Big Chemical Encyclopedia

Chemical substances, components, reactions, process design ...

Articles Figures Tables About

Bioartificial materials material

Albertsson and Srivastava (53) produced copolyesters from l,5-dioxepan-2-one and e-caprolactone via lipase catalysis the resulting material was porous and potentially suited for tissue engineering. As noted earlier, Silvestri, et al (7) developed bioartificial polymeric materials with the aim of producing... [Pg.3]

A review is given of the authors work in developing new bioinspired materials, called bioartificial materials. The key is to understand the interactions between the synthetic and biological systems and to obtain materials where these interactions are optimized prior to their contact with a living tissue. The work shown in this paper provides encouraging indication for the developments of new biomaterials containing synthetic and natural components with improved performances for new applications. [Pg.52]

One of the first attempts in the realisation of bioartificial matrices, containing as an enzyme as a biological component was carried out in our research group by Cristallini et al. (5). In view of the basic idea of bioartificial materials, the goal of this study was the analysis of interactions and relationship at nanoscale level between a synthetic component and a-amylase enzyme, from chemical and physical points of view. [Pg.54]

III. Enzyme-based Bioartificial Polymeric Materials through Template Polymerisation ... [Pg.58]

First attempts at template polymerisation were carried out in the radical polymerisation of acrylic monomers onto synthetic templates in aqueous environment and the development of efficient monitoring systems for the investigation of template influence on the reaction kinetics of homo- and copolymerisation (24-30). After these studies, attention was devoted to transferring the lesson learned by- studying fully synthetic systems to the preparation of bioartificial materials by polymerising acrylic monomers onto a template of natural origin. [Pg.61]

As discussed previously, blends of PVA and a-amylase were prepared from aqueous solutions of the two polymers, proposed by our group as the first bioartificial materials based on enzyme. [Pg.62]

However, the main goal was to study the behavior and performance of a novel bioartificial material (obtained with an innovative method involving prefreezing and inversion steps) as a suitable matrix for the entrapment of proteins or enzymes in a stable manner. The tests performed (determination of enzyme activity, determination of and V ax kinetic parameters, repeatability test) confirmed both that the enzyme immobilised in the bioartificial polymeric matrix maintained its catalytic activity unchanged and that the catalytic reaction rate was comparable with that of the free a-amylase reaction (used as control). [Pg.67]

In the past decade, the authors group investigated the properties and the potential of new bio-inspired materials, named bioartificial materials , in which... [Pg.70]

The authors are sincerely grateful to all the people that worked in the last decade on Bioartificial Polymeric Materials with Enzymatically Controlled Functional Properties. [Pg.73]

D Urso, E.M. and G. Fortier, New bioartificial polymeric material poly(ethylene glycol) cross-linked with albumin. I. Synthesis and swelling properties,/curna( of Bioacth e and Compatible Polymers, 9 (1994) 367-387. [Pg.234]

Giusti P, Lazzeri L, LeUi L. Bioartificial polymeric materials a new method to design biomaterials by using both biological and synthetic polymers. TRIP. 1993 1 261-7. [Pg.168]

Giusti P, Lazzeri L, Petris S, PaUa M, Cascone MG. Collagen based new bioartificial polymeric materials. Biomaterials. 1994 15 1229-33. [Pg.168]

Cascone MG. Dynamic-mechanical properties of bioartificial polymeric materials. Polym Int. 1997 43 55-69. [Pg.168]

C. CristalHni, N. Barbani, P. Giusti, L. Lazzeri, M. G. Cascone, and G. CiardelH, Polymerisation onto biological templates, a new way to obtain bioartificial polymeric materials. Macromol. Chem. Phys. 202, 2104-2113 (2001). [Pg.389]

Giusti, R, L. Lazzeri, and L. Lelli (1993). Bioartificial polymeric materials, TRIP, 1,352. [Pg.85]

Cascone, M.G., Giusti, P., Lazzeri, L., Pollicino, A., and Recca, A. (1996) Surface characterization of collagen-based bioartificial polymeric materials. J. Biomater Sci. Polym. Ed., 7, 917-924. [Pg.677]

M., and belli, L. (1993) Hydrogels of poly(vinyl alcohol) and collagen as new bioartificial materials. Physical and morphological study. J. Mater. Sci. Mater. Med., 4, 538-542. [Pg.105]


See other pages where Bioartificial materials material is mentioned: [Pg.53]    [Pg.54]    [Pg.54]    [Pg.54]    [Pg.55]    [Pg.55]    [Pg.58]    [Pg.61]    [Pg.67]    [Pg.69]    [Pg.72]    [Pg.84]    [Pg.185]    [Pg.389]    [Pg.75]    [Pg.148]    [Pg.123]    [Pg.60]   
See also in sourсe #XX -- [ Pg.53 ]




SEARCH



Bioartificial

Bioartificial materials

Bioartificial materials

Bioartificial materials delivery

Bioartificial materials delivery systems

Bioartificial materials enzyme-based

Bioartificial materials poly

Bioartificial materials polymerization

Bioartificial materials synthetic components

Bioartificial materials synthetic polymers

Bioartificial materials system

Drug delivery bioartificial materials

© 2024 chempedia.info