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R C Schaeffer

Publications and source records attributed to R C Schaeffer.

At least 19 recordsLinked to original sources

Effect of advanced glycation end products on oxidative stress in endothelial cells in culture: a warning on the use of cells studied in serum-free media.

AIMS/HYPOTHESIS: Alterations in vascular permeability and oxidative stress are characteristics of endothelial dysfunction in diabetic vascular disease. Since AGE-proteins have been hypothesized to mediate these effects, we studied the effects of AGE-bovine serum albumin on endothelial monolayer permeability and intracellular glutathione. METHODS: AGE-BSA was prepared by incubating BSA for 30 days at 37 degrees C with 0.5 mol/l glucose and 0.2 mol/l phosphate buffer, pH 7.4. Permeability to fluorescently labelled BSA was assessed in a bovine pulmonary artery endothelial cell monolayer preparation. Glutathione was measured by an enzymatic assay. RESULTS: AGE-BSA concentrations greater than 3 to 4 micromol/l produced maximal increases in permeability (6-8 times basal) within 3 to 4 h of incubation with the cells. This effect persisted for at least 48 h. However, BSA incubated in the absence of glucose produced similar effects. Dialysis of the AGE-BSA showed that low molecular weight components contained the permeability-increasing activity. Phosphate buffer used to prepare the AGE-BSA, at concentrations equivalent to those present in phosphate-buffered saline and in the AGE preparation (approximately 5 mmol/l), produced similar permeability increases at equivalent incubation times. Metal chelators (0.5 mmol/l) or inclusion of fetal bovine serum (10-20 %) blocked these permeability increases. These increases in permeability were associated with a decrease in endothelial glutathione, both inhibited by 10 mmol/l N-acetylcysteine, and a loss of cell-to-cell and cell-to-matrix adhesion molecules. CONCLUSION/INTERPRETATION: Trace amounts of redox-active metal ions in biological buffers could induce oxidative stress and alterations in cellular functions attributed to AGE-proteins in vitro. It is important to use metal-free phosphate and bicarbonate buffers in studies on cell biology in vitro, especially in serum-free media.

Actins↗

ROCK mediates thrombin's endothelial barrier dysfunction.

Thrombin-induced endothelial monolayer hyperpermeability is thought to result from increased F-actin stress fiber-related contractile tension, a process regulated by the small GTP-binding protein Rho. We tested whether this process was dependent on the Rho-associated protein kinase, ROCK, using a specific ROCK inhibitor, Y-27632. The effects of Y-27632 on thrombin-induced myosin light chain phosphorylation (MLCP) and tyrosine phosphorylation of p125 focal adhesion kinase (p125(FAK)) and paxillin were measured by Western blotting. F-actin organization and content were analyzed by digital imaging, and endothelial monolayer permeability was measured in bovine pulmonary artery endothelial cell (EC) monolayers using a size-selective permeability assay. Y-27632 enhanced EC monolayer barrier function due to a decline in small-pore number that was associated with increased EC surface area, reduced F-actin content, and reorganization of F-actin to beta-catenin-containing cell-cell adherens junctions. Although Y-27632 prevented thrombin-induced MLCP, stress fiber formation, and the increased phosphotyrosine content of paxillin and p125(FAK), it attenuated but did not prevent the thrombin-induced formation of large paracellular holes. These data indicate that thrombin-induced stress fiber formation is ROCK dependent. In contrast, thrombin-induced paracellular hole formation occurs in a ROCK-independent manner, whereas thrombin-induced monolayer hyperpermeability appears to be partially ROCK dependent.

Actins↗

Methotrexate causes apoptosis in postmitotic endothelial cells.

