the S-T response to exercise.

The heart rate responses to standing and to hyperventilation, expressed as a percent change over the sitting heart rate value, were measured in 48 patients with angiographic coronary artery disease (less than or equal to 70 percent luminal narrowing) and 50 young, healthy asymptomatic individuals. When an abnormal response suggesting coronary artery disease was defined as an increase in the heart rate of < 15% over the sitting value and < 20% increase in the heart rate to hyperventilation relative to the sitting value, the sensitivity of such a criterion was 56%, the specificity was 92% and the predictive value was 87%. These values were not significantly different (P > 0.05) from those for the S-T response to exercise, which were 77%, 98%, and 97% respectively. When either a positive S-T response to exercise or a positive response for control heart rate changes to standing and hyperventilation were used as criteria for a positive test, the sensitivity significantly increased to 98% (P < 0.01), while specificity and predictive value remained significantly unchanged (P > 0.05) at 90% for each. The use of the heart rate response to standing and hyperventilation may be a useful test in detecting coronary artery disease in patients unable to undergo stress testing. The use of such heart rate responses in addition to S-T depression with exercise results in a highly sensitive and specific test with great predictive value.

Adult↗