Search PubMed⌕ Search

Biomedical subjects

V R Muzykantov

Publications and source records attributed to V R Muzykantov.

At least 55 records · Page 3Linked to original sources

Systemic administration of platelet-activating factor in rat reduces specific pulmonary uptake of circulating monoclonal antibody to angiotensin-converting enzyme.

The biodistribution of radiolabeled mouse monoclonal antibody (MoAb) to angiotensin-converting enzyme (ACE) and control, nonimmune mouse IgG in platelet activating factor (PAF)-treated rats was studied. The blood level of both preparations was slightly decreased (90% of the control) in PAF-treated rats. Specific pulmonary accumulation of anti-ACE MoAb was reduced to 50% of control in contrast to a doubling in nonspecific pulmonary uptake of non-immune IgG. The changes in anti-ACE MoAb biodistribution were lung-specific and were accompanied by decrease in the pulmonary ACE activity (to 60% of control) and increase in serum ACE activity (to 170% of control). Thus anti-ACE MoAb reveals PAF-induced changes in the status of the pulmonary ACE and therefore can be used for the studies of pathology of the pulmonary endothelium.

Animals↗

Fast lysis by complement and uptake by liver of avidin-carrying biotinylated erythrocytes.

The fate of 51Cr-labelled avidin-carrying biotinylated erythrocytes after intravenous injection in the rat was examined. Surface amino groups of the erythrocyte membrane were modified by biotin N-hydroxysuccinimide ester. The biodistribution and stability of biotinylated erythrocytes in the blood were similar to those of non-biotinylated cells. Both types of cells circulated in the bloodstream for prolonged periods of time without substantial lysis (about 2-3% of injected radioactivity per g of blood for 24-48 hours, no more than 2% of lysis). Both types of erythrocytes were cleared by the spleen. The clearance of biotinylated cells was faster and more pronounced (peak of spleen uptake at 3 hours after injection, up to 35% of injected radioactivity per g of spleen), than that of nonbiotinylated cells (peak of spleen uptake at 24 hours after injection, up to 25% of injected radioactivity per g of spleen). Attachment of avidin to biotinylated cells results in extremely rapid lysis and clearance from the bloodstream (0.17% of injected radioactivity per g of blood 30 min after injection, 100% lysis). Radioactivity was rapidly cleared by the liver (up to 80% of injected dose per g of tissue, 70% per organ). Uptake by the spleen plays only a minor role in the clearance. Considerable lung uptake of avidin-carrying biotinylated erythrocytes was observed. Avidin-carrying biotinylated erythrocytes were lysed by fresh homologous serum in vitro in contrast to biotinylated and native cells. Lysis was eliminated by pretreatment of serum with EDTA or heating, which indicates a complement-dependent mechanism of lysis.

Animals↗

[Bimodal effect of exogenous hydrogen peroxide on human neutrophils: cytotoxic effect and modulation of respiratory burst in response to an agonist].

It has been found that high concentrations of exogenous hydrogen peroxide kill human neutrophils, the range of toxic concentrations being 100 times as high as that for human endothelial cells. Whereas the H2O2 doses of 30-100 mM induce a fast massive death of neutrophils, 10 mM hydrogen peroxide induces appreciable death only within several hours after treatment. H2O2 used at 30 mM decreases superoxide anion generation by neutrophils stimulated with PMA or FMLP. This decrease is commensurate in value with cell death, thus indicating a high functional resistance of survived cells. In the dose of 10 mM hydrogen peroxide potentiates FMLP (but not PMA-)-induced generation of superoxide anions. Augmentation of superoxide anion generation by H2O2-primed neutrophils in response to FMLP amounts to 200% of the control value. Hydrogen peroxide alone is incapable of inducing superoxide anion generation. It is concluded that exogenous oxidants can alter the functional activity of leukocytes freshly recruited in inflammatory and ischemic tissues.

Cell Survival↗

Avidin attachment to biotinylated erythrocytes induces homologous lysis via the alternative pathway of complement.

Noncovalent attachment of avidin to the membrane of prebiotinylated red blood cells (RBCs) induces lysis via the alternative pathway of complement (APC). Lysis is not species-dependent; RBCs from humans, rabbits, rats, and sheep were lysed with both autologous and all heterologous sera. Both biotinylated and native cells were not lysed. Lysis was observed at an avidin surface density of about 10(5) molecules per cell. Acylation of avidin prevents lysis and decreases the positive charge of the avidin. Lysis depends on the length of the cross-linking agent used for the biotin attachment to the membrane. An increase in the length of the cross-linking agent was accompanied by an enhancement of the lysis and the agglutination titer of biotinylated RBCs in a solution of avidin. It is suggested that avidin attachment induces some transformations of the cell membrane that lead to the conversion from "APC nonactivator" cells to "APC activator" cells. The interaction of avidin with membrane APC-restrictors (decay-accelerating factors, type 1 receptor for complement, homologous restriction factor, and others), the charge of avidin, and its cross-linking ability in lysis are discussed. It is proposed that membrane rearrangement induced by multipoint avidin attachment to biotinylated membrane is the main reason for avidin-induced elimination of APC restriction.

Animals↗

Streptavidin-induced lysis of homologous biotinylated erythrocytes. Evidence against the key role of the avidin charge in complement activation via the alternative pathway.

It is shown that non-covalent attachment of streptavidin, as well as of avidin, to biotinylated human erythrocytes induces homologous hemolysis by complement. Rabbit antiserum against human C3 is found to inhibit the lysis specifically as compared with non-immune rabbit serum. Efficiency of lysis inhibition is greater for avidin- and streptavidin-induced lysis of biotinylated human erythrocytes than for antibody-sensitized sheep erythrocytes. In contrast to positively charged avidin (pI 11), streptavidin is a neutral protein. Hence, hemolysis of streptavidin-carrying erythrocytes is inconsistent with the suggestion on the crucial role of avidin charge in lysis. Membrane alterations (cross-linking and clusterization of biotinylated components) induced by avidin (streptavidin) seem to be a more plausible explanation for the lysis.

Avidin↗

Avidin acylation prevents the complement-dependent lysis of avidin-carrying erythrocytes.

Non-covalent binding of avidin to biotinylated erythrocytes results in complement-dependent haemolysis. Biotinylated erythrocytes, as well as native cells, are not lysed by complement. Complement activation requires a tight contact between avidin and the erythrocyte membrane, since avidin does not in itself activate complement and does not inhibit lysis of sensitized sheep erythrocytes. The efficiency of haemolysis depends on avidin's surface density. When the avidin concentration in the reaction mixture is less than 15 micrograms/ml, erythrocyte lysis is not induced. However, the attachment of biotinylated antibodies to avidin-carrying erythrocytes decreases dramatically. Acylation of avidin with succinic anhydride strongly decreases its ability to induce complement-dependent haemolysis. However, the ability of avidin to cross-link the biotin-containing structures decreases after acylation. A 50% modification of avidin by succinic anhydride (pI about 7.0) allows preparation of 'immunoerythrocytes', which retain their affinity to antigen and stability in the presence of complement.

Acylation↗

[Oxidative inactivation of angiotensin-converting enzyme].

Hydrogen peroxide inactivates the purified human angiotensin-converting enzyme (ACE) in vitro; the inactivating effect of H2O2 is eliminated by an addition of catalase. The lung and kidney ACE are equally sensitive to the effect of hydrogen peroxide. After addition of oxidants (H2O2 alone or H2O2 + ascorbate or H2O2 + Fe2+ mixtures) to the membranes or homogenates of the lung, the inactivation of membrane-bound ACE is far less pronounced despite the large-scale accumulation of lipid peroxidation products. The marked inactivation of ACE in the membrane fraction (up to 55% of original activity) was observed during ACE incubation with a glucose:glucose oxidase:Fe2+ mixture. Presumably the oxidative potential of H2O2 in tissues in consumed, predominantly, for the oxidation of other components of the membrane (e.g., lipids) rather than for ACE inactivation.

Angiotensin-Converting Enzyme Inhibitors↗

A new approach to the investigation of oxidative injury to the pulmonary endothelium: use of angiotensin-converting enzyme as a marker.