Methotrexate (MTX) is a commonly used chemotherapy agent for a variety of cancers. However, therapeutic levels are associated with numerous untoward effects such as central nervous system damage in children with acute lymphoblastic leukemia. The purpose of this study was to determine if MTX caused injury to endothelial cells using cultured bovine pulmonary artery endothelial cells as a model. Light microscopy showed gaps between cells and reduced numbers of endothelial cells after exposure to MTX (10(-9) to 10(-5) M), a range consistent with therapeutic drug levels. Proliferation and viability of subconfluent and confluent MTX-treated endothelial cells were measured by colorimetric (MTS) assay. There was a significant decline in cell numbers in MTX-treated subconfluent (growing) cells cultured after 4 days of MTX exposure compared to controls, as expected. However, there was also an unexpected decline in cell numbers in MTX-treated postmitotic endothelial cells after 1, 3, and 4 days of drug exposure. This suggested that MTX induced endothelial cell death. Fluorescent ApoAlert Enhanced Annexin-V binding demonstrated apoptosis in endothelial cells after 1 day of MTX exposure. Apoptosis was confirmed by a DNA fragment assay. This is apparently the first report of MTX-induced apoptosis of postmitotic, cultured endothelial cells. The findings suggest that apoptosis may be one mechanism of MTX-induced injury to endothelial cells.

Animals↗

Structural and functional effects of high prolactin levels on injured endothelial cells: evidence for an endothelial prolactin receptor.

Stress has been linked to health problems such as atherosclerosis and prolonged wound healing, which involve the responses of injured endothelial cells. Though prolactin (PRL) levels become increased during the physiological response to stress, the significance and effects of these increases are largely unknown. Here we examined the effects of elevated, though physiological, concentrations of PRL on the responses of cultured endothelial cells after mechanical injury to cell monolayers. When treated at the time of injury with PRL levels of 62.5-1000 ng/mL, cells at the wound front became abnormal in shape and had reductions in f-actin staining in comparison to controls that were not PRL-treated. High PRL concentrations also inhibited the adhesion of cells to their growth surface in a dose-dependent manner. Using rhodamine-labeled PRL, we observed specific PRL uptake by these cells that suggested the presence of a PRL receptor. Finally, mRNA for the long form of the PRL receptor was detected by RT-PCR. To our knowledge, this is the first report demonstrating that (1) high PRL concentrations alter the actin cytoskeleton and adhesion of injured endothelial cells and (2) endothelial cells express the transcript for the PRL receptor. Thus, we report novel effects of PRL that may be mediated by activation of an endothelial cell PRL receptor.

Actins↗

The glomerular barrier fits a two-pore-and-fiber-matrix model: derivation and physiologic test.

Failure of the glomerular barrier causing proteinuria has been modeled chiefly by Chang, Deen, and Brenner. They have refined models from an isoporous filter to a mostly isoporous membrane, which during proteinuric disease opens up nondiscriminating shunts. This report extends these concepts by measuring a larger distribution of macromolecular tracer sizes and bringing in a fiber matrix. By clearance methods, glomerular sieving curves of relatively neutral tetramethyl rhodamine aminodextran from radii of 15 to over 80 A were obtained and fitted to theory. Two pores filled with matrix fit all data without exception, and no other model did. Five parameters described the curve in control rats and in proteinuric rats made so by albumin injections. From highest to lowest degree of confidence, these were small and large pore radii ros = 42.7 +/- 0.9 SEM A and rol = 926 +/- 156 A; small to large pore density ns/nl = 3859 +/- 942; mean fiber radius rf = 20.3 +/- 1. 1 A; and fiber void volume ratio epsilon = 0.52 +/- 0.05. In proteinuria, ros rose 13% (P = 0.002), nl increased 150% (P = 0.04), and there was a compensatory rise in rf of 26% (P = 0.002). The consideration of basement membrane and glycocalyx remain to be incorporated into the model. Moreover, the closeness of rf to ros indicates that fiber matrix theory may need modification for a complete description.

Animals↗

RhoA inactivation enhances endothelial barrier function.

