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Biomedical subjects

S K Williams

Publications and source records attributed to S K Williams.

At least 19 recordsLinked to original sources

Interaction of colloidal gold-labelled glucosylated albumin with endothelial cell monolayers: comparison between cryofixation and glutaraldehyde fixation.

Bovine aortic endothelial cells (BAEC) were exposed to glucosylated albumin-gold complexes (GgA), and the distribution of the tracers was compared after cryofixation and after glutaraldehyde fixation. Morphometric analysis revealed differences in the GgA distribution depending upon the method of fixation used. In BAEC monolayers cryofixed after 3 min of incubation with GgA, tracer was observed in predominately apically located vesicular elements. After 16 min of incubation, all vesicular elements were labelled, and multivesicular bodies were the prominent labelled structure. In contrast, chemically fixed monolayers exhibited a heterogeneous distribution of GgA within vesicular profiles after 3 min and 16 min of GgA incubation. The differences in tracer distribution depending upon the fixation method must be resolved before the mechanism of vesicle-mediated endothelial cell transport function is defined and universally accepted.

Animals

Isolation and culture of human trabecular meshwork cells by extracellular matrix digestion.

Like corneal endothelial cells, human trabecular meshwork cells are believed to be of neural crest origin, but demonstrate physiological properties and an antithrombogenic surface similar to vascular endothelial cells. One current method for isolating trabecular meshwork cells utilizes the motile nature of these cells to migrate away from a trabecular meshwork explant in culture to more distal regions of the culture dish. This 'outgrowth' technique is limited in practice by the relatively small number of cells that migrate per explant per unit time, thus hindering the ability to gather sufficient numbers of cells for comprehensive experimentation. For this reason, we have modified an extracellular matrix digestion technique in current use for the isolation of microvascular endothelial cells to isolate human trabecular meshwork cells. This procedure is both efficient and rapid for isolating large numbers of trabecular meshwork cells and results in the availability of trabecular meshwork cells in sufficient quantities for subsequent experimentation.

Adolescent

Interferon-gamma-inducible endothelial cell class II major histocompatibility complex expression correlates with strain- and site-specific susceptibility to experimental allergic encephalomyelitis.

The interaction between encephalitogenic lymphocytes and the cerebral microvascular lining is considered to be an important initial step in the recruitment of immune cells into the central nervous system (CNS) under pathological conditions such as multiple sclerosis (MS) and its investigative analog, experimental allergic encephalomyelitis (EAE). This study was conducted in order to examine whether differences in microvascular endothelial cell expression of several molecules involved in lymphovascular interactions correlate with the strain and organ-specific development of EAE. Cerebral and epididymal microvascular endothelial cells (EC) were isolated from SJL and B10.S mice, which, despite MHC-compatibility (H-2S), differ in their ability to develop EAE. The subcultured cells were then analyzed by flow cytometry for their ability to express class I MHC, class II MHC and ICAM-1 molecules in response to treatment with murine recombinant interferon-gamma (IFN-gamma). Over a range of doses and times, cerebral EC cultures derived from EAE-susceptible SJL mice expressed two-fold higher levels and higher cell surface densities of class II molecules than cerebral EC cultures derived from EAE-resistant B10.S mice, whereas class I and ICAM-1 molecules were comparably upregulated on both SJL and B10.S cerebral EC. In contrast, both SJL and B10.S epididymal EC cultures expressed lower but comparable levels of class II molecules in response to IFN-gamma. Class I and ICAM-1 molecules, however, were upregulated to at least the same degree as that observed on cerebral EC derived from both strains.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals

Formation of a multilayer cellular lining on a polyurethane vascular graft following endothelial cell sodding.

Small-diameter (less than 6 mm) clinically available vascular grafts often fail due in part to the inherent thrombogenicity of artificial polymers. Transplantation of endothelial cells onto the lumen of these vascular grafts has been suggested as one method to overcome this thrombogenicity. We have developed a compliant polyurethaneurea (PEUU) 4-mm graft with a luminal surface modified by a glow discharge gas plasma. Autologous microvessel endothelial cells were isolated from canine falciform ligament fat, were transplanted onto the luminal surface of the grafts using an intraoperative isolation and sodding technique, and both endothelial-cell-treated and non-cell-treated grafts were placed as bilateral carotid interposition grafts in a canine model. After 5 weeks of implantation, explanted control (non-cell-treated) grafts exhibited a deposition of platelets, white cells and fibrin characteristic of a thrombogenic surface. MVEC sodded grafts exhibited a multicellular lining within but distinct from the lumen of the PEUU graft. The blood-contacting surface of this lining exhibited an antithrombogenic endothelial cell monolayer. We suggest that the PEUU graft supported the initial deposition of MVEC and development of and endothelial cell lining. During the 5 weeks of implantation this lining continued to proliferate and detached from the PEUU graft substratum. The final neocellular lining exhibited a luminal diameter and histological features similar to a native artery.

Animals

Effects of growth hormone-releasing factor and vasoactive intestinal peptide on proliferation and steroidogenesis of bovine granulosa cells.

Recent studies have suggested that growth hormone-releasing factor (GRF), like vasoactive intestinal peptide (VIP), may enhance follicle-stimulating hormone (FSH)-stimulated steroidogenesis in cultured rat granulosa cells (GC). Because effects of GRF or VIP on GC proliferation have not been reported, we evaluated and compared the effect of GRF to that of VIP using cultured bovine GC. Undifferentiated GC from 1-5 mm bovine follicles were established for 2 days in medium containing 10% fetal calf serum, washed and then cultured in chemically defined medium for an additional 2 days. Two-day treatment with 2.5-1000 ng/ml of VIP had no effect (P greater than 0.05) on proliferation or progesterone production of bovine GC in the presence or absence of 200 ng/ml FSH. In comparison, 100, 250, 500, 1000 or 2000 pg/ml of human [desNH2Tyr1,D-Ala2,Ala15]-GRF(1-29)-NH2 analog caused a dose-dependent stimulation (P less than 0.05) of GC proliferation in the absence and presence of 5 micrograms/ml insulin. However, the GRF analog had no effect (P greater than 0.05) on GC progesterone production (expressed as ng/10(5) cells/24 h) in the absence or presence of 5 micrograms/ml insulin. The effects of GRF analog on progesterone production and cell proliferation were not influenced by co-culture with 200 ng/ml FSH. GRF(1-44)-NH2 also stimulated cell proliferation but had no effect on basal or FSH-induced progesterone production. These results suggest that GRF may play a role in GC proliferation during follicular development in the bovine.

Animals

A porcine model for adipose tissue-derived endothelial cell transplantation.

The transplantation of endothelial cells represents a technology which has been suggested for applications ranging from improvement in function of implanted vascular devices to genetic therapy. The use of microvascular endothelial cell transplantation has seen increased use both in animal studies as well as clinical use. This report describes our techniques for the isolation and establishment of initial cultures of microvascular endothelial cells derived from porcine fat. A variety of anatomic sites within the pig were evaluated to determine the appropriateness of different sources of fat for endothelial cell isolation. The properitoneal fat was determined to be optimal due to the predominance of endothelium in this tissue and the ease of isolation of microvascular endothelium following collagenase digestion. The study of endothelial cell transplantation in the porcine model is now possible using the methods described for adipose tissue-derived microvessel endothelial cell isolation.

Actins

Formation of a functional endothelium on vascular grafts.

The lack of a functional endothelial cell lining on artificial polymeric vascular grafts severely reduces their effectiveness in replacing small caliber (less than 6 mm) blood vessels. Techniques have now been developed to transplant autologous endothelial cells from one site in the body onto the surface of grafts prior to implantation. Pre-clinical animal trials provide evidence that grafts sodded with autologous, fat-derived, microvessel endothelial cells exhibit a stable, antithrombogenic lining of endothelium. The new endothelial cell lining exhibits morphologies identical with endothelium on native blood vessels. The effectiveness of endothelial cell sodding techniques in pre-clinical animal trials provides support for expanded clinical trials.

Animals

Cultured and immediately procured endothelial cells: current and future clinical applications.

Great progress has been made in the last several years in our ability to culture human endothelial cells. In addition, techniques to immediately procure and utilize these cells have also been developed. The purpose of this paper is to present an overview of the current and potential uses of these cells in both vascular and nonvascular conditions. It is likely that endothelial cells will be used in a variety of applications in the near future. Immediately procured and cultured cells will be used to resurface vascular prosthetic grafts. They may also be used on the surface of vessels following procedures such as balloon angioplasty or atherectomy. In addition, they may be placed upon the surface of implantable devices such as expandable stents. Through the mechanism of genetic engineering, these cells may be modified to produce proteins, which may modify thrombogenicity and perhaps decrease the rate of recurrent stenosis by influencing cellular hyperplasia. Genetically modified endothelial cells also have great potential in nonvascular disease. Their contact with circulating blood makes them an ideal cell for production of proteins to correct systemic conditions such as the insulin deficiency found in diabetes mellitus. The application of endothelial cell biology in both vascular and nonvascular science represents one of the most exciting fields of research active today.

Blood Vessel Prosthesis

Origin of cells that line damaged native blood vessels following endothelial cell transplantation.

Endothelial cell (EC) transplantation has been proposed as a method to reduce the thrombogenicity of both vascular grafts as well as injured native blood vessels. While techniques have been developed to establish EC monolayers on these surfaces, a major question that remains is whether the cells that exist on the blood flow surface are the same cells placed on the surface at the time of transplantation. We have developed an intravital fluorescent staining technique that permits isolated, autologous, fat-derived microvascular endothelial cells (MVEC) to be labeled and subsequently detected following their transplantation. In our study, rat abdominal aortas (AA) were injured with a 3F embolectomy catheter, and the injured surfaces were immediately treated with fluorescently labeled MVEC. Five days after transplantation, AA were evaluated by both scanning electron and fluorescence microscopy. Results of scanning electron microscopy showed the existence of nonthrombogenic regions in the areas of injury, and fluorescence microscopy of the identical areas established that these cells contained fluorescent dye. Our results indicate that the cells that line these injured areas of native vessels are the same cells that were originally transplanted. Our intravital fluorescence technique provides a method to trace the origin and disposition of transplanted cells on the vascular surfaces.

Adipose Tissue

Microvessel derived endothelial cell isolation, adherence, and monolayer formation for vascular grafts.

MVECs can be isolated from animal and human fat in quantities and in a pure enough form to produce a cell-lined vascular graft. In animal studies grafts treated with these cells are associated with prolongation of graft patency. In human implants definitive expression factor VIII related antigen cells has been performed on an MVEC treated graft at 9 months. Further studies will be necessary to provide further insight into the healing and long-term behavior of these grafts, both with respect to the thrombogenicity of the surface as well as the influence on anastomotic hyperplasia.

Animals

Optimization of human endothelial cell attachment to vascular graft polymers.

Endothelial cells (EC) covering the blood-contacting surface of a prosthetic material could potentially enhance the subsequent nonthrombogenicity of the surface. In order to create such a surface, the EC must become attached to the surface, spread and ultimately form a monolayer. In this study we examined several factors that influence these processes. On ePTFE surfaces, surface pretreatment with human serum for 30 minutes at a concentration of 1.4 gm percent protein resulted in significantly more attached EC when compared to other concentrations or when compared to fetal calf serum or human serum albumin. The rate of EC spreading was strongly influenced by temperature, with a maximum occurring at 37 degrees C. During real-time video microscopy, it was noted that the rate of EC attachment and spreading was primarily dependent on arrival of the EC to the surface rather than attachment and spreading. Thus as a method of increasing EC delivery, the concept of filtering EC onto the graft lumenal surface was tested by pressurizing the graft lumen to speed EC delivery to the surface. This technique produced a 2 to 5-fold increase in EC attachment when compared to gravity forced cell deposition. We conclude that an ePTFE graft can be rapidly endothelialized using these simple measures.

