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Paul Neumann

Publications and source records attributed to Paul Neumann.

5 recordsLinked to original sources

Physics-based models for catheter, guidewire and stent simulation.

For over 20 years, interventional methods have improved the outcomes of patients with cardiovascular disease or stroke. However, these procedures require an intricate combination of visual and tactile feedback and extensive training periods. An essential part of this training relates to the manipulation of diagnostic and therapeutic devices such as catheters, guidewires, or stents. In this paper, we propose a physics-based model of wire-like structures that can be used as a core representation for the real-time simulation of various devices. Our approach is computationally efficient, and physically realistic. A catheter/guidewire is simulated using a composite model, which can dynamically adapt its material properties to locally describe a combination of both devices. We also show that other devices, such as stents, can be modeled from the same core representation.

Blood Vessels↗

Peroxynitrite mediates TNF-alpha-induced endothelial barrier dysfunction and nitration of actin.

We tested the hypothesis that tumor necrosis factor (TNF)-alpha induces a peroxynitrite (ONOO(-))-dependent increase in permeability of pulmonary microvessel endothelial monolayers (PMEM) that is associated with generation of nitrated beta-actin (NO(2)-beta-actin). The permeability of PMEM was assessed by the clearance rate of Evans blue-labeled albumin. beta-Actin was extracted from PMEM lysate with a DNase-Sepharose column. The extracted beta-actin was quantified in terms of its nitrotyrosine/beta-actin ratio with anti-nitrotyrosine and anti-beta-actin antibodies, sequentially, by dot-blot assays. The cellular compartmentalization of NO(2)-beta-actin was displayed by showing confocal localization of nitrotyrosine-immunofluorescence with beta-actin-immunofluorescence but not with F-actin fluorescence. Incubation of PMEM with TNF (100 ng/ml) for 0.5 and 4.0 h resulted in increases in permeability to albumin. There was an increase in the nitrotyrosine/beta-actin ratio at 0.5 h with minimal association of the NO(2)-beta-actin with F-actin polymers. The TNF-induced increase in the nitrotyrosine/beta-actin ratio and permeability were prevented by the anti-ONOO(-) agent Urate. The data indicate that TNF induces an ONOO(-)-dependent barrier dysfunction, which is associated with the generation of NO(2)-beta-actin.

Actins↗

TNF-alpha induces a decrease in eNOS promoter activity.

We determined whether TNF-alpha induces a decrease in activity of the promoter for the endothelial nitric oxide synthase (eNOS) gene in pulmonary microvessel endothelial monolayers (PMEM). eNOS promoter activity was assessed in PMEM transfected with plasmids coding the wild-type (F1: -1600 nt from transcription start site) and truncated (F2: -1189, F4: -779, F5: -494, F6: -166) human eNOS promoters linked to a luciferase reporter. PMEM lysates were analyzed for the luciferase/galactosidase ratio (Luc/Gal) after incubation with TNF-alpha (50 ng/ml) for 0.5 or 4 h. TNF-alpha caused a decrease in the Luc/Gal ratio in the PMEM transfected with wild-type F1 and truncated F2, F4, and F5 plasmids but not with truncated F6 plasmid. Truncated-promoter analysis indicated the response elements (-370)CACCC, (-231)GATA, and (-186)CACCC may regulate the effect of TNF-alpha on the eNOS promoter. DNA-binding activity of (32)P-labeled oligonucleotide probes that span the GATA-binding site ((-239)-[(-231)GATA]-(-219)) and the two different CACCC-binding regions ((-379)-[(-370)CACCC]-(-358) and (-196)-[(-186) CACCC]-(-176)) were assessed using EMSA. In response to TNF-alpha treatment for 4 h, nuclear protein binding to (32)P oligonucleotides was characterized as: 1) a significant increase in binding to (-370)CACCC, 2) a significant decrease in binding to (-231)GATA, and 3) no change in (-186)CACCC binding. EMSA supershift analysis indicated that the transcription factor protein GATA-4 bound to the (-231)GATA site, and Sp3 bound to the (-370)CACCC site. Our data indicate TNF causes a decrease in eNOS promoter activity that may be mediated by GATA-4 and Sp3.

Animals↗

NAD(P)H oxidase mediates the endothelial barrier dysfunction induced by TNF-alpha.

We tested the hypothesis that the NAD(P)H oxidase-dependent generation of superoxide anion (O2-*) mediates tumor necrosis factor-alpha (TNF)-induced alterations in the permeability of pulmonary microvessel endothelial monolayers (PMEM). The permeability of PMEM was assessed by the clearance rate of Evans blue-labeled albumin. The NAD(P)H oxidase subcomponents p47phox and p22phox were assessed by immunofluorescent microscopy and Western blot. The reactive oxygen species O2-* was measured by the fluorescence of 6-carboxy-2',7'-dichlorodihydrofluorescein diacetatedi(acetoxymethyl ester), 5 (and 6)-chloromethyl-2',7'-dichlorodihydrofluorescein diacetate-acetyl ester, and dihydroethidium. TNF treatment (50 ng/ml for 4.0 h) induced 1) p47phox translocation, 2) an increase in p22phox protein, 3) increased localization of p47phox with p22phox, 4) O2-* generation, and 5) increased permeability to albumin. p22phox antisense oligonucleotide prevented the TNF-induced effect on p22phox, p47phox, O2-*, and permeability. The scrambled nonsense oligonucleotide had no effect. The TNF-induced increase in O2-* and permeability to albumin was also prevented by the O2-* scavenger Cu-Zn superoxide dismutase (100 U/ml). The results indicate that the activation of NAD(P)H oxidase, via the generation of O2-*, mediates TNF-induced barrier dysfunction in PMEM.

Animals↗