The modulation of endothelial barrier function is thought to be a function of contractile tension mediated by the cell cytoskeleton, which consists of actomyosin stress fibers (SF) linked to focal adhesions (FA). We tested this hypothesis by dissociating SF/FA with Clostridium botulinum exoenzyme C3 transferase (C3), an inhibitor of the small GTP-binding protein RhoA. Bovine pulmonary artery endothelial cell (EC) monolayers given C3, C3 + thrombin, thrombin, or no treatment were examined using a size-selective permeability assay and quantitative digital imaging measurements of SF/FA. C3 treatment disassembled SF/FA, stimulated diffuse myosin II immunostaining, and reduced the phosphotyrosine (PY) content of paxillin and 130- to 140-kDa proteins that included p125(FAK). C3-treated monolayers displayed a 60-85% decline in F-actin content and a 170-300% increase in EC surface area with enhanced endothelial barrier function. This activity correlated with reorganization of F-actin and PY protein(s) to beta-catenin-containing cell-cell junctions. Because C3 prevented the thrombin-induced formation of myosin ribbons, SF/FA, and the increased PY content of proteins, these characteristics were Rho dependent. Our data show that C3 inhibition of Rho proteins leads to cAMP-like characteristics of reduced SF/FA and enhanced endothelial barrier function.

ADP Ribose Transferases↗

VEGF stimulates tyrosine phosphorylation of beta-catenin and small-pore endothelial barrier dysfunction.

The purpose of this study was to test the hypothesis that tyrosine phosphorylation signaling events and protein kinase C (PKC) activation mediate vascular endothelial growth factor-A(165) (VEGF)-induced endothelial cell (EC) proliferation and barrier dysfunction in bovine pulmonary artery EC monolayers. A size-selective permeability assay showed that VEGF stimulated a delayed, prolonged (6-45 h), concentration-dependent (50-200 ng/ml, approximately 1-4 nM) increase in the number of predominantly small-"pore" transport pathways (<60 A) across EC monolayers. The tyrosine kinase inhibitor herbimycin A (HA) and the selective PKC inhibitor bisindolylmaleimide (BIM) prevented this phenomenon. After 6-24 h, VEGF-treated monolayers displayed an HA- and BIM-sensitive reorganization of beta-catenin adherens junctions with fingerlike projections and the loss of beta-catenin at sites of small paracellular hole formation. HA and BIM prevented the VEGF-induced increase in EC growth. HA blocked the VEGF-induced rapid and prolonged (10 min-45 h) increases in the phosphotyrosine (PY) contents of VEGF receptor 2, phospholipase C-gamma1, paxillin, and beta-catenin as well as approximately 140- and 128- to 117-kDa proteins, whereas BIM inhibited only the tyrosine phosphorylation of beta-catenin. These data suggest that VEGF initiates increased EC growth and chronic, small-pore endothelial barrier dysfunction by PY signaling through beta-catenin that depends on PKC.

Actomyosin↗

H2O2 and genistein differentially modulate protein tyrosine phosphorylation, endothelial morphology, and monolayer barrier function.

The effects of hydrogen peroxide (H2O2) and the protein tyrosine kinase (PTK) inhibitor, genistein, to modulate protein tyrosine phosphorylation (PTP) and endothelial barrier function were examined in bovine pulmonary artery endothelial cell (EC) monolayers. H2O2 stimulated a concentration (100-800 microM) and time-dependent increase in the phosphotyrosine (PY) content of multiple (56-72, 93-97, 113-142, and 161-183 kDa) EC proteins. A size-selected solute permeability assay of EC monolayer barrier function showed that (200 microM) H2O2 elevated EC monolayer permeability to large solutes. This effect was associated with paracellular hole formation and a loss of beta-catenin immunostaining at these sites. In contrast, genistein (100 microM, 1 h) reduced basal PY protein content and reorganized F-actin to beta-catenin containing cell-cell junctions, enhancing endothelial monolayer barrier function. In addition, genistein prevented the H2O2-induced increases in tyrosine phosphorylation, monolayer permeability, and paracellular hole formation. These data suggest that H2O2 and genistein differentially regulate PTP, endothelial morphology, and monolayer barrier function.

Actins↗

Inhibition of serine-threonine protein phosphatases decreases barrier function of rat pulmonary microvascular endothelial cells.