Biocompatible Materials

Migration of individual microvessel endothelial cells: stochastic model and parameter measurement.

Analysis of cell motility effects in physiological processes can be facilitated by a mathematical model capable of simulating individual cell movement paths. A quantitative description of motility of individual cells would be useful, for example, in the study of the formation of new blood vessel networks in angiogenesis by microvessel endothelial cell (MEC) migration. In this paper we propose a stochastic mathematical model for the random motility and chemotaxis of single cells, and evaluate migration paths of MEC in terms of this model. In our model, cell velocity under random motility conditions is described as a persistent random walk using the Ornstein-Uhlenbeck (O-U) process. Two parameters quantify this process: the magnitude of random movement accelerations, alpha, and a decay rate constant for movement velocity, beta. Two other quantities often used in measurements of individual cell random motility properties--cell speed, S, and persistence time in velocity, Pv--can be defined in terms of the fundamental stochastic parameters alpha and beta by: S =square root (alpha/beta) and Pv = 1/beta. We account for chemotactic cell movement in chemoattractant gradients by adding a directional bias term to the O-U process. The magnitude of the directional bias is characterized by the chemotactic responsiveness, kappa. A critical advantage of the proposed model is that it can generate, using experimentally measured values of alpha, beta and kappa, computer simulations of theoretical individual cell paths for use in evaluating the role of cell migration in specific physiological processes. We have used the model to assess MEC migration in the presence of absence of the angiogenic stimulus acidic fibroblast growth factor (aFGF). Time-lapse video was used to observe and track the paths of cells moving in various media, and the mean square displacement was measured from these paths. To test the validity of the model, we compared the mean square displacement measurements of each cell with model predictions of that displacement. The comparison indicates that the O-U process provides a satisfactory description of the random migration at this level of comparison. Using nonlinear regression in these comparisons, we measured the magnitude of random accelerations, alpha, and the velocity decay rate constant, beta, for each cell path. We consequently obtained values for the derived quantities, speed and persistence time. In control medium, we find that alpha = 250 +/- 100 microns 2h-3 and beta = 0.22 +/- 0.03h-1, while in stimulus medium (control plus unpurified aFGF) alpha = 1900 +/- 720 microns 2h-3 and beta = 0.99 +/- 0.37h-1.(ABSTRACT TRUNCATED AT 400 WORDS)

Adipose Tissue

Differences in synergistic actions of vasopressin and deoxycorticosterone in rat and rabbit CCD.

We examined the time course of changes in osmotic water permeability (Pf, micron/s), lumen-to-bath 22Na+ flux (Jl----b, pmol.min-1.mm-1), and transepithelial voltage (VT, mV) in response to arginine vasopressin (AVP) in isolated perfused rat and rabbit cortical collecting ducts (CCD). CCDs were isolated from "normal" (untreated) animals and animals 4-14 days after an intramuscular depot injection of deoxycorticosterone pivalate (DOC; 35 mg/rabbit, 5 mg/rat). In the normal rat CCD, 220 pM AVP added to the bathing solution increased Pf from approximately 0 to 981 +/- 120, Jl----b from 24 +/- 5 to 62 +/- 9, and VT from -0.7 +/- 0.6 to -4.0 +/- 0.6 (mean +/- SE; P less than 0.05). The effect of AVP on Pf in DOC-treated rats was not significantly different, but the effects on Jl----b and VT were greater. Jl----b rose from a control value of 78 +/- 16 to 192 +/- 14 with AVP, and VT hyperpolarized from -4.2 +/- 1.6 to -12.2 +/- 0.4. All of these effects of AVP in the normal and DOC-treated rat CCD persisted for greater than or equal to 90-150 min. In DOC-treated rabbit tubules, AVP caused a stable increase in Pf from 9 +/- 6 to 800 +/- 199, which was significantly greater than in normal tubules (379 +/- 32). In the normal rabbit CCD we confirmed previous observations that AVP produces only a transient increase in Na+ absorption and VT; Jl----b increased from 76 +/- 4 to 96 +/- 7 during the period 15-25 min after AVP addition but subsequently fell to 80 +/- 6; VT transiently hyperpolarized from -55 +/- 7 to -64 +/- 8 at 3-8 min after AVP and then fell to -54 +/- 9. In DOC-treated rabbit CCDs, AVP produced no change whatsoever in Jl----b, which was not significantly different from the control value of 99 +/- 7, nor in VT, which was -68 +/- 8 mV. These results indicate fundamental differences in the response of the rat and rabbit CCD to AVP and the presence or absence of synergistic interactions with mineralocorticoids, which may relate to their differing response to other autacoids.

