BIOCOMPATIBILITY OF THE BIOELASTIC MATERIALS, POLY(GVGVP) AND ITS GAMMA-IRRADIATION CROSS-LINKED MATRIX - SUMMARY OF GENERIC BIOLOGICAL TEST-RESULTS

被引:219
作者
URRY, DW
PARKER, TM
REID, MC
GOWDA, DC
机构
[1] Laboratory of Molecular Biophysics The University of Alabama an Birmingham P.O. Box 300 Uniuersity Station, Birmingham
[2] Bioelastics Research, Ltd., Birmingham, AL 35205
基金
美国国家卫生研究院;
关键词
D O I
10.1177/088391159100600306
中图分类号
Q81 [生物工程学(生物技术)]; Q93 [微生物学];
学科分类号
071005 ; 0836 ; 090102 ; 100705 ;
摘要
The complete series of the recommended generic biological tests for materials and devices in contact with tissues and tissue fluids and blood have been carried out by an independent testing laboratory on the elastic protein-based (bioelastic) polymer, poly(L-Val1-L-Pro2-Gly3-L-Val4-Gly5) with a degree of polymerization greater than 120, and its 20 Mrad gamma-irradiation cross-linked elastic matrix, X20-poly(VPGVG). The specific tests and the summarized results given in parentheses are: (1) the Ames mutagenicity test (non-mutagenic), (2) cytotoxicity-agarose overlay (non-toxic), (3) acute systemic toxicity (non-toxic), (4) intracutaneous toxicity (non-toxic), (5) muscle implantation (favorable), (6) acute intraperitoneal toxicity (non-toxic), (7) systemic antigenicity (non-antigenic), (8) dermal sensitization-the Magnusson and Kligman maximization method (non-sensitizing), (9) pyrogenicity (non-pyrogenic), (10) Lee White clotting study (normal clotting time), and (11) in vitro hemolysis test (non-hemolytic). Thus, this new elastomeric polypeptide biomaterial which is based on the most striking repeating sequence in the mammalian elastic fiber exhibits an extraordinary biocompatibility. This parent bioelastic material and a wide range of component peptide variations are under development for an equally wide range of potential medical applications such as prevention of adhesions, drug delivery, and synthetic arteries.
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页码:263 / 282
页数:20
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  • [1] Sandberg L.B., Leslie J.B., N.T. Soskel, N. Engl. J. Med., 304, pp. 566-579, (1981)
  • [2] Yeh H., N. Ornstein-Goldstein, Z. Indik, Collagen and Related Research, 7, pp. 235-247, (1988)
  • [3] Urry D.W., J. Protein Chem., 7, pp. 1-34, (1988)
  • [4] Thomas G.J., Biopolymers, 26, pp. 921-934, (1987)
  • [5] Sciortino F., D.W. Urry, M.U. Palma, Prasad K.U., Biopolymers, 29, pp. 1401-1407, (1990)
  • [6] Chang D.K., Urry D.W., J. of Computational Chemistry, 10, pp. 850-855, (1989)
  • [7] Luan C-H., K.U. Prasad, Urry D.W., R.D. Harris, Biopolymers, 29, pp. 1699-1706, (1990)
  • [8] Urry D.W., Expanding Frontiers in Polypeptide and Protein Structural Research, pp. 352-360, (1991)
  • [9] Urry D.W., Molecular Conformation and Biological Interactions, (1991)
  • [10] Wasserman Z.R., Salemme F.R., Biopolymers, 29, pp. 1613-1631, (1990)