Page 440 - IJB-9-4
P. 440
International Journal of Bioprinting 3D bioprinting of artificial blood vessel
Structural and rheological properties of methacrylamide 121. Nguyen AK, Goering PL, Elespuru RK, et al., 2020, The
modified gelatin hydrogels. Biomacromolecules, 1: 31–38. photoinitiator lithium phenyl (2,4,6-Trimethylbenzoyl)
phosphinate with exposure to 405 nm light is cytotoxic to
https://doi.org/10.1021/bm990017d
mammalian cells but not mutagenic in bacterial reverse
111. Loessner D, Meinert C, Kaemmerer E, et al., 2016, mutation assays. Polymer (Basel), 12: 1489.
Functionalization, preparation and use of cell-laden gelatin
methacryloyl-based hydrogels as modular tissue culture https://doi.org/10.3390/polym12071489
platforms. Nat Protoc, 11: 727–746. 122. Yin J, Yan M, Wang Y, et al., 2018, 3D Bioprinting of low-
https://doi.org/10.1038/nprot.2016.037 concentration cell-laden gelatin methacrylate (GelMA)
bioinks with a two-step cross-linking strategy. ACS Appl
112. Wang Z, Jin X, Dai R, et al., 2016, An ultrafast hydrogel Mater Interfaces, 10: 6849–6857.
photocrosslinking method for direct laser bioprinting. RSC
Adv, 6: 21099–21104. https://doi.org/10.1021/acsami.7b16059
https://doi.org/10.1039/C5RA24910D 123. Kirsch M, Birnstein L, Pepelanova I, et al., 2019, Gelatin-
methacryloyl (GelMA) formulated with human platelet
113. Sk MM, Das P, Panwar A, et al., 2021, Synthesis and lysate supports mesenchymal stem cell proliferation and
characterization of site selective photo-crosslinkable glycidyl differentiation and enhances the hydrogel’s mechanical
methacrