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Yasunori Kitamoto

Publications and source records attributed to Yasunori Kitamoto.

7 recordsLinked to original sources

Urokinase-immobilization suppresses inflammatory responses to polyurethane tubes implanted in rabbit muscles.

Urokinase and plasmin appear to have antiinflammatory activity in some injury models, and urokinase immobilization has been clinically used to prevent thrombus formation in various implants, including intravenous indwelling catheters and subcutaneous drainage tubes. In the present study, polyurethane tubes were embedded in rabbit muscle for 3 months and the effect of urokinase immobilization on inflammatory responses to the implanted tubes was studied at 1 week, 1 month, and 3 months. Mononuclear leukocyte accumulation occurred around implanted polyurethane tubes and peaked after 1 month, but was reduced significantly by urokinase immobilization. The treatment also lessened as well as delayed eosinophil accumulation, but did not affect fibrosis caused by implanted tubes. These results indicate suppressive effects of urokinase immobilization on polyurethane-elicited inflammatory responses and suggest that an approach to develop persistently active urokinase immobilization is rational for successful long-term device implantation.

Animals↗

Protective effect of vascular endothelial growth factor/vascular permeability factor 165 and 121 on glomerular endothelial cell injury in the rat.

Vascular endothelial growth factor/vascular permeability factor (VEGF/VPF) promotes the repair of injured vessels by stimulating angiogenesis. VEGF/VPF reportedly has cytoprotective activity but no study has shown the protective effect of VEGF/VPF on glomerular endothelial cells. We examined whether recombinant VEGF/VPF121 and VEGF/VPF165 isoforms could prevent injury of glomerular endothelial cells. Mild glomerular injury was induced in rats by an intravenous-injection of a limited dose of anti-Thy-1.1 antibody to obtain lesions similar to those found in the human disease. Recombinant VEGF/VPF165, VEGF/VPF121 or BSA was administered 4 h before the injection of the antibody, and once daily for 3 days. In the BSA-injected rats, mesangial cell lysis and endothelial cell injury in dilated capillary tufts were evident without endothelial cell apoptosis on days 1-4. Thereafter, cell proliferation and repair began and remodeling of the glomeruli was completed by day 28. Macrophages but not polymorphonuclear leukocytes accumulated significantly in the glomeruli on days 1-4. Treatment with VEGF/VPF isoform protected endothelial cells but not mesangial cells from destruction on day 1, and accelerated the repair of both types of cells, which was completed by day 18, 10 days earlier than that of the control animals. The results indicate that VEGF/VPF121 or VEGF/VPF165 can protect glomerular endothelial cells against injury, independent of apoptosis-inhibition activity, thereby promoting reconstruction of glomeruli. The protective effect of VEGF/VPF on endothelial cells suggests that it could provide therapeutic benefit for certain kidney diseases.

Animals↗

Assessment of thrombin in the urine of glomerulonephritic patients by enzyme-linked immunosorbent assay.

BACKGROUND: Accumulating evidence suggests that blood clotting occurs in inflamed glomeruli, although its role in the pathophysiology of glomerulonephritis remains to be elucidated. To address this issue, a simple and reliable method for evaluating clotting in glomeruli is necessary. Here, we developed an enzyme-linked immunosorbent assay (ELISA) for thrombin in urine to evaluate the degree of clotting activation in diseased glomeruli. METHODS: Monoclonal antibodies against human alpha-thrombin were raised and used for sandwich ELISA to measure thrombin. Thrombin was measured in urine samples from normal volunteers and from patients with glomerulonephritis or disseminated intravascular coagulation (DIC). RESULTS: Thrombin antigen was not detected in the urine of healthy volunteers or of patients with DIC, but was detected in the urine from two-thirds of glomerulonephritic patients. The average concentration in positive samples was 3.79 microg/L. Urinary thrombin concentrations measured by ELISA correlated well with thrombin activities measured by hydrolysis of a synthetic substrate. CONCLUSION: We suggest that thrombin antigen in urine measured by ELISA is not affected by systemic thrombin production in the vessels, and reflects blood clotting activation in glomerulonephritic lesions. A close relationship between urinary thrombin and glomerulonephritis indicates a possible involvement of clotting in disease development, and measurement of urinary thrombin may provide a real-time marker for monitoring renal diseases.

Adult↗

[Evaluation of thrombin in urine as a real-time indicator of clotting activation in glomerulonephritis].

