Polishing and coating carbon fiber-reinforced carbon composites with a carbon-titanium layer enhances adhesion and growth of osteoblast-like MG63 cells and vascular smooth muscle cellsin vitro
Полировка и покрытие углерод-углеродных композитов, армированных углеродным волокном, углеродно-титановым слоем повышают адгезию и рост остеобластоподобных клеток MG63 и клеток гладкой мышцы сосудов in vitro
2000-01-01
SCID: 54.1/yzv8d2vw
Discuss with AI
MG63 osteoblast-like cellscarbon fiber-reinforced carbon compositescarbon-titanium coatingplasma-enhanced physical vapor depositionvascular smooth muscle cells
Figures from the paper
Abstract (AI)
Carbon fiber-reinforced carbon composites (CFRC) are considered to be promising materials for orthopedic and dental surgery. Their mechanical properties can be tailored to be similar to those of bone, and their chemical composition (close to pure carbon) promises that they will be tolerated well by the surrounding tissue. In this study, CFRC composites were fabricated from phenolic resin and unidirectionally oriented Torayca carbon fibers by carbonization (1000 degrees C) and graphitization (2500 degrees C). The material then was cut with a diamond saw into sheets of 8 x 10 x 3 mm, and the upper surface was polished by colloidal SiO2 and/or covered with a carbon-titanium (C:Ti) layer (3.3 microm) using the plasma-enhanced physical vapor deposition method. Three different kinds of modified samples were prepared: polished only, covered only, and polished + covered. Untreated samples served as a control. The surface roughness of these samples, measured by a Talysurf profilometer, decreased significantly after polishing but usually did not decrease after coating with a C:Ti layer. On all three modified surfaces, human osteoblast-like cells of the MG63 line and rat vascular smooth muscle cells (both cultured in a Dulbecco's minimum essential medium with 10% fetal bovine serum) adhered at higher numbers (by 21-87% on day 1 after seeding) and exhibited a shorter population doubling time (by 13-40%). On day 4 after seeding, these cells attained higher population densities (by 61-378%), volume (by 18-37%), and protein content (by 16-120%). These results were more pronounced in VSMC than in MG63 cells and in both groups of C:Ti-covered samples than in the polished only samples. The release of carbon particles from the CFRC composites was significantly decreased--by 8 times in the polished only, 24 times in the covered only, and 42 times in the polished + covered samples. These results show that both polishing and carbon-titanium covering significantly improve the biocompatibility of CFRC composites in vitro, especially when these two modifications are combined.
Key Findings
1
Carbon particle release decreased 8-fold after polishing, 24-fold after coating, and 42-fold after combined polishing and coating, indicating improved biocompatibility.
2
Cell-growth improvements were stronger for vascular smooth muscle cells and for carbon-titanium-coated samples than for polishing alone.
3
Modified CFRC surfaces shortened cell population doubling times by 13–40% and increased day-4 cell density, volume, and protein content.
4
Polishing CFRC surfaces with colloidal SiO₂ significantly reduced surface roughness, whereas carbon-titanium coating generally did not further reduce roughness.
5
Polishing and/or carbon-titanium coating increased MG63 osteoblast-like cell and vascular smooth muscle cell adhesion by 21–87% on day 1.
Research Object
Carbon fiber-reinforced carbon (CFRC) composite surfaces modified by polishing and/or carbon-titanium (C:Ti) coating, cultured with human MG63 osteoblast-like cells and rat vascular smooth muscle cells in vitro
Research Subject
The effects of surface polishing and C:Ti coating on surface roughness, carbon-particle release, cell adhesion, proliferation, population density, cell volume, and protein content
Publication Details
Publication Date
2000-01-01
Journal
Publisher
ISSN
Access Type
Author Information
Download PDF
Subscribe to digest