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Biomedical subjects

I Kolosova

Publications and source records attributed to I Kolosova.

12 recordsLinked to original sources

Diverse effects of vascular endothelial growth factor on human pulmonary endothelial barrier and migration.

Increased endothelial permeability is involved in the pathogenesis of many cardiovascular and pulmonary diseases. Vascular endothelial growth factor (VEGF) is a permeability-increasing cytokine. At the same time, VEGF is known to have a beneficial effect on endothelial cells (EC), increasing their survival. Pulmonary endothelium, particularly, may be exposed to higher VEGF concentrations, since the VEGF level is the higher in the lungs than in any other organ. The purpose of this work was to evaluate the effects of VEGF on barrier function and motility of cultured human pulmonary EC. Using transendothelial resistance measurements as an indicator of permeability, we found that 10 ng/ml VEGF significantly improved barrier properties of cultured human pulmonary artery EC (118.6+/-0.6% compared with 100% control, P<0.001). In contrast, challenge with 100 ng/ml VEGF decreased endothelial barrier (71.6+/-1.0% compared with 100% control, P<0.001) and caused disruption of adherens junctions. VEGF at both concentrations increased cellular migration; however, 10 ng/ml VEGF had a significantly stronger effect. VEGF caused a dose-dependent increase in intracellular Ca2+ concentration; however, phosphorylation of myosin light chain was detectably elevated only after treatment with 100 ng/ml. In contrast, 10 ng/ml but not 100 ng/ml VEGF caused a significant increase in intracellular cAMP (known barrier-protective stimulus) compared with nonstimulated cells (1,096+/-157 and 610+/-86 fmol/mg, respectively; P<0.024). Y576-specific phosphorylation of focal adhesion kinase was also stimulated by 10 ng/ml VEGF. Our data suggest that, depending on its concentration, VEGF may cause diverse effects on pulmonary endothelial permeability via different signaling pathways.

Adherens Junctions↗

Effects of deletions of kelch-like genes on cowpox virus biological properties.

Cowpox virus (CPXV) strain GRI-90 contains six genes encoding kelch-like proteins. All six proteins contain both, the N-terminal BTB domain and the C-terminal kelch domain. We constructed mutant variants of a CPXV strain with targeted deletions of one to four genes of the kelch family, namely D11L, C18L, G3L, and A57R. As kelch genes are located in terminal variable regions of the CPXV genome, we studied the relationship of these genes with integral biological characteristics such as virulence, host range, reproduction in vitro and in ovo (in chicken embryos). It was demonstrated that the following effects occurred in a gene dose dependent manner with an increase of the number of genes deleted: (1) range of sensitive cells altered--deletion mutants lacking three genes displayed a considerably decreased ability to reproduce in MDCK cells; mutants lacking four genes lost this ability completely; (2) analysis of pocks formed by mutants with deletion of three and four kelch-like genes on chorioallantoic membranes of chicken embryos demonstrated that pock size and virus yield were significantly decreased; (3) light microscopic analysis of the pocks revealed impaired proliferation and reduced vascularisation in the pock region. More alterations were detected by electron microscopic analysis: the reproduction of mutants results in a reduction of the number of mature virions formed, and in many cells this process was arrested at the stage of assembly of immature virions; and (4) the evaluation of LD(50) and body weight loss in BALB/c mice infected intranasally with CPXVs revealed a reduction of the virulence of the deletion mutants, which became statistically significant when four kelch-like genes were excised.

Animals↗

A stage-specific preparation to study the Ca(2+)-triggered fusion steps of exocytosis: rationale and perspectives.

Despite groundbreaking work to identify numerous proteins and to focus attention on molecular interactions, the mechanism of calcium-triggered membrane fusion remains unresolved. A major difficulty in such research has been the many overlapping and interacting membrane trafficking steps in the secretory pathway, including those of membrane retrieval. Identifying the specific role(s) of a given protein, beyond its general involvement in exocytosis, has therefore proven problematic. Furthermore, the power of time-resolved optical and electrophysiological assays can be best applied to testing the function of known proteins rather than to the identification of unknown, critical membrane components. The identification of essential membrane constituents requires combined biochemical (molecular) and functional (physiological) analyses. A fully functional, stage-specific physiological membrane preparation would be one direct approach to dissecting the calcium-triggered fusion steps of regulated exocytosis. Herein we review our use of specific minimal membrane preparations consisting of fully primed and docked secretory vesicles, or the isolated vesicles themselves, and characterize the late events of exocytosis, with an aim towards identification of essential molecular components. We have established a functional definition of the fusion complex and its activation by calcium, based on our kinetic analyses. Together with a variety of biochemical and alternate functional assays, we have tested whether the SNARE core complex that is present in our vesicle membranes satisfies the criteria of the functionally defined fusion complex. Rather than a direct fusogenic role, the SNARE complex may promote the calcium sensitivity of fusion, possibly by defining or delimiting a localized, focal membrane fusion site that ensures rapid and efficient exocytosis in vivo.

Animals↗

Towards a quantitative free flow electrophoresis and its application to particle size separations.