The flux of multisized fluorescein-isothiocyanate-labeled hydroxy ethyl starch (FITC-HES) macromolecules was used to assess changes in barrier function of rat pulmonary microvascular endothelial cell (RPMVEC) monolayers exposed to protein phosphatase (PP) inhibitors or cGMP analogs and atriopeptin (ANF). Two potent PP inhibitors, calyculin A (CalA) and okadaic acid (OA), increased RPMVEC permeability in a dose- and time-dependent manner, and CalA had a higher intrinsic activity than OA. In contrast, ANF and potent cGMP analogs had no effect on basal RPMVEC permeability. The phosphohistone PP activity contained in RPMVEC sonicates was inhibited by OA with an inhibition profile that suggested at least two components were present, with PP2A accounting for approximately 70% of the OA-inhibitable phosphohistone phosphatase activity. Following separation with heparin-Sepharose chromatography, PP activity exhibited equipotent inhibition by CalA and differential inhibition by OA. Differential inhibition of PP1 and PP2A by OA suggested that PP1 is involved in regulating RPMVEC barrier function. Permeabilized RPMVEC showed increased phosphorylation of several proteins in the presence of phosphatase inhibitors. Treatment with KT 5926, a myosin light chain (MLC) kinase (MLCK) inhibitor, or rolipram, a phosphodiesterase inhibitor, decreased 32P incorporation into immunoprecipitated MLC by CalA and OA. However, this effect did not abolish either the CalA- or OA-induced decrease in the RPMVEC barrier function. Localization of filamentous (F) actin was at the periphery as well as in the cytoplasm and perinuclear region, whereas nonmuscle myosin was seen in the perinuclear region. Neither of these patterns was changed in the presence of CalA. Thus, cGMP does not alter RPMVEC permeability, but inhibition of PP activity results in loss of barrier function by a mechanism independent from MLC phosphorylation.

Animals↗

Effects of human alpha-thrombin and 8bromo-cAMP on large and microvessel endothelial monolayer equivalent "pore" radii.

Previous studies have reported that endothelial cells isolated from large vessels compared with microvessels from the same or distinct organs showed considerable phenotypic and biochemical heterogeneity. In the present study we extend these findings by comparison of the effects of 8-bromo-cyclic adenosine monophosphate (8Br-cAMP), human alpha-thrombin, 8Br-cAMP followed 5 min later by thrombin or no treatment (control) on the equivalent "pore" radii (rp) of endothelial monolayers isolated from the main bovine pulmonary artery (BPAEC) compared with lung microvessels (BLMV). BLMV, isolated from a 1-cm peripheral segment of the lung, were significantly larger than those obtained from large vessels (1602 +/- 142 microns2 vs 398 +/- microns2, respectively). In addition, BLMV monolayers formed a heteroporous barrier with less size-selectivity compared with BPAEC monolayers. 8Br-cAMP caused monolayers of both cell types to close their large "pores" which completely restricted the passage of solute molecular radii > 35-60 A across these barriers, consistent with a rp of approximately 75-100 A. This effect was due to a reduction in the area available for solute exchange (Ap) and/or an increase in the path length of the transport pathway (delta X). Human alpha-thrombin produced an increase in the Ap/delta X consistent with the formation of large open areas between adjacent cells that exposed the approximately 2000 A pore radius of the filter support. Since this effect was more marked in microvessel compared with large vessel monolayers, microvessel endothelial cells appear to be more sensitive to the effects of thrombin.(ABSTRACT TRUNCATED AT 250 WORDS)

8-Bromo Cyclic Adenosine Monophosphate↗

Death after Pichinde virus infection in large and small strain 13 guinea pigs.

The lethal events of Pichinide virus infections were studied in large (> 36-week-old), small (4- to 6-week-old), and uninfected strain 13 guinea pigs. Time to death was shorter and the rate of body weight loss greater for large than for small virus-infected guinea pigs. Severely ill large guinea pigs developed a life-threatening, nonlactate metabolic acidemia with an increased anion gap, hypokalemia, and renal failure. Small infected guinea pigs near death demonstrated a modest increase in blood and plasma volume indices and in lung and heart permeability to albumin. This group showed a severe hypoxemia, elevated blood lactate, and bicarbonate ion concentrations with a doubled respiratory rate. These findings are consistent with respiratory failure due to obstruction of small airways. Although virus-infected guinea pig endothelial cells showed a decrease in DNA and protein synthesis, no change in bradykinin-induced intracellular calcium signaling was noted.

Animals↗

Thrombin and bradykinin initiate discrete endothelial solute permeability mechanisms.

This study documents the discrete solute permeability mechanisms associated with physiologically high concentrations of human alpha-thrombin and bradykinin stimulation of bovine pulmonary artery endothelial cell (BPAEC) monolayers using fluorescein isothiocyanate-hydroxyethyl starch macromolecules. Agonist-induced alterations of intracellular free calcium ([Ca2+]i) using fura-2 acetoxymethyl ester were also measured. BPAEC monolayers showed restricted diffusion consistent with a small-pore (approximately 150 A) radius under baseline conditions. Thrombin produced a major increase in monolayer permeability that was greatest for solute molecular radii (ae) > 100 A. This effect was associated with the exposure of the large (approximately 2,000 A) pores of the filter support by 50- to 1,050-microns2 open areas between approximately 0.5% of the adjacent endothelial cells. This heterogeneous endothelial barrier of parallel large- and small-pore transport pathways permitted solute convection with free diffusion across a few large pores to dominate the restricted diffusion of most apparently unperturbed endothelial junctions. Bradykinin produced a small, transient elevation in monolayer permeability to ae < 35 A, consistent with an increase in the number of small pores or a decrease in path length of this transport pathway. The bradykinin- and thrombin-induced peak elevations in [Ca2+]i were inversely associated with the degree of increased monolayer solute permeability, and enzymatically inhibited thrombin produced none of these effects. These data show that bradykinin and human alpha-thrombin represent two distinct classes of endothelial cell agonists that initiate discrete solute permeability mechanisms.

Animals↗

Restricted diffusion of macromolecules by endothelial monolayers and small-pore filters.

We studied the size-selective permeability and restricted diffusion (Rd) properties of macromolecules across bovine pulmonary artery endothelial cell (BPAEC) or epithelial (LLC-PK1) monolayers grown on polycarbonate (PC) filter supports using fluorescein isothiocyanate-hydroxyethyl starch (FITC-HES, 16 A less than ae less than 180 A). Most BPAEC seeded at subconfluent density and grown for 3-6 days produced barriers with marked Rd. This characteristic was similar to that measured across PC filters with pore radii (rp) of 150 and 250 A without cells. Rd of LLC-PK1 monolayers was consistent with a transport pathway rp of much less than 75A. BPAEC monolayers prepared by supraconfluent seeding showed convective solute transport due to a significant number of incompletely formed intracellular junctions. Most monolayers grown to confluence, or a thin layer of collagen type I prevented this effect, Rd was enhanced when BPAEC monolalyers were grown on this collagen network. These data suggest that the subendothelial layers, which includes basal lamina, pericyte, and interstitial collagen, may act as series resistors with the endothelium to provide the Rd observed in the microvascular wall in vivo. This may explain why BPAEC monolayers grown to confluence without subendothelial layers in vitro showed Rd consistent with large (150-250 A) rp that was significantly greater than those modeled as the small (approximately 50 A) "pore" or 6-A fiber matrix of the in vivo capillary wall.

Animals↗

Macromolecular transport across endothelial monolayers.

We studied the macromolecular size-selective transport characteristics of polycarbonate (PC) filters with defined pore radius (rp; 15,000 to 400 A) as well as 2,000 A rp PC filter-bovine pulmonary artery endothelial cell (EC) monolayer sandwich under zero hydrostatic pressure conditions using fluorescein isothiocyanate-hydroxyethyl starch (FITC-HES, 16 A less than ae less than 100 A), and 2-methoxy-2,4-diphenyl-3(2H) furanone-bovine serum albumin (MDPF-BSA, ae = 35.5 A). We surprised to find substantial convective solute transport (solute drag) across the filter-endothelial sandwich. This effect was increased by large rp (15,000 A) filters and prevented by 400 A rp filters. Positive hydrostatic pressure across 2,000 A rp filters increased convective solute transport and negative pressure prevented this effect. High, medium and low permeability monolayers on 2,000 A filters progressively attenuated the solute drag effect seen across these filters without cells. The decline in monolayer permeability was associated with an increased filter area covered by cells; approximately 50 and 95% as well as greater than 99%, respectively. Although significant restricted diffusion was seen across low permeability monolayers, this pattern was distinct from that measured in single frog capillaries. Restricted diffusion by low permeability monolayers under conditions that produce solute drag document the significant barrier effects of high confluence endothelial monolayers, in vitro. These data show that solute transport across endothelial monolayers is due to diffusion+convective solute drag. The degree of the solute drag effect across the filter-endothelial sandwich is a direct function of monolayer confluence.

Animals↗

Convection of macromolecules is the dominant mode of transport across horizontal 0.4- and 3-microns filters in diffusion chambers: significance for biologic monolayer permeability assessment.

The purpose of the present study was to evaluate the permeability characteristics of fluorescein-labeled hydroxyethyl starch (FITC-HES, 20 less than molecular radius, aE less than 111 A) across large pore (0.4- and 3-microns polycarbonate) filters used in endothelial cell monolayer diffusion studies. Although the apparent permeability (P) of the FITC-HES macromolecules across these filters declined as the molecular radius increased, this decline was less than that associated with each solute's free diffusion (D0). Thus, the P/D0 anomalously increased as aE increased, a pattern not seen for free diffusion (flat P/D0 with increased aE) or restricted diffusion (decline in P/D0 with increased aE). Substantial natural convection across the porous filters produced the anomalous P/D0 curve for the following reasons: (1) this effect was elevated with positive pressure and ameliorated by zero driving pressure, and (2) the effect was much greater across filters with large (3 microns) vs small (0.4 microns) pore sizes. In addition, we estimated that less than half of macromolecular transport above 50 A probe radius at zero transmural pressure arrives by diffusion. The findings suggest that the property of restricted diffusion of biologic layers on these filters will be artifactually exaggerated when the measured resistance of the filter is subtracted from that of the filter plus biologic monolayer. Remedies for this problem may include using smaller pore filters, filters layered with extracellular material, or structural methods to determine true filter permeability.

Cell Membrane Permeability↗

Survival after conservative resection for T1 N0 M0 non-small cell lung cancer.

Two hundred forty-four veterans, with a mean age of 62.4 years, mainly asymptomatic (pulmonary), were admitted generally for other disease or pension evaluation and underwent lobectomy (131), segmentectomy (107), or wedge resection (6) for T1 N0 M0 lung cancer between 1966 and 1988. Conservative resection was preferred during the past decade. The average lesion diameter was 2 cm. Thirty-day mortality was 2.9%, similar for the three procedures. Absolute 5-year survival, 51%, was 78% if only deaths from the initial lesion are considered; 19% died of comorbidity, and 8% died of second lung cancers. Routine preoperative computed tomographic staging and intraoperative sampling of even normal-sized hilar and mediastinal nodes, conducted after 1982, improved survival (p less than 0.006). Patients with lesions less than 2 cm in diameter (146) did better (p less than 0.04), and those with squamous tumors improved similarly (p less than 0.02). Lesions that communicated with a bronchus (88) were more malignant than those (156) that did not (p less than 0.02), because from that locus undifferentiated nonsquamous tumors metastasized widely. These results suggest that the T1 N0 M0 category is not uniform. Histology, size, and location in the lung are significant variables. Results of conservative resection were similar or better than those of lobectomy. The latter was used more in deep-seated lesions, however, when major intersegmental planes were transgressed, and before modern preoperative and intraoperative staging. The T1 N0 M0 category should include lesions 2 cm or less in diameter as a discrete entity.

Adult↗

Enzyme-linked immunosorbant assay (ELISA) of size-selected crotalid venom antigens by Wyeth's polyvalent antivenom.

The binding of Antivenom (Crotalidae) Polyvalent to fractions from crude venoms of eight crotalid and one viperid snake, obtained by high performance size-exclusion chromatography, was determined with an indirect enzyme-linked immunosorbent assay (ELISA). Most of the large (greater than 30,000 mol. wt) molecular mass crotalid venom fractions were associated with high (greater than 0.7 absorbance units) ELISA values. Similarly, the medium (13,000-30,000 mol. wt) and small (less than 14,000 mol. wt) molecular mass crotalid venom fractions were coincident with moderate (0.3-0.7 absorbance units) and low (less than 0.3 absorbance units) ELISA levels. Some variability in this pattern was seen with individual venom fractions. A distinctly different pattern of ELISA values were observed with two rattlesnake venoms: the South American (Crotalus durissus terrificus) and Mojave desert (Crotalus scutulatus scutulatus) rattlesnakes. The elution profile from these venoms showed a progression of low to moderate ELISA values within the large molecular mass fractions. This pattern was followed by a decline to low ELISA values throughout the remainder of the elution profile. When saw scaled viper (Echis carinatus leucogaster) venom fractions were tested, only background ELISA values were detected with antivenom. Similarly, background ELISA values were associated with the small molecular mass fractions of all venoms tested. In addition, the elution position for the basic peptides of southern Pacific (Crotalus viridis helleri) and timber (Crotalus h. horridus) rattlesnake venoms showed minimal ELISA values. These data support the view that except for the venom of C. durissus terrificus and C. s. scutulatus, most antivenom antibodies bind large (greater than 30,000 mol. wt) venom fractions. Thus, antivenom contains minimal levels of antibodies to the basic peptides in these venoms.

Animals↗

Pulmonary fibrin deposition and increased microvascular permeability to protein following fibrin microembolism in dogs: a structure-function relationship.

The effects of fibrin microembolism were examined using an infusion of a prothrombin activator (Echis carinatus venom, ECV; 30 min, 0.5 NIH thrombin equivalent units/kg) in acute mongrel dogs prepared with a pulmonary lymph cannula (n = 6, 12.3-21.5 kg). Lymph flow increased approximately 2.5-fold after 1-1.5 hr of elevated left atrial pressure (Pla = 20 cm H2O; 26 +/- 7 to 63 +/- 16 microliter/min, P less than 0.01) and the plasma to lymph protein concentration ratio (CP/CL) declined from 0.66 +/- .04 to 0.54 +/- .16 (P less than 0.01, x +/- SE). After Pla was reduced to control levels, the initiation of fibrin microembolism was associated with an approximate 2.7-fold elevation of lymph flow (62 +/- 8 microliters/min, P less than 0.01) and the CP/CL was not changed (0.56 +/- 0.04, P = ns). When Pla was increased following microembolism, lymph flow more than doubled to 117 +/- 24 microliter/min (P less than 0.01) and the CP/CL remained unaltered (0.56 +/- 0.03, P = ns). These changes were associated with afibrinogenemia and the appearance of fibrin degradation products (FDP) in plasma (150 +/- 50 micrograms/ml) and lymph (80 micrograms/ml) in three of the animals tested. No consistent pattern was seen in the CL/CP of separate endogenous plasma proteins after each intervention. These data support the view that pulmonary fibrin microembolism without inhibition of the fibrinolytic system was associated with an early increased pulmonary microvascular permeability to protein. In a separate group of similarly prepared animals (n = 8, 13-21.5 kg) without a lymph catheter, scanning electron microscopic observations showed branching fibrin microemboli to partially occlude some pulmonary arterioles. Mixed thrombus formations in larger precapillary blood vessels were also seen. Ultrastructural observations revealed the deposition of fibrin strands (periodicity = 220-230 A) within the pulmonary capillaries. Some of these deposits were overlaid by lamellar pseudopodia from endothelial cells and the fibrin appeared to be within these cells. Although plasmalemmal vesicles seemed to be more numerous in the endothelial cells with adjacent fibrin deposits, no gaps or breaks were seen in the densely stained interendothelial cell junctions and/or the endothelial cell membrane of the affected lung capillaries. Activated neutrophils and platelets were more numerous in the pulmonary capillaries following EVC. These data suggest that the presence of FDP and/or fibrin deposits within the pulmonary microvasculature may influence the early functional integrity of pulmonary endothelial cells at sites of fibrin accumulation.

Animals↗