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Biomedical subjects

M Stol

Publications and source records attributed to M Stol.

At least 19 recordsLinked to original sources

Influence of carboxylate ions containing polymers on calcification: in vitro study.

Calcification of implant or surrounding tissues represents an important complication of its function. The role of the molecular structure of a model hydrogel on the calcification is studied here in a simple in vitro, cell free system. The results show that-COO- containing polymers have an inhibitory effect on Ca2+ crystal formation. This process seems to be unspecific, because the polymers of different structure and origin have an inhibitory effect. However, its efficiency is related to a different extent of Ca2+ binding capacity of distinct polymers.

Alginates↗

[Tracheal replacement with a swine prosthesis].

In 12 experimental operations the authors tested the biocompatibility of a xenologous trachea from a pig which was used to replace a 5 cm defect of the trachea in a dog. After special preparation eliminating the antigenicity of the pig trachea the thus prepared graft was sutured into the thoracic portion of the dog trachea. The experiment could not be evaluated in two instances because the dog died on the operating table. In the remaining ten cases it was found that all anastomoses healed perfectly. The fibrous tissues of the tunica propria of the graft was replaced by granulation tissue. Across the anastomoses newly formed capillaries penetrated into the trachea where they caused chondrolysis. This led to a breakdown of the central portion of the prosthesis and stenosis in the airways with terminal respiratory failure. The mucosa of the graft was at some sites covered by metaplastically altered epithelium. Even a reinforcing vascular prosthesis did not prevent the breakdown of the wall of the xenologous graft. An asset for future work is the finding of a well healed suture between the graft and the trachea and evidence that newly formed blood vessels penetrated into the prosthesis.

Animals↗

The effect of different collagens and of proteoglycan on the retraction of collagen lattice.

The effect of various collagens and proteoglycan on the formation and retraction of collagen lattices was tested. The most rapid aggregation of collagen molecules was observed by the use of the least cross-linked collagen fractions (ie pepsin-digested calf skin collagen type I). Lattices formed with more cross-linked collagens (acid soluble collagen-ASC, type III) contracted slowly and less intensively. Unpurified pepsinized cartilage extract containing collagen types II, IX and XI, some glycoproteins and proteoglycans formed lattices rather well. On the contrary, purified collagen type II as well as polymeric collagen (solubilized by denaturing conditions) did not form lattices at all. The lattice formation and retraction was intensified by addition of proteoglycan into the culture medium. The authors suggest that the kinetics of the lattice formation and retraction depends on the amount of collagen cross-links and the concentration of proteoglycan in the culture medium.

Collagen↗

[A tracheal prosthesis made from P(AEMA)--a further step toward tracheal replacement].

In animal experiments (5 dogs) the authors tested a material for the construction of tracheal prostheses so far not used in other countries. P(AEMA), the polymer 2-acetoxy-ethylmethacrylate is well tolerated, it did not produce a rejection reaction. The inner wall of the prosthesis was throughout the experiment patent, smooth and secretion did not adhere to it. Macroscopic examination did not reveal cumulation of mucus and signs of infection. The self-cleansing capacity was not impaired and the dog was able to expectorate mucus over a 5 cm length of the prosthesis. The solid ends of the prosthesis, however, caused mechanical irritation of the site of anastomosis and after cca 4 weeks of the experiment granulation tissue began to form. The experiments were terminated on account of complete occlusion of the lumen of the airways by granulation tissue 4-6 weeks after operation. The authors' efforts to design a suitable tracheal prosthesis led to a change of strategy of subsequent research. They started experiments with a heterologous portion of the pig trachea devoid of antigenicity; this will be the subject of a subsequent paper.

Animals↗

[Replacement of the trachea with a prosthesis--an unsolvable problem?].

Reconstruction of the trachea by means of a segmental prosthesis is a complicated problem, which has not been completely resolved so far. The authors present a brief historical review of attempts to bridge the gap by different types of prostheses Evon Neville's silicone prostheses are not well tolerated on a long-term basis and its is thus important to look for other materials for the manufacture of an "ideal" tracheal prosthesis. (ur synthetic prosthesis made from poly/ARMA/is very well tolerated, similarly as silicone prostheses. Despite this the authors produced in 1993 a new type of prosthesis, based on antigenicity-deprived heterologous pig tissue. Trials with this prosthesis will be evaluated in a subsequent paper.

Humans↗

Preliminary report on use of a p(HEMA)-collagen composite in maxillo-facial surgery.

After being thoroughly tested on animals, a composite polymer material based on poly(2-hydroxyethyl methacrylate) and calf skin collagen has been allowed in a limited clinical trial in the Czech Republic. Up to now, the medical use of the biomaterial comprises implants for maxillo-facial surgery, i.e. augmentation of soft tissues (seven cases); reparation of fractured eye sockets (12 cases) and in special indications (two cases). The clinical results obtained so far are presented here as case reports. These preliminary results are very encouraging for a broader utilization of this type of biomaterial in the surgical fields of human medicine.

Adult↗

p(HEMA) composite as allografting material during therapy of periodontal disease: three case reports.

The p(HEMA) composite is shown to be a possibly effective allografting material for therapy of periodontal disease. Three cases from a clinical pilot study are presented in this report. The p(HEMA) composite may be used alone or as a part of more complex biomaterial, together with tricalcium phosphate ceramics. Further scientific and clinical work is needed for definitive judgement on the use of the p(HEMA) composite in periodontology.

Adult↗

Poly(HEMA)-collagen composite as a biomaterial for hard tissue replacement.