The possibility to quantify free-flow electrophoresis (FFE) data was explored in application to 6 negatively charged polystyrene size standards in the size range of 73 to 762 nm diameter. Peak fraction numbers in FFE were shown to be proportional to mobilities of the particles, determined by capillary zone electrophoresis in the identical buffer. Standard deviations of peak fraction numbers demonstrate a high degree of intra-experimental reproducibility while inter-experimentally, a variability of 1 to 5 peak fraction numbers within 28 fractions was found. A relative mobility (Rf) scale for peak identification in FFE based on the free mobility of the dye, SPADNS, allowed for the utilization of the entire electrophoretic migration path but failed to improve the precision of fraction numbers in view of the substantial zone spreading of the dye. Mobility differences between particles increased upon lowering the ionic strength of the electrophoretic buffer. Peak width increased with particle size in inverse relation to ionic strength.

Buffers↗

PhastSystem electrophoresis in beta-octylglucoside containing gels with immunodetection of a nondenatured vesicle-associated membrane protein.

Recombinant vesicle-associated membrane protein (rVAMP), implicated as a participant in membrane exocytosis and fusion (a "SNARE protein"), was subjected to gel electrophoresis in the miniaturized gels of the PhastSystem (Pharmacia) containing the nondenaturing, nonionic detergent beta-octylglucoside (OG), followed by immunodetection of the protein. Three major components of nondenatured rVAMP are detected by Western blotting both in 0.5% OG and in the absence of detergent. Their separation increases with increasing gel concentration above 7%T. Ferguson plot analysis indicates that the three species of VAMP are size isomers (i.e., they differ in size but share a common surface net charge density), the common point of intersection of the plots (mu-point) being a measure of their common free mobility. By the criteria of size and free mobility (related to surface net charge), VAMP components I, II and III in 0.5% OG-containing buffer are indistinguishable from components II, III and IV, respectively, observed in the absence of the detergent. The feasibility of immunodetection of nondenatured rVAMP on gels containing nondenaturing detergents opens up the possibility of gaining biochemical information regarding nondenatured SNARE protein complexes and SNARE proteins linked to membrane fragments.

Animals↗

Evidence for endogenous C1q modulates TNF-alpha receptor synthesis and autocrine binding of TNF-alpha associated with lipid A activation of murine macrophages for nitric oxide production.

The role of endogenously synthesized complement subcomponent C1q on autocrine binding of tumor necrosis factors (TNF-alpha) and on TNF-alpha receptor (TNF-R) mRNA synthesis by mouse macrophages was investigated. Activation of C3H mouse peritoneal macrophages (C3H-PM phi) by Lipid A induced TNF-alpha and nitric oxide (NO) to kill tumor targets. Such activation also increased macrophage-endogenous C1q synthesis and secretion in a dose-dependent fashion. Antibody for C1q markedly inhibited C3H-PM phi NO production in response to Lipid A, but had no effect on TNF-alpha production. C3H-PM phi treated with C1q or Lipid A displayed increased TNF-R mRNA synthesis and in combination with Lipid A and anti-C1q antibody inhibited TNF-R and nitric oxide synthase (NOS) mRNA synthesis compared with Lipid A only, but had no effect on TNF mRNA synthesis. In vitro treatment of C3H-PM phi with C1q also increased TNF-alpha binding to their surfaces. Taken together, the data indicate that endogenously synthesized C1q is operative in promoting TNF-R mRNA synthesis and resultant autocrine binding of TNF-alpha for induction of NOS in the process of NO-mediated tumor cytotoxicity by Lipid A-activated macrophages.

Adjuvants, Immunologic↗

Autocrine induction of macrophage synthesis of complement subcomponent C1q by endogenous interferon-alpha/beta.

Peritoneal macrophages (M phi) constitutively synthesize and secrete interferon-alpha (IFN-alpha) and IFN-beta, as well as complement subcomponent C1q. Because exogenous interferon-gamma (IFN-gamma) stimulates Mø synthesis of C1q, our purpose was to determine if endogenous secretion of IFN-alpha/beta regulated the constitutive level of endogenous C1q mRNA synthesis in an autocrine fashion. Both exogenous IFN-alpha and IFN-beta effectively substituted for IFN-gamma in stimulating M phi C1q mRNA expression in a dose-dependent fashion by northern blot analysis. Neutralizing anti-INF-alpha/beta antibodies inhibited M phi constitutive C1q mRNA synthesis by approximately twofold and abrogated the feedback stimulatory effects of exogenous C1q on C1q mRNA expression. Paraffin oil-elicited inflammatory M phi displayed distinctively different constitutive levels of C1q mRNA expression from thioglycollate brothelicited M phi, which was correlated with their relative levels of secretory IFN-alpha/beta by ELISA. Exogenous IFN-alpha/beta also restored C1q mRNA synthesis of AKR mouse M phi with low constitutive C1q mRNA expression. The cumulative results support the concept that constitutive synthesis of C1q by M phi is regulated by the endogenous synthesis and secretion of IFN-alpha/beta, which appears to act in an autocrine fashion.

Animals↗

Stimulation of macrophage synthesis of complement C1q by interferon-gamma mediated by endogenous interferon-alpha/beta.