Oxidative injury to the pulmonary endothelium plays and important role in lung pathology. Oxidants (that accumulate in lung tissue upon hyperoxia or hypoxia, or are released from activated leukocytes) can destroy endothelial cells. Investigation of the mechanisms of oxidative endothelial injury and the choice of valid criteria with which to measure these pathological deviations are therefore of great importance. Among the criteria used to assess endothelial injury (e.g. accumulation of the products of lipid peroxidation, enhancement of pulmonary microvascular permeability, morphological changes), monitoring of angiotensin-converting enzyme (ACE) is of great interest because it is associated with the endothelial surface and thus reflects endothelial status. Assessment of lung rather than serum ACE activity is the best indicator of endothelial injury. For a comprehensive evaluation of endothelial status, not only total ACE activity in lung tissue but also ACE accessibility to circulating ligands should be monitored. Radiolabelled ACE substrates have been used as ligands in the perfusion of isolated lungs of experimental animals. Radiolabelled monoclonal antibody (Mab) to ACE has been proposed as an alternative ligand, because a drastic decrease in uptake of this Mab by the lungs upon lung injury has been shown. This approach is extremely sensitive: a decrease in antibody uptake occurs even upon mild (nonoedematous) oxidative lung injury, when other indicators, such as lung and serum ACE activity, accumulation of the products of lipid peroxidation, and microvascular permeability, remain unchanged. The use of radiolabelled Mab allows the pulmonary microvascular status to be monitored by gamma-scintigraphy.

Biomarkers↗

Lung is the target organ for a monoclonal antibody to angiotensin-converting enzyme.

125I-labeled mouse monoclonal antibody (MoAb) to human angiotensin-converting enzyme (ACE), termed 9B9 and cross-reacting with rat and monkey ACE, when injected into the circulation, accumulates in the lung in up to 10 to 20 greater concentrations than in other organs and blood. That 111In-labeled MoAb 9B9 also accumulates in the lungs of both rats and monkeys very selectively, was clearly revealed by gamma-scintigraphy. Unlike polyclonal anti-ACE antibodies that induce an immunodependent lethal reaction when administered intravenously, MoAb 9B9 was well tolerated by rats even at very high doses (up to 300 mg/kg/body weight). At the same time, the administration of this antibody (which does not inhibit the catalytic activity of ACE) resulted in both a 3-fold decrease of the lung ACE activity and an increase in the activity of serum ACE. The highly organ-specific, nondamaging accumulation of the MoAb 9B9 makes it a promising vector for targeted drug delivery to the lung, for modeling of lung pathology, and for gamma-scintigraphic visualization of the lung vascular bed. We also suggest that MoAb 9B9 accumulation in the lung may serve as a highly sensitive marker of lung vessel damage upon various lung pathology.

Animals↗

Endotoxin reduces specific pulmonary uptake of radiolabeled monoclonal antibody to angiotensin-converting enzyme.

The biodistribution of radiolabeled monoclonal antibody (Mab) to angiotensin-converting enzyme (ACE) was examined in normal and endotoxin-treated rats. Endotoxin administration at a dose of 4 mg/kg induced mild or middle pulmonary edema. The ACE activity in lung homogenate remained virtually unchanged, while the activity of serum ACE increased 15 hr after endotoxin infusion. In normal rats, anti-ACE Mab accumulates specifically in the lung after i.v. injection. Endotoxin injection induces reduction of specific pulmonary uptake of this antibody. Even in non-edematous endotoxemia, the accumulation of anti-ACE Mab antibody (Mab 9B9) decreased from 19.02 to 11.91% of ID/g of tissue without any change in accumulation of control nonspecific IgG. The antibody distribution in other organs and its blood level were almost the same as in the control. In a case of endotoxemia accompanied by increased microvascular permeability, the lung accumulation of Mab 9B9 was reduced to 9.17% of ID/g of tissue, while the accumulation of nonspecific IgG increased to 1.44% versus 0.89% in the control.

Animals↗

Cytotoxicity of glucose oxidase conjugated with antibodies to target cells: killing efficiency depends on the conjugate internalization.

The cytotoxic action of glucose oxidase conjugated with antibodies against the target cells has been examined in a culture of human endothelial cells. Internalizable (anti-endothelial, MoAb E25) and non-internalizable (anti-fibronectin, MoAb FN) monoclonal antibodies were employed as vectors. Anti-endothelial monoclonal antibody E78 (whether it can be internalized by endothelial cells is unclear) and polyclonal mouse antiserum to the human endothelium were also used. The conjugates were prepared by oxidation of the enzyme carbohydrate moiety with periodate. Free conjugates display similar enzyme activity in glucose solution. In contrast to glucose oxidase, conjugated with no-immune IgG, antibody-conjugated glucose oxidase binds specifically to target cells. The efficiency of targeting was different for various conjugates. Targeting via the anti-fibronectin antibody and anti-endothelial antiserum provided maximal quantitative binding of glucose oxidase to endothelial cells, while the conjugates with MoAb E25 and MoAb E78 monoclonal antibodies provided less effective binding. In the presence of glucose, targeted glucose oxidase generated H2O2. Hydrogen peroxide is relatively stable in buffer, but rapidly decays in the culture medium supplemented with 20% human serum. Though the quantitative binding of MoAb E25-conjugated glucose oxidase was minimal comparing to other conjugates, targeting via MoAb E25 produced the maximal cytotoxic effect as well as targeting via polyclonal antiserum. The killing efficiencies of MoAb FN-conjugated and MoAb E78-conjugated glucose oxidase were about 30-fold lower. The high efficiency of the MoAb E25-conjugated enzyme may be due to its internalization by target cells. Internalization can lead to unaccessibility of generated H2O2 for extracellular scavengers and pH optimization for glucose oxidase activity, which provides valuable advantages for the cytotoxicity of the conjugate. Thus, cytotoxicity of antibody-conjugated glucose oxidase depends not only on the efficiency of specific binding to the target cell, but also on the fate of cell-bound conjugate. Cytotoxicity is extremely effective in case of 'internalizable' conjugate and drastically less effective in case of 'non-internalizable' conjugate.

