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R Hofbauer

Publications and source records attributed to R Hofbauer.

At least 55 records · Page 3Linked to original sources

Hydroxyethyl starch reduces the chemotaxis of white cells through endothelial cell monolayers.

BACKGROUND: Polymorphonuclear leukocytes (PMNs) play a tremendous role during inflammatory processes. PMNs have to pass a monolayer of endothelial cells to migrate into the extravascular space. Hydroxyethyl starch (HES) is frequently used as a volume expander in critically ill patients. STUDY DESIGN AND METHODS: The aim of this study was to investigate whether HES influences the chemotaxis of PMNs through endothelial cell monolayers by using a test system that allows the simultaneous treatment of both cell types. Human umbilical endothelial cells were cultured on microporous membrane filters. PMNs were isolated and PMN chemotaxis was studied. RESULTS: The number of untreated PMNs that migrated through untreated endothelial cell monolayers in response to a chemoattractant was used as a control and set as 100 percent. In clinically relevant concentrations, HES was able to significantly decrease PMN chemotaxis through endothelial cell monolayers, showing a dose-dependent effect (0.1 mg/mL: 99.6 +/- 10.9%, p = NS compared to control; 1 mg/mL: 82.4 +/- 8.3%, p<0.05 compared to control; 10 mg/mL: 62.9 +/- 11.7%, p<0.05). In this assay, both cell types (PMNs and endothelial cells in the monolayer) were treated simultaneously, which simulated the clinical situation after an intravenous injection of HES. The treatment of one cell type, PMNs (89.6 +/- 8.8%, p<0.05) or endothelial cells in the monolayer (76.2 +/- 9.4%, p<0.05), suggests that the influence on endothelial cells is greater. CONCLUSION: HES is able to significantly reduce the chemotaxis of PMNs through endothelial cell monolayers. The possible clinical consequence of a moderate reduction in endothelium-mediated PMN chemotaxis in critically ill patients remains to be evaluated.

Adult↗

Amoxycillin/clavulanic acid combinations increase transmigration of leucocytes through endothelial cell monolayers: endothelial cells play a key role.

Postoperative inflammation is still viewed as an unresolved problem. During inflammation, leucocytes play a tremendous role and migrate from intravascular spaces into the tissue to attack microorganisms. Different agents, e.g. anaesthetic drugs, are able to influence leucocyte recruitment. Previous studies have investigated the influence of amoxycillin on chemotaxis of leucocytes alone. The aim of our study was to examine the effect of amoxycillin/clavulanic acid (co-amoxiclav) on leucocyte migration through endothelial cell monolayers (ECMs). Human umbilical endothelial cells were cultured on microporous membranes, achieving a monolayer. Polymorphonuclear neutrophil leucocytes (PMNLs) were used in a migration assay. The numbers of untreated PMNLs migrating through untreated ECMs were used as control and set as 100%. PMNLs and/or ECMs were pretreated with co-amoxiclav using clinically relevant as well as higher and lower concentrations. Co-amoxiclav was able to increase PMNL migration through ECMs significantly (P<0.05) when both cell types were treated (291+/-18.7%). When PMNLs or ECMs were treated alone, it could be shown that ECMs were more affected than PMNLs. The greatest effect was shown when both cell types, PMNLs and ECMs, were treated. In conclusion, co-amoxiclav was identified as a potent drug to increase leucocyte transmigration through ECMs. ECMs were also critically involved. Co-amoxiclav also affects endothelial cells.

Amoxicillin-Potassium Clavulanate Combination↗

The assessment of four different methods to verify tracheal tube placement in the critical care setting.