When tissues are injured and bleeding occurs, blood clotting is immediately activated and fibrin clots are formed by thrombin. Afterwards, antithrombin III promptly inactivates thrombin, which restricts the clotting to the bleeding site. In inflamed sites, tissue factor is expressed on cells in the lesion by stimulation from cytokines, and produces thrombin. In this case, thrombin may survive longer because of inefficient inactivation by antithrombin III due to dilution and less perturbation in the interstitial fluid, and therefore, has a greater chance to activate thrombin receptors (protease-activated receptors: PARs) on the cells, which induces various cellular events including proliferation, migration, and shape change. Recent studies have suggested a pathophysiological association of the PAR pathway with crescentic glomerulonephritis. However, the role of thrombin in human diseases has not been fully studied, probably because of a lack of simple and reliable methods for measuring thrombin in clinical samples. To solve this problem, we developed an ELISA system for human alpha-thrombin and applied it to the measurement of thrombin in the urine of patients with glomerulonephritis. Thrombin in urine was detected in glomerulonephritic patients but not in healthy volunteers or disseminated intravascular coagulation patients, which suggests that thrombin in urine may reflect thrombin generation by clotting activation in the glomerular lesion.

Biomarkers↗

[Phenol].

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Chromatography, Gas↗

Expression of enteropeptidase in differentiated enterocytes, goblet cells, and the tumor cells in human duodenum.

Enteropeptidase (EP) is a serine proteinase and activates trypsinogen to trypsin, thus playing an important role in food digestion. Nevertheless, the localization of EP is still controversial, likely due to a lack of studies using specific antibodies against EP. The aim of this study was to define cellular localization of EP in human duodenum and expression in tumor cells at the duodenal region. Immunohistochemical staining for resected tissues was performed with two antibodies against recombinant EP light and heavy chains, respectively. In situ hybridization was done with two RNA probes that include either the light or the heavy chain sequences of proEP, respectively. The two antibodies reacted with enterocytes, accentuated on the brush border, and goblet cells, with increasing intensity from the bottom of crypts to the top of villi. Paneth cells, neuroendocrine cells, Brunner's glands, lymphocytes, smooth muscle, or connective tissue did not react with the antibodies. The two RNA probes detected EP mRNA expression only in enterocytes and goblet cells. EP is produced in enterocytes and goblet cells, and the localization on the brush border of the cells is reasonable for the physiological activation of digestive enzymes. Interestingly, the antibodies reacted with tumor cells in duodenal polyps and adenocarcinoma at the duodenum but not in Brunner's gland adenoma. EP seems to be a marker of differentiated enterocytes and goblet cells, which suggests the existence of a common progenitor of these cells. Furthermore, EP may be a useful marker of tumor cells originating from these cells.

Duodenal Neoplasms↗

Vascular permeability enhancement in solid tumor: various factors, mechanisms involved and its implications.

Most solid tumors are known to exhibit highly enhanced vascular permeability, similar to or more than the inflammatory tissues. Common denominators affecting both cancer and inflammatory lesions are now well known: bradykinin (BK), nitric oxide (NO), peroxynitrite (ONOO(-)), prostaglandins (PGs), collagenases or matrix metalloproteinases (MMPs) and others. Incidentally, enzymes involved in these mediator syntheses are upregulated or activated. Initially described vascular permeability factor (VPF) (proteinaceous) was later identified to be the same as vascular endothelial growth factor (VEGF), which promotes angiogenesis of cancer tissues as well. These mediators cross-talk or co-upregulate each other, such as BK-NO-PGs system. Therefore, vascular permeability observed in solid tumor may reflect the other side of the coin (angiogenesis). The vascular permeability and accumulation of plasma components in the interstitium described here is applicable for predominantly macromolecules (molecular weight, Mw>45 kDa), but not for low molecular compounds as most anticancer agents are. Macromolecular compounds (e.g., albumin, transferrin) or many biocompatible water-soluble polymers show this effect. Furthermore, they are not cleared rapidly from the sites of lesion (cancer/inflammatory tissue), thus, remain for prolonged time, usually for more than a few days. This phenomenon of "enhanced permeability and retention effect" observed in cancer tissue for macromolecules and lipids is coined "EPR effect", which is now widely accepted as a gold standard for anticancer drug designing to seek more cancer-selective targeting using macromolecular drugs. Consequently, drastic reduction of the systemic side effect is observed, while the macromolecular drugs will continuously exert antitumor activity. Other advantages of macromolecular drugs are also discussed.

Animals↗