| Literature DB >> 21776301 |
A Gaspar1, L Moldovan, D Constantin, A M Stanciuc, P M Sarbu Boeti, I C Efrimescu.
Abstract
The aim of this study was to obtain four collagen based porous scaffolds and to assess their in vitro biocompatibility and biodegradability in order to use them for skin tissue engineering. We have prepared four variants of collagen-based biodegradable sponges by liophilization of type I collagen solution and three variants of collagen-agarose mixture in different ratios 2:1 (A), 1:1 (B) and 1:2 (C). These scaffolds had microporous structure with a higher than 98% porosity and a reduced biodegradation after their exposure to UV radiation. The incorporation of agarose into the collagen scaffolds has improved their structural stability. In vitro biocompatibility testing for the four types of sponges was performed on a stabilized fibroblast cell line and showed that both cell viability and morphology were not altered by collagen and collagen-agarose variants A and B sponges. These three porous sponges demonstrated potential for future application as cell scaffolds in skin tissue engineering.Entities:
Keywords: agarose; biocompatibility; biostability; collagen; tissue engineering
Mesh:
Substances:
Year: 2011 PMID: 21776301 PMCID: PMC3124265
Source DB: PubMed Journal: J Med Life ISSN: 1844-122X
The porosity and density of scaffold variants
| Sample | COL | COL–AG 2:1(A) | Col–AG 1:1(B) | Col–AG 1:2(C) |
|---|---|---|---|---|
| Porosity (%) | 99.15 | 98.89 | 98.58 | 98.35 |
| Density (g/cm3) | 0.0272 | 0.0290 | 0.0350 | 0.0428 |
Figure 2Degradation of COL based sponges after collagenase treatment. The results are mean for three determination + or - S.D.
Figure 3Neutral Red uptake viability assay of the studied samples. Results are mean of three–determination + or - S.D.
Figure 4LDH viability assay of the studied samples. Results are mean of three–determination ±S.D.
Figure 5NCTC control cell culture(a) and cells exposed for 48 h to the COL sponge (b), COL–AG 2:1 sponge (c), COL–AG 1:1 sponge (d), COL–AG 1:2 (e).