This article briefly reviews the possibilities for hard tissue replacement with a new biomaterial. The basic differences found experimentally for polymer (HEMA) and collagen composite at the biological environment are stressed. The influence of the collagen distribution and matrix porosity of composite material on biodegradation is also discussed.

Animals↗

Preparation of poly(2-hydroxyethyl methacrylate)-collagen composites.

Linear and three-dimensional polymer composites were prepared on the basis of poly(2-hydroxyethyl methacrylate)--pHEMA--and collagen. Their biological properties were tested by in vitro as well as in vivo methods. The composite material (unlike pure pHEMA) supported myoblast adhesion as well as their fusion into multinuclear myotubes in vitro. The three-dimensional polymer composites stimulated a new bone formation after their intraosseal implantation in dogs and pigs. The biomaterial itself was degraded in the host organism, in contrast to stable pHEMA.

Animals↗

Artificial mineralization in vitro--a model of tissue mineralization.

Calcium chloride and sodium hydrogen phosphate form precipitation zones in gelatin gel, gel supplemented with cartilaginous extract, articular cartilage slices, and in demineralized bone. The cartilaginous extract exerts a marked inhibitory effect on the crystal quantity and clustering. The pretreatment of cartilage slices with hyaluronidase increases the crystal frequency. The morphology of crystals formed in gelatin and in cartilage was similar but quite different from the precipitation pattern found in demineralized bone.

Animals↗

Changes in vascular pattern of chicken chorioallantois after cartilaginous extract, chondroitin sulfate and dextran sulfate treatment.

Cartilaginous extract, chondroitin sulfate C as well as dextran sulfate in gelatin pellets have an inhibitory effect on the development of fine capillaries, in contrast to pure gelatin pellets or pellets with sucrose. These results suggest an unspecific inhibitory effect of anionic saccharidic polymers on the development of chorioallantoic membrane vessels, because the chemical structure of dextran sulfate is (except anionic groups) different from chondroitin sulfate in the pure form or in the form of proteoglycans (in cartilaginous extract).

Allantois↗

Implantation of p(HEMA)-collagen composite into bone.

The replacement of bone defects is very important in clinical practice. This study compares biological properties of poly(2-hydroxyethyl methacrylate)-collagen composite with those exhibited by pure p(HEMA), an insoluble fraction of calf skin collagen (ISC-40) and demineralized bone matrix after implantation into pig or dog femurs. The levels of biodegradation or destruction of implants and healing of bone defects were studied using X-ray photography, histology and enzyme histochemistry. The results indicated a significant effect of collagen on biological destruction of the p(HEMA)-composite implants; even a minute amount of collagen influences this process dramatically. A stimulatory action of collagen on new bone formation may be of importance in bone defect healing.

Animals↗

Electrostatic interaction influences cell adhesion?

The effect of electrostatic forces on the adhesion of LEP-19 diploid embryonal fibroblasts, Hep-2 laryngeal carcinoma cells, Raji lymphoblastoma cells and Sp 2/0 myeloma cells was examined in vitro. Adhesivity of all tested cell lines was higher on the cationized glass than on untreated or anionized glass. The negatively charged sialic acids on the cell surface play a role in cell adhesion. The participation of electrostatic interaction is independent of the energy metabolism in serum-free conditions.

Anions↗

Structural alterations of p(HEMA)--collagen implants.

Samples of linear (additionally crosslinked) p(HEMA) with different amounts of fibrillar collagen were implanted into the popliteal region of rats. After 3 month, the implanted materials were harvested and examined by SEM. The implants underwent marked structural or morphological changes. While the fibrillar collagen was readily resorbed by invading cells, the synthetic constituent persisted to biodegradation. The p(HEMA) residues were shaped into spherical particles, approx. 1-15 microns in diameter. The possible fate of these microparticles in the host organism is discussed.

Animals↗

[The effect of the monomer HEMA (2-hydroxyethylmethacrylate) on cells cultured in vitro].

Techniques of dynamical observation of biotolerance as well as percentual mitotic determination have been applied to study the cytotolerance of HEMA monomer on the human in vitro cells. On these conditions, such a monomer was stated to show the complete cytotolerance concentrated as 1:1000, almost complete cytotolerance when diluted as 1:500, and the expressed toxicity when concentrated as 1:100, that is in the concentration which is tolerated well on implantation animal experiments. Of more sensitivity is therefore the test which uses the in vitro cultivated cells as an experimental object.

Cells, Cultured↗

Comparison of the influence of gelatine and collagen substrates on growth of chondrocytes.

The effect of culture substrates on adhesion and growth of chondrocytes and the influence of varying amounts of foetal calf serum on cell proliferation are compared. Skin and cartilage gelatines and type II collagen were used as substrates. The cells used in the experiments were the primary cultures of chondrocytes, frozen primary cultures of chondrocytes and chondrocytes after the 1st subculture. Cartilage gelatine had a more marked influence on cell proliferation than skin gelatine, especially in primary cultures. The differences were off in cells after the 1st subculture. Differences in the number of cells are evident also after decreasing the serum concentration in culture medium.

Animals↗

[Collagen as a biomaterial].

The authors discuss the characteristics of different types of collagen, their incidence, structure, chemical composition and physical properties with regard to their use as biomaterial. They also mention the antigenicity, effect on platelet aggregation, cytodifferentiation and cellular proliferation. The authors discuss different biomedical applications of collagen and methods of its sterilization.

Biocompatible Materials↗