| Literature DB >> 26813916 |
Xiaoyu Ma1, Xiangcheng Sun2, Derek Hargrove3, Jun Chen1, Donghui Song3, Qiuchen Dong1, Xiuling Lu3, Tai-Hsi Fan4, Youjun Fu5, Yu Lei1,2.
Abstract
Because of its good biocompatibility and biodegradability, albumins such asEntities:
Mesh:
Substances:
Year: 2016 PMID: 26813916 PMCID: PMC4728389 DOI: 10.1038/srep19370
Source DB: PubMed Journal: Sci Rep ISSN: 2045-2322 Impact factor: 4.379
Figure 1(a) The right vial contains BSA hydrogel after GA cross-linking, while the left vial contains 20% BSA solution as a comparison. (b) The schematic of GA-cross-linked BSA hydrogel (not in scale).
Figure 2UV-vis spectra of BSA solution (a) and GA cross-linked BSA hydrogel (b), respectively.
Figure 3(a) BSA hydrogel under normal white light;(b) BSA hydrogel image (excited at 470 nm) is collected using a λ = 530 nm optical filter; (c) BSA hydrogel image (excited at 595 nm) is collected using a λ = 630 nm optical filter. (d) HSA hydrogel image (excited at 470 nm) is collected using a λ = 530 nm optical filter. (e) HAS hydrogel image (excited at 595 nm) is collected using a λ = 630nm optical filter.
Figure 4(a) and (b) Emission scans when excited between λ = 370 nm and λ = 600 nm, split into two figures for the sake of clear display. (c) Three Excitation scans with the Emission wavelength at λ = 510 nm, 550 nm, 602 nm, respectively. (d) Synchronous scan.
Figure 5(a) The SEM image of 10% BSA hydrogel; (b) The SEM image of 20% BSA hydrogel; (c) The SEM image of 30% BSA hydrogel; (d) The FTIR spectra of BSA hydrogel and BSA powder, respectively.
Figure 6(a) Compression test and (b) Tensile test results.
Figure 7(a) Cell survival rate versus BSA hydrogel extract in cytotoxicity test; (b) BSA hydrogel digested by proteinase K; (c) Fluorescence images of the digested BSA hydrogel excited at a wavelength of λ = 470 nm and λ = 595 nm and collected using a λ = 530 nm optical filter and a λ = 630 nm optical filter, respectively.
Figure 8Fluorescence images of the 7-month old mouse with injected BSA hydrogel acquired at different time period.
Figure 9Empirical parameters applied to the mathematical model:
(a) scaled strength A = 500, shape factor k = 1.5, scale parameter λ = 10 day, and phase lag T = 1.5 day for the Weibull function, (b) source term S(r, t), radius R = 0.42 mm for a modified gauge-18 indwelling needle, (c) the fitted initial condition c(r, 0) = 0.1 + 0.8 exp(−0.16r1.5).
Figure 10(a) Extracted radiant fluorescence intensity (dots) versus time for five various locations at r = 2.475, 4.243, 6.790, 8.770, and 11.170 mm. (b) The calculated results on the transient distribution of apparent fluorophore concentration at the corresponding locations. The diffusivity D is approximately 4.32 mm2/day.
Figure 11(a) Fluorescence images of the 2-month old mouse with injected BSA hydrogel acquired at different time period. (b) Extracted radiant fluorescence intensity (dots) versus time.
Figure 12(a) skin tissue images in which hyperkeratosis was shown on the surface of epidermis (100×); (b) skin tissue focus on subcutaneous area. Inset shows the BSA hydrogel residue in th imjection site (40×) (20 days post injection).
Figure 13The histology study.
(a) Skin tissue images (Inset shows the skin around the injection site) (40×); (b) Pancreas tissue image (40×); (c) Liver tissue images (100×); (d) Lymph node tissue images (40×).