| Literature DB >> 31113975 |
Yao-Tsung Hsu1, Chih-Yu Wu2, Zhen-Yu Guan1, Ho-Yi Sun1, Chieh Mei1, Wen-Chien Chen3, Nai-Chen Cheng4, Jiashing Yu5, Hsien-Yeh Chen6.
Abstract
Surface modification layers are performed oEntities:
Mesh:
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Year: 2019 PMID: 31113975 PMCID: PMC6529445 DOI: 10.1038/s41598-019-43999-6
Source DB: PubMed Journal: Sci Rep ISSN: 2045-2322 Impact factor: 4.379
Figure 1Characterization of the thermostability using IRRAS for the modified surfaces on (a) bare benzoyl-PPX, (b) bare maleimide-PPX, (c) CHX-immobilized surface, (d) BMP-2-immobilized surface, and (e) RGDACC-immobilized surface. The spectra were recorded on the same samples for the selected surfaces with elevated temperatures from 25 °C to 200 °C.
Figure 2Characterization of the mechanical stability by using the cross-cut tape adhesion test and IRRAS for the modified surfaces. (a) Images from the digital camera of bare PPX coating modified on a gold substrate before and after the cross-cut tape adhesion test. The bare coating of benzoyl-PPX was used for the demonstration. (b) Images from the digital camera of the molecule immobilization modification on a silicon substrate before and after the cross-cut tape adhesion test. The molecule of BMP-2 was used for the demonstration. IRRAS spectra were also recorded before and after the cross-cut tape adhesion test for the modified surface on (e) bare benzoyl-PPX, (f) bare maleimide-PPX, (g) CHX-immobilized surface, (h) BMP-2-immobilized surface, and (i) RGDACC-immobilized surface.
Figure 3Analysis of cell viability and proliferation for the modified surfaces including the bare coatings of benzoyl-PPX and maleimide-PPX, and the modification of immobilized CHX, BMP-2, and RGDACC surfaces. (a) Fluorescence micrographs of the cultured 3T3 fibroblasts on the studied surfaces after 24 and 120 hours. (b) Statistical analysis of the 3T3 fibroblasts viability by the MTT assay on the surfaces after 24 and 120 hours. (c) Fluorescence micrographs of the cultured MΦs on the studied surfaces after 24 and 120 hours. (d) Statistical analysis of the MΦs viability by the MTT assay on the surfaces after 24 and 120 hours. Each bar in (b,d) represented the mean values (±SD) of three independent experiments.
Figure 4Analysis of the MΦ morphology on the modified surfaces. (a) Compiled images including the fluorescence micrographs of the stained cytoskeleton (F-actin, red channel) and nuclei (DAPI, blue channel), and the overlaid images of both red and blue channels. Phase-contrast micrographs were also shown for the comparison. The statistical results of (b) cell length and (c) nuclei diameter of the cultured MΦs on the studied surfaces. Data analysis was performed after 24 hours of cell culture (***P < 0.001).
Figure 5Characterization of the inflammatory responses of the cultured MΦs on the modified surfaces. Statistical analysis of the secreted inflammatory indicators including (a) TNF-α, (b) IL-1β, and (c) NO, from the cultured MΦs on the studied surfaces. Analysis was performed after 24 hours and 120 hours of cell culture. Each bar represents the mean values (±SD) of three independent experiments (***P < 0.001). The results were normalized with respect to the amount of intracellular total proteins.