Animals↗

Local tissue injury induced by glucose oxidase conjugated with anti-collagen antibody.

The conjugation of glucose oxidase with anti-collagen antibody using periodate oxidation of the enzyme carbohydrate moiety is described. After conjugation, the antibody retained its antigen-binding capacity and the enzyme retained hydrogen peroxide-generating activity. Intradermal administration of the immune conjugate into rats induced local tissue injury at doses 10-100 micrograms. Pronounced damage (local hyperemia and edema) occurred 24 h after injection and necrosis developed 1 week later. The enzyme was tightly bound to the fibrillar components of the extracellular matrix and retained its activity in vivo for a prolonged period of time. In contrast, non-immune IgG-conjugated glucose oxidase was removed rapidly from the site of injection and did not induce tissue damage. Pure native anti-collagen antibody was retained at the site of injection for 8 days, but caused no tissue injury. These results suggest that active glucose oxidase conjugated with antibodies to tissue antigen can be accumulated and retained in the tissues. At the site of accumulation local 'proinflammatory' damage develops even in the absence of the halide-peroxidase system. Similar conjugates could be potential agents for local modulation of inflammation.

Animals↗

In vivo administration of glucose oxidase conjugated with monoclonal antibodies to angiotensin-converting enzyme. The tissue distribution, blood clearance, and targeting into rat lungs.

A conjugate between glucose oxidase (GO) and monoclonal antibody to human angiotensin-converting enzyme (ACE) cross-reacting with rat ACE (MoAb9b9) has been prepared by oxidation of the cardohydrate moiety of the enzyme with sodium periodate. The conjugate (GO-MoAb9b9) thus obtained retained both antigen-binding capacity and enzymatic activity. The fate of the conjugate in vivo after intravenous injection was studied using conjugates containing radiolabeled enzyme. GO-MoAb9b9 was specifically accumulated in rat lungs upon in vivo administration, as compared with free enzyme and nonimmune IgG-conjugated glucose oxidase. The specificity of the conjugate accumulation expressed as the localization ratio (the ratio between radioactivity of gram tissue to that of blood) (Loc. Ratio) reached a value up to 50 on the second day after injection, in contrast to native enzyme and to IgG-conjugated enzyme (Loc. Ratio was less than 0.5 for both preparations). The Loc. Ratio of GO-MoAb9b9 was even higher than that of the original antibody MoAb9b9 and was equal to 20, which is probably explained by an extremely rapid blood clearance of the conjugate from the circulation. The administration of excess free MoAb9b9 dramatically inhibited the conjugate targeting in the lung without any effect on liver uptake. At doses ranging from 10 to 1,000 micrograms/rat, the conjugate was accumulated in the lung without saturation of the antigen determinants of the target. At minimal doses, the efficiency of targeting achieved 5 to 7% of the conjugate injected. With elevation of the dose, the efficiency of targeting decreased to 2.5% of the injected dose (1 mg of GO-MoAb9b9 per rat). A sixfold greater accumulation of unmodified radiolabeled MoAb9b9 compared with the GO-MoAb9b9 conjugate in rat lung has been observed, though the kinetics of desorption from the target organ was similar for both the antibody and the conjugate. In the bloodstream, the conjugate persisted for at least 5 days without binding to blood cells; all circulating radioactivity was associated with proteins. A considerable part of the conjugate (to 50%) circulated as a tight antibody-enzyme complex for several days. The conjugate retained its antigen-binding capacity for at least 24 h; during this period, its enzymatic activity decreased by less than 40%. The results obtained provide the experimental ground for further attempts to apply glucose oxidase conjugates for local modulation of inflammation and elimination of the target cells.