UNLABELLED: One of the most serious complications of conventional endotracheal intubation is unidentified placement of the tube in the esophagus. The aim of our study was to evaluate four different methods for immediate detection of the tube position: auscultation, capnographic determination of ETCO2, esophageal detection method (EDM) using a self-inflating bulb, and the transillumination method using a lighted stylet (Trachlight; Laerdal, Armonk, NY). Thirty-eight endotracheally intubated patients admitted to our medical intensive care unit were enrolled in the study. A second identical tube was inserted into the esophagus under laryngoscopic control. The endotracheal tube was then disconnected from the ventilator. Two blinded examiners, one experienced, the other inexperienced, determined the tube position within 30 s using one of the four methods. The order of the tubes tested and the methods used were randomized. In 130 of 152 examinations, both examiners correctly diagnosed the position of the tube. The wrong result was obtained by both examiners 4 times; only the experienced examiner was wrong 4 times, and only the inexperienced examiner was wrong 14 times. Using ETCO2, both examiners were correct in all cases. Auscultation showed an obvious relation to the examiner's experience: the experienced examiner was correct in all cases, the inexperienced examiner was correct in only 68% of cases. Using the self-inflating bulb, there were two wrong results of the experienced examiner and one wrong result of the inexperienced examiner. The transillumination technique was associated with a high error rate by both examiners (16% and 13%, respectively). Comparing all four methods showed that capnography is superior to auscultation (P = 0.0005) and to the Trachlight detection method (P = 0.0078). EDM was not statistically superior to auscultation and transillumination. Capnography was the most reliable method for rapid evaluation of tube position, followed by EDM, whereas auscultation and Trachlight did not seem to be of comparable value. Experience was a determining factor for auscultation. IMPLICATIONS: To prevent unidentified esophageal intubation, a serious complication in the critical care setting, four methods for detecting tube position were tested by two examiners (one experienced, the other inexperienced) in endotracheally intubated patients after insertion of a second tube into the esophagus.

Adult↗

Propofol reduces the migration of human leukocytes through endothelial cell monolayers.

OBJECTIVE: To test propofol and the solvent of propofol on leukocyte function in the presence of endothelial cell monolayers. The interactions of leukocytes with endothelial cells play a tremendous role during inflammation. Previous studies have investigated the influence of propofol on leukocytes. DESIGN: Prospective, controlled study. SETTING: University research laboratories. SUBJECTS: Seven independent experiments were performed to investigate the influence of propofol (0.4, 4, and 40 ng/mL) on the migration of human leukocytes through human endothelial cell monolayers. Moreover, the authors tested the solvent of propofol on leukocyte migration. INTERVENTIONS: Human endothelial cell monolayers and/or human leukocytes were preincubated with clinically relevant higher and lower concentrations of propofol. The amount of leukocyte migration after 3 hrs was measured with a fluorometer. MEASUREMENTS AND MAIN RESULTS: Human endothelial cells isolated from umbilical veins were cultured on microporous membranes until they formed an endothelial cell monolayer. Leukocytes were separated by standard procedures. The migration of leukocytes through monolayers of endothelial cells using the clinically relevant concentration of propofol was reduced to 93% +- 3.8% (so; p < .05) when the leukocytes but not the endothelial cell monolayers were preincubated with propofol. Leukocyte migration was reduced to 80% - 5.9% (p < .05) when only monolayers of endothelial cells were treated with propofol, and was reduced to 73% + 10.4% (p < .05) when both leukocytes and monolayers of endothelial cells were treated with propofol. The higher and lower concentrations showed a dose-dependent effect. The solvent of propofol had no significant effect. CONCLUSION: The authors investigated the influence of propofol and its solvent on the interaction between both cell systems-leukocytes and endothelial cells. Propofol is able to reduce significantly the migration of leukocytes through endothelial cell monolayers. The use of different doses revealed a dose-dependent effect. The current model allowed treatment of one cell type: leukocyte or endothelial cell. The results of this investigation indicate that the influence of propofol on leukocyte migration affects endothelial cells more than leukocytes.

Anesthetics, Intravenous↗

Meloxicam effect on leukocyte migration under shear stress: a new perfused triple chamber (Hofbauer chamber) assay simulating an in vitro vascular wall.