Both exogenous interferon-gamma (IFN-gamma) and interferon-alpha/beta (IFN-alpha/beta) stimulate C1q mRNA synthesis in murine macrophages. Previous studies suggested that IFN-gamma induced endogenous synthesis of IFN-alpha/beta by murine macrophages. In the present study, we determined the indirect effect of IFN-gamma on macrophage synthesis of C1q mRNA mediated by endogenous IFN-alpha/beta production. Upregulation of macrophage synthesis of C1q mRNA by both IFN-gamma and IFN-alpha/beta was reversed by neutralizing antibody to IFN-alpha/beta but not by nonimmune control serum. IFN-gamma was confirmed by ELISA to stimulate a six- to eightfold increase in macrophage secretion of IFN-alpha/beta compared with untreated control cells. We tentatively conclude that IFN-gamma stimulates macrophage synthesis and secretion of IFN-alpha/beta, which in turn promotes C1q mRNA synthesis in an autocrine or paracrine manner. Thus, exogenous IFN-gamma, derived from activated T lymphocytes, may act primarily on the macrophage to stimulate the endogenous synthesis of IFN-alpha/beta for autocrine modulation of a variety of biologic functions, including C1q synthesis.

Animals↗

mRNA stabilization in continuous flow translation system.

In contrast with standard in vitro translation systems, where 1 to 2 copies of polypeptide per mRNA molecule are produced, the continuous flow cell-free translation system is able to synthesize hundreds of polypeptide molecules per one mRNA molecule. Our investigations have shown that the poor yield obtained in the standard analytical system is due to rapid mRNA decay as opposed feedback inhibition by low molecular weight translation by products. In contrast, continuous flow system was found to stabilize mRNA for up to two-three days. RNAse activity can not be removed from wheat germ extract unless mRNA is added and compartmentalization of the translational machinery occurs.

Cell-Free System↗

Inward potassium transport systems in skeletal muscle derived cells are highly sensitive to oxidant exposure.

Strenuous physical exercise causes a remarkable perturbation of K+ homeostasis in skeletal muscle tissue. Potassium efflux is crucial for a number of physiological control processes; however, exercise-induced perturbation of K+ homeostasis in skeletal muscle is suggested to be implicated in the generation of muscle fatigue. Physical exercise is also known to induce oxidative stress; a possible contribution of oxygen free radicals to the development of muscle fatigue has been hypothesized. To reveal the dose-dependent effect of oxidant exposure on inward and outward K+ (86RbCl) transporting systems, skeletal muscle derived L6 cells were treated with different concentrations of tert-butylhydroperoxide (TBOOH). We document the responses of (1) the ouabain-sensitive component of K+ influx (Na+,K+ pump), (2) bumetanide-sensitive ouabain-insensitive component of K+ influx (Na+,K+, 2Cl- cotransporter), (3) ouabain- and bumetanide-insensitive component of K+ influx (passive permeability of the cell membrane to inward K+), (4) ouabain-insensitive component of K+ efflux, and (5) passive leakage component of K+ efflux following exposure of L6 cells to oxidant treatment. Even very low doses of TBOOH (25 mumol) caused powerful activation of the Na+,K+ pump. Following TBOOH treatment, activity of the Na+,K+,2Cl- cotransporter was remarkably inhibited. Such a treatment also significantly decreased the permeability of the cell membrane to inward flux of K+ (passive influx). Thus, we observed that even very low doses of oxidant had remarkable specific effects on the different components of K+ influx in the skeletal muscle derived cells. However, K+ efflux mechanisms appeared to be rather insensitive to the extracellular oxidant challenge.

Dose-Response Relationship, Drug↗

Exogenous interferon-gamma induces endogenous synthesis of interferon-alpha and -beta by murine macrophages for induction of nitric oxide synthase.

Murine macrophages (M phi) are activated either by interferon-gamma (IFN-gamma) or interferon-alpha/beta (IFN-alpha/beta) in combination with bacterial lipopolysaccharide (LPS) to induce synthesis of tumor necrosis factor alpha (TNF-alpha) and nitric oxide synthase (iNOS) mRNA synthesis for generation of tumor cytotoxic nitric oxide (NO). In the present study, the effect of exogenous IFN-gamma on the induction of endogenous mRNA synthesis and secretion of IFN-alpha/beta by murine M phi was investigated. Neutralizing antibodies to IFN-alpha/beta reversed TNF-alpha and NOS mRNA synthesis, as well as nitric oxide (NO)-mediated tumor cytotoxicity. Quantitative reverse transcription polymerase chain reaction (RT-PCR) revealed that treatment of M phi with IFN-gamma induced increases in both IFN-alpha and IFN-beta mRNA synthesis by approximately 2-fold and 10-fold, respectively, which corresponded to a 2-fold increase in secretion of IFN-alpha/beta by ELISA. These data indicate that exogenous IFN-gamma induces endogenous synthesis and secretion of IFN-alpha/beta by M phi, which appears to act in concert with endogenously synthesized TNF-alpha for the autocrine induction of NOS mRNA synthesis.

Animals↗