Animals↗

Radioimmunoimaging of lung vessels: an approach using indium-111-labeled monoclonal antibody to angiotensin-converting enzyme.

A murine monoclonal antibody against human angiotensin-converting enzyme was radiolabeled with 111In via diethylenetriaminepentaacetic acid without substantial loss of antigen-binding capacity. This monoclonal antibody designated 9B9 cross-reacted with rat and monkey angiotensin-converting enzyme. Indium-111-labeled 9B9 selectively accumulated 10-20 times greater in the lung than in blood or other organs following intravenous administration in rats. Kinetics of lung accumulation and blood clearance were studied for 111In-9B9-antibody and compared to that of 125I-labeled 9B9 in rat. Highly specific accumulation of 111In-9B9-antibody in the lung of Macaca Rhesus monkeys after intravenous injection was monitored by gamma-imaging. Images of 111In-labeled antibody 9B9 biodistribution in monkey lung noticeably differ from the images of biodistribution of 99mTc-labeled albumin microspheres. This difference may provide information concerning the state of the endothelium of lung capillaries, which is different from the blood flow characteristics determined with routine microsphere technique.

Animals↗

Specific killing of human endothelial cells by antibody-conjugated glucose oxidase.

Conjugates of antibody with glucose oxidase obtained via the carbohydrate moiety of the enzyme via oxidation with periodate are suggested as a tool for selective killing of the target cell. The conjugate was separated from uncoupled enzyme by repeated precipitation with ammonium sulfate (42% saturation). Purity of the conjugate was estimated by gel filtration on Toya Pearl TP-65. The glucose oxidase conjugated with rabbit antibody against mouse IgG bound specifically to plastic-adsorbed mouse immunoglobulins and to cultured human endothelial cells pretreated with mouse anti-endothelial antiserum. Glucose oxidase targeted to the cells generates hydrogen peroxide in the presence of glucose. This hydrogen peroxide killed the endothelial cells even in the absence of a halide-peroxidase system and in the presence of catalase. Features of the conjugate (specificity, effective cytotoxicity, high stability) make it suitable for prospective in vivo application and for immunoselective segregation of heterogeneous cell populations.

Animals↗

Blood clearance of radiolabeled antibody: enhancement by lactosamination and treatment with biotin-avidin or anti-mouse IgG antibodies.

Methods of rapid blood clearance of 111In-labeled mouse monoclonal antibody 9B9 against angiotensin-converting enzyme were studied. Indium-111-9B9 is specifically accumulated in rat lung, but its blood clearance is relatively slow and target-to-blood radioactivity ratio/g tissue (localization ratio) increases from 11 to 30 only 48 hr postinjection. Injection of second (anti-mouse immunoglobulin) antibodies results in slight (1.8-fold) increase of 9B9 localization ratio. Chemical modification of 9B9 aminogroups with lactose results in enhanced liver uptake and rapid blood clearance of antibody. Blood radioactivity level decreases tenfold, and as a result localization ratio increases threefold (up to 38 in 30 min). Injection of avidin following the injection of biotinylated 9B9 results in rapid clearance of blood radioactivity with increased uptake in liver and spleen. Lung uptake is not changed. Localization ratio increases fivefold over the avidin-untreated animal value. Implications of these approaches for various applications in immunoimaging are discussed.

Animals↗

Protection of cultured endothelial cells from hydrogen peroxide-induced injury by antibody-conjugated catalase.

The cytoprotective features of catalase-antibody conjugate prepared by covalent conjugation of catalase to rabbit antibody against mouse IgG is described. The bifunctional cross-linking agent m-maleimidobenzoic acid N-hydroxysuccinimide ester (MBS) was used for conjugation. Functionally active conjugate binds specifically to the plastic-adsorbed mouse IgG and to the surface of live human endothelial cells treated with mouse antiserum against human endothelial cells. Up to 4 units of catalase activity can bind to 1 cm2 of the endothelial monolayer. The targeted catalase protects endothelial cells from cytotoxic action of hydrogen peroxide: the minimal cytotoxic concentration of H2O2 for protected cells is 80-times higher than for intact cells. This effect is attributed partly to local reduction of H2O2 concentration in the cell microenvironment. Targeted catalase was estimated to reduce H2O2 concentration 8-fold near the cell surface with respect to average total concentration.

Antibodies↗