BACKGROUND: Leukocyte migration plays a tremendous role during inflammation. Different drugs are able to influence migration of leukocytes. Several authors have attempted to establish methods for investigation of leukocyte migration. Migration of leukocytes under conditions simulating natural blood flow and shear stress is poorly understood. Moreover, leukocyte migration in the simultaneous presence of endothelial cells and smooth muscle cells (SMC) has not yet been examined thoroughly. The aim of the current study was to create a new three-dimensional assay investigating migration during simulated perfusion. The assay was used for investigating the effect of meloxicam on leukocyte migration under shear stress. METHODS: Different concentrations of meloxicam (0.09, 0.9, and 9.0 ng/mL) were used in a newly developed triple migration chamber system for investigation of leukocyte migration (n = 7). This new system allows inclusion of SMC-layers. Assay precision tests were done using intra-assay (within-day variability) and interassay (day-to-day variability) controls. RESULTS: Intra-assay and interassay controls showed reliable results (coefficient of variation: intra-assay 8.53%; interassay 11.39%). Meloxicam in a clinically relevant concentration of 0.9 ng/mL was able to reduce the migration of leukocytes under shear stress (71 +/- 14% SD; P < 0.05), whereas higher and lower concentrations showed a dose dependent effect. CONCLUSION: This new perfusion system allows investigation of drugs, such as meloxicam, on leukocyte migration under shear stress. Moreover, this assay may be used for studies on other cell-cell interactions, as well as on drug influences.

Adult↗

The immune system and the effects of non-volatile anesthetics on neutrophil transmigration through endothelial cell monolayers.

Inflammation represents the consequence of capillary dilation with accumulation of fluid and transmigration of leukocytes into the surrounding tissue. Leukocytes play a major role in the defense system of the body against invading microorganisms. This defense system has a non-specific branch consisting of granulocytes and macrophages and a specific branch of lymphocytes. Granulocytes release cytotoxic compounds from their intracellular granules into their local environment when encountering microorganisms. This random destruction happens rapidly, but it may also harm healthy tissue of the body. Leukocytes patrol the body by circulating through the blood and lymphatic system ensuring a continuous surveillance which is a prerequisite for an efficient defense. Upon tissue damage and inflammation, leukocytes are recruited from the blood to sites of injury, and this trafficking displays exquisite specificity. In the late 1890 s, Metchnikoff noted the power of certain blood cells to move towards microorganisms and ingest them. In fact, leukocytes adhere to the endothelium of the blood vessels, and subsequently leave the circulation by transmigration through the intercellular junctions of the endothelial cell monolayer. Transmigration is driven by chemoattractants, a process known as diapedesis. Reversible adherence of leukocytes to the endothelium, basement membranes, and other surfaces is an essential event in the establishment of inflammation, whose molecular basis is beginning to be understood. Inflammation may become chronic in many pathophysiologic processes and disease states. In long-term mechanically ventilated critically ill patients, non-volatile anesthetics are needed over a prolonged time period. Perioperative infections are a major cause of morbidity and mortality in critically ill patients. Therefore, the influence of non-volatile anesthetics and opioid agents on the immune system is of high interest. After presentation of the different effectors of the immune system and their fluxes through the body, the aim of this review is to propose a general model of leukocyte transmigration through endothelial cell monolayers. It emphasizes in which way different non-volatile anesthetic drugs may affect the non-specific branch of the immune system, i.e. the leukocyte transmigration through endothelial cell monolayers.

Anesthetics↗

Thiopental inhibits migration of human leukocytes through human endothelial cell monolayers in vitro.

OBJECTIVES: The interactions between blood and vascular wall cells are essential for the understanding of pathophysiologic processes, e.g. inflammation. The influence of the anesthetic drug thiopental on leukocyte function is well documented. Recently, an inhibitory effect of thiopental on leukocyte chemotaxis in a Boyden chamber assay (i.e. endothelial cells were not included) was demonstrated. In vivo, leukocytes have to interact with endothelial cell monolayers to invade the tissue. The influence of thiopental on a monolayer of endothelial cells has not yet been investigated. The aim of the current study was to investigate the influence of thiopental on the migration of leukocytes through endothelial cell monolayers (ECM). MATERIAL AND METHODS: Human umbilical vein endothelial cells (HUVEC) were isolated and cultured on microporous membrane filters to achieve a monolayer. Isolated polymorphonuclear leukocytes (PMNL) as well as ECM were preincubated with different concentrations of thiopental. The rate of leukocyte migration against the chemotactic protein formyl-methyl-leucyl-phenylalanine was measured (n = 7). Thiopental was able to reduce the amount of leukocyte migration through ECM significantly. CONCLUSION: In conclusion, we could show that thiopental is able to reduce the migration of PMNL through ECM significantly.