Animals

Chemotaxis of human microvessel endothelial cells in response to acidic fibroblast growth factor.

Migration of microvessel endothelial cells (MEC) in response to angiogenic stimuli is a key aspect of angiogenesis, whether in physiologic or pathologic situations. In this work, we provide a rigorous quantitative assessment of the chemokinetic and chemotactic responses of human MEC to acidic fibroblast growth factor (aFGF). A uniform concentration of 1 micrograms/ml of heparin was included in most experiments to exploit heparin's potentiating effect on aFGF activity. The migration is measured in an under-agarose assay with a linear geometry, and evaluated in terms of the random motility and chemotaxis coefficients, mu and chi, which are defined in a mathematical model. The change in value of mu with changes in aFGF concentration provides a quantitative description of the stimulated random motility response, a process known as chemokinesis. This allows the true directional response in gradients to be quantified by the chemotaxis coefficient, chi, and its variation with attractant concentration. The effect of aFGF on MEC random motility is relatively small, with the random motility coefficient ranging from 4.6 +/- 0.4 x 10(-9) to 9.9 +/- 0.3 x 10(-9) cm2/second (mean +/- SE) over four orders of magnitude of aFGF concentration (10(-11) to 10(-8) M). On the other hand, the magnitude of the chemotaxis coefficient at optimal concentrations is quite large (2600 +/- 750 cm2/second-M around 10(-10) M aFGF), demonstrating a significant degree of MEC directional sensitivity to aFGF gradients. The chemotaxis coefficient shows a biphasic dependence on aFGF concentration, suggestive of a receptor-mediated response in which apparent differences in receptor occupancy govern directional bias. These results provide support for the hypothesis that MEC chemotaxis accounts for the directed microvessel growth observed in angiogenesis.

Cell Movement

Thrombus-free, human endothelial surface in the midregion of a Dacron vascular graft in the splanchnic venous circuit--observations after nine months of implantation.

The addition of an endothelial cell lining to a prosthetic vascular graft may reduce the thrombogenicity of the blood-contacting surface. An endothelialized mesoatrial graft was implanted in a patient with Budd-Chiari syndrome caused by a primary inferior vena caval leiomyosarcoma. During the initial surgery a Dacron vascular graft was preclotted with plasma and then lined with microvascular endothelial cells derived from the patient's subcutaneous adipose tissue. The patient did well initially but 9 months later required resection of a mechanical stricture of the graft that occurred as it passed beneath the costochondral junction. Grossly, the luminal surface of the resected graft was free of thrombus, with a smooth, glistening, white surface. Light microscopy demonstrated a surface layer of cells morphologically consistent with an endothelial cell monolayer, a subendothelial layer composed of extracellular matrix and spindle-shaped cells, and granulation tissue around the Dacron fabric. Immunohistochemistry and electron microscopy confirmed the presence of vascular endothelium on the luminal surface. This report documents the successful achievement of a human endothelial cell monolayer that persisted for 9 months in the midportion of a Dacron vascular graft.

Adult