Adult↗

Ibuprofen inhibits leukocyte migration through endothelial cell monolayers.

During inflammation leukocytes are playing a tremendous role in the defense against bacterial infections. Tumor necrosis factor alpha (TNF alpha) increases adhesion of leukocytes to endothelial cells. The non steroidal anti-inflammatory drug ibuprofen is able to reduce inflammatory processes in humans and is a widely used drug. The influence of ibuprofen on TNF-alpha-induced expression of adhesion molecules on endothelial cells is well investigated and has been published recently by our group. For leukocyte migration, leukocytes have to attach and finally migrate through monolayers of endothelial cells. The aim of the current study was to investigate leukocyte migration through endothelial cell monolayers (ECM) under ibuprofen using a migration assay system. Ibuprofen was identified as a potent inhibitor of the leukocyte migration through endothelial cell monolayers in a dose dependent manner. The treatment of either leukocytes (87 +/- 17.6 %; p>0.05) or endothelial cell monolayers (62.5 +/- 9.4 %; p<0.05) showed that the influence is more mediated through endothelial cells, the treatment of both cell types demonstrated an additive effect. In conclusion, the previously published changes of adhesion molecules on endothelial cells could be confirmed with this functional migration test. The inhibition of the leukocyte migration may contribute to the anti-inflammatory actions of the drug.

Anti-Inflammatory Agents, Non-Steroidal↗

Human endothelial cells do not exert heparin like accelerating effects on thrombin-antithrombin-complex formation.

In the present study the formation of thrombin-antithrombin-complexes (TAT) during incubation of thrombin (0.89, 4.5, 8.9 nmol/l) and antithrombin (4.6 micromol/l) on the surface of cultured human EC, derived from different parts of the circulation, and on the surface of human vessel segments was studied. In the absence of EC TAT increased over time reaching a maximum at 60 sec; 10 sec (8.9 nmol/l thrombin): 6.35+/-0.72 nmol/l, 60 sec: 10.49+/-1.04 nmol/l. In the presence of exogenous heparin (0.1 IU/ml) maximum TAT levels were already reached after 10 sec (10.75+/-0.97); cultured EC and EC on vessel segments did not show such heparin effects. Incubation of EC with heparin resulted in an EC-surface localized heparin activity only when very high doses (3.0 IU/ml) of the drug were used. When thrombin was incubated on the EC surface in the presence of AT the efficiency of the thrombomodulin(TM)-protein C(PC)-system was markedly reduced, while in the presence of exogenous heparin (0.5 IU/l) the activity of this pathway was nearly abolished. Our results demonstrate that 1) human EC do not exert heparin-like accelerating effects on TAT formation, 2) an EC localized heparin activity is only generated when EC are incubated with amounts clearly exceeding therapeutical doses, and 3) an acceleration of TAT formation at the EC surface by heparin causes a switching off of the TM-PC-system.

Anticoagulants↗

Leukocyte migration: a new triple migration chamber assay allows investigation of various cell interactions simultaneously.

Examination of the interactions between various cells of the vascular wall and blood components are essential for understanding different pathophysiological processes. Such investigations require appropriate techniques. Several groups have attempted to establish different methods. In all blood vessels except capillaries, endothelial cells (EC) and smooth muscle cells (SMC) coexist and interact very closely. The current study describes a new 3-dimensional triple chamber migration assay, studying leukocyte migration through human endothelial cell monolayers (ECM) towards human SMC layers simultaneously. To test the new assay, SMC-layers were prestimulated with different concentrations of tumor necrosis factor alpha (TNF-alpha, 1 ng/ml, 10 ng/ml, 100 ng/ml) over 6 hours. Then, two microporous membranes, a collecting membrane and a third membrane with cultured ECM, were inserted. Freshly isolated peripheral blood mononuclear cells (PBMNC) were seeded on the ECM and transmigrated cells were measured after further 3 hours incubation. The migration against non stimulated SMC-layers was used as control. Prestimulated SMC-layers led to a dose dependent increase of PBMNC migration into the subendothelial cell space. Antibodies against interleukin-1 reduced the PBMNC migration. In conclusion, this assay allows to study cell migration into the subendothelial space and interactions between different vascular cells. Moreover, this assay can also be used for studies on other cell-cell interactions in man.

Cell Migration Inhibition↗

Sufentanil inhibits migration of human leukocytes through human endothelial cell monolayers.

UNLABELLED: The interactions between blood and vascular wall cells are essential for understanding pathophysiological processes, e.g., during inflammation. The influence of anesthetics on leukocyte function is well documented. An inhibitory effect of thiopental, midazolam, and ketamine on leukocyte chemotaxis in a Boyden chamber chemotaxis assay (i.e., endothelial cells were not included) has been demonstrated. Little is known, however, about the influence of sufentanil on the inflammatory processes. To reach their targets in the tissue in vivo, leukocytes must interact with endothelial cell monolayers (ECMs). The aim of the current study was to investigate the influence of sufentanil on the migration of leukocytes through an ECM. Human umbilical vein endothelial cells were cultured to achieve a monolayer. Isolated polymorphonuclear leukocytes and ECM were preincubated with different concentrations of sufentanil. The rate of leukocyte migration against the chemotactic protein formyl-methyl-leucyl-phenylalanine was measured (n = 7). Sufentanil significantly reduced the amount of leukocyte migration through ECM to 77%+/-7.8% (P < 0.05 compared with control). Endothelial cells as well as leukocytes contributed to this effect: treatment of both cell types showed an additive effect. Although lower concentrations showed no effect, high concentrations reduced leukocyte migration through ECM to 61%+/-7.1%. IMPLICATIONS: Leukocytes play an important role during inflammation, and anesthetics influence leukocyte functions, e.g., respiratory burst or chemotaxis. The effect of sufentanil on transendothelial leukocyte migration has not been investigated. Therefore, we used a migration assay including endothelial cell monolayers. Sufentanil showed a reducing effect on transendothelial leukocyte migration.

Adult↗

Ketamine significantly reduces the migration of leukocytes through endothelial cell monolayers.

OBJECTIVE: To study the role of neutrophils in host defense, using human endothelial cells in migration studies in the presence of ketamine (0.3, 3, and 30 microg/mL). DESIGN: Prospective, controlled study. SETTING: University research laboratories. SUBJECTS: Seven independent experiments from different donors were done, investigating the influence of ketamine (0.3, 3, and 30 microg/mL) to the migration of human leukocytes through human endothelial cell monolayers. INTERVENTIONS: Human endothelial cell monolayers and/or human leukocytes were preincubated with clinically relevant (3 microg/mL), higher (30 microg/mL), and lower (0.3 microg/mL) concentrations of ketamine. The amount of leukocyte migration after 3 hrs was measured in a fluorometer. MEASUREMENTS AND MAIN RESULTS: Human endothelial cells isolated from umbilical veins were cultured on microporous membranes (polyethylene-terephthalat membranes) until they formed an endothelial cell monolayer. Leukocytes were separated by standard procedures. The migration of leukocytes through monolayers of endothelial cells under the clinically relevant concentration of ketamine was reduced to 59+/-9.8% (SD) (p< .05) when leukocytes but not the endothelial cell monolayers were preincubated with ketamine. Leukocyte migration was reduced to 92+/-7.3% (p > .05) when only monolayers of endothelial cells were treated with ketamine, and to 52+/-8.8% (p< .05) when both leukocytes and monolayers of endothelial cells were treated with ketamine. The higher and lower concentrations showed a dose-dependent effect. CONCLUSIONS: We investigated the cellular interaction between both cell systems, leukocytes and endothelial cells, simultaneously in the presence of ketamine. Ketamine is able to reduce significantly the migration of leukocytes through endothelial cell monolayers. The use of different dosages revealed a dose-dependent effect. The current model allowed treatment of one cell type, either leukocyte or endothelial cell. Ketamine inhibits the function of leukocytes more than the function of endothelial cells.

Anesthetics, Dissociative↗

The c-kit ligand stem cell factor and anti-IgE promote expression of monocyte chemoattractant protein-1 in human lung mast cells.

Recent data suggest that mast cells (MC) are involved in the regulation of leukocyte accumulation in inflammatory reactions. In this study, expression of leukocyte-chemotactic peptides (chemokines) in purified human lung MC (n = 16) and a human mast cell line, HMC-1, was analyzed. Northern blotting and reverse transcriptase-polymerase chain reaction (RT-PCR) showed baseline expression of monocyte chemoattractant protein (MCP)-1 mRNA in unstimulated MC. Exposure of MC to recombinant stem cell factor (rhSCF, 100 ng/mL) or anti-IgE (10 microgram/mL) was followed by a substantial increase in expression of MCP-1 mRNA. Neither unstimulated nor stem cell factor (SCF )-stimulated lung MC expressed transcripts for interleukin-8 (IL-8), macrophage inflammatory protein-1alpha (MIP-1alpha), MIP-1beta, or RANTES by Northern blotting. The mast cell line HMC-1, which contains a mutated and intrinsically activated SCF-receptor, was found to express high levels of MCP-1 mRNA in a constitutive manner. Exposure of HMC-1 cells to rhSCF resulted in upregulation of MCP-1 mRNA expression, and de novo expression of MIP-1beta mRNA. The SCF-induced upregulation of MCP-1 mRNA in lung MC and HMC-1 was accompanied by an increase in immunologically detectable MCP-1 in cell supernatants (sup) (lung MC [<98%], control medium, 1 hour: 159 +/- 27 v SCF, 100 ng/mL, 1 hour: 398 +/- 46 pg/mL/10(6) cells; HMC-1: control, 1 hour: 894 +/- 116 v SCF, 1 hour: 1,536 +/- 265 pg/mL/10(6)). IgE-dependent activation was also followed by MCP-1 release from MC. MC-sup and HMC-1-sup induced chemotaxis in blood monocytes (Mo) (control: 100% +/- 12% v 2-hour-MC-sup: 463% +/- 38% v HMC-1-sup: 532% +/- 12%), and a monoclonal antibody (MoAb) to MCP-1 (but not MoAb to IL-8) inhibited Mo-chemotaxis induced by MC-sup or HMC-1-sup (39% to 55% inhibition, P < .05). In summary, our study identifies MCP-1 as the predominant CC-chemokine produced and released in human lung MC. MCP-1 may be a crucial mediator in inflammatory reactions associated with MC activation and accumulation of MCP-1-responsive leukocytes.

Antibodies, Anti-Idiotypic↗

Molecular and functional characterization of the urokinase receptor on human mast cells.

The urokinase receptor system is involved in several biological processes including extracellular proteolysis, cell invasion, and chemotaxis. Mast cells are multifunctional perivascular cells that play an important role in the regulation of microenvironmental events. We report that primary human mast cells and the human mast cell line HMC-1 express the receptor for urokinase. As assessed by Northern blotting and reverse transcription polymerase chain reaction technique, purified human lung mast cells and HMC-1 cells expressed urokinase receptor mRNA in a constitutive manner. Using a toluidine blue/immunofluorescence double staining technique and monoclonal antibodies, surface expression of urokinase receptor was demonstrable in lung, skin, uterus, heart, and tonsil mast cells, whereas the low density lipoprotein receptor-related protein was not detectable. Binding of monoclonal antibody VIM5 (recognizing the urokinase binding domain of urokinase receptor) to HMC-1 could be blocked by high molecular weight but not low molecular weight urokinase. Binding analyses performed with 123I-urokinase revealed expression of 271,000 +/- 55,000 high affinity urokinase binding sites per HMC-1 cell, with a calculated dissociation constant of 1. 29 +/- 0.3 nM. Purified urokinase induced dose-dependent migration of primary mast cells and HMC-1 in a chemotaxis assay without inducing release of histamine. The mast cell agonist stem cell factor also induced migration of HMC-1 and caused up-regulation of expression of urokinase receptor mRNA. Together, our data show that human mast cells express functional receptors for urokinase. Expression of urokinase receptors on mast cells may have implications for mast cell-dependent microvascular processes associated with fibrinolysis, migration, or local tissue repair.

Binding Sites↗

Cloning and characterization of murine carnitine acetyltransferase: evidence for a requirement during cell cycle progression.

We have employed a newly developed differential screening technique (reverse strand priming) to identify murine carnitine acetyltransferase (CARAT) as a growth- and cell cycle-regulated gene in S3T3 mouse fibroblasts. Sequence analysis of the full-length cDNA clone and homology comparisons have revealed 87% homology to the human CARAT gene. On Northern blots we were able to measure a 2-3-fold induction 18 h after a mitogenic stimulus following serum deprivation as well as after release from a sodium butyrate block. The cell cycle induction pattern of the CARAT gene was analysed in mouse fibroblasts at different stages of the unperturbed cell cycle. Fractions obtained by elutriation of an exponentially growing culture showed a biphasic maximum of transcript abundance in the G1 and G2 phases of the cell cycle. CARAT expression was investigated in several organs of the adult mouse. Among those measured, CARAT expression was highest, relative to liver, in heart muscle (56-fold) and testis (21-fold). Using both conventional antisense oligodeoxynucleotides and novel single-stranded antisense phagemid DNA, we obtained evidence that the CARAT enzyme function is necessary for progression through G1 and into the S-phase of the cell cycle.

Amino Acid Sequence↗

Thrombin augments vascular cell-dependent migration of human mast cells: role of MGF.

Recent data suggest that auricular thrombosis is associated with accumulation of mast cells (MC) in the upper endocardium (where usually no MC reside) and local expression of MGF (mast cell growth factor) (25). In this study, the role of vascular cells, thrombin-activation and MGF, in MC-migration was analyzed. For this purpose, cultured human auricular endocardial cells (HAUEC), umbilical vein endothelial cells (HUVEC) and uterine- (HUTMEC) and skin-derived (HSMEC) microvascular endothelial cells were exposed to thrombin or control medium, and the migration of primary tissue MC (lung, n = 6) and HMC-1 cells (human MC-line) against vascular cells (supernatants) measured. Supernatants (24 h) of unstimulated vascular cells (monolayers of endocardium or endothelium) as well as recombinant (rh) MGF induced a significant migratory response in HMC-1 (control: 3025 +/- 344 cells [100 +/- 11.4%] vs. MGF, 100 ng/ml: 8806 +/- 1019 [291 +/- 34%] vs. HAUEC: 9703 +/- 1506 [320.8 +/- 49.8%] vs. HUTMEC: 8950 +/- 1857 [295.9 +/- 61.4%] vs. HSMEC: 9965 +/- 2018 [329.4 +/- 66.7%] vs. HUVEC: 9487 +/- 1402 [313.6 +/- 46.4%], p < 0.05) as well as in primary lung MC. Thrombin-activation (5 U/ml, 12 h) of vascular cells led to an augmentation of the directed migration of MC as well as to a hirudin-sensitive increase in MGF synthesis and release. Moreover, a blocking anti-MGF antibody was found to inhibit MC-migration induced by unstimulated or thrombin-activated vascular cells. Together, these data show that endocardial and other vascular cells can induce migration of human MC. This MC-chemotactic signal of the vasculature is associated with expression and release of MGF, augmentable by thrombin, and may play a role in the pathophysiology of (auricular) thrombosis.

Blotting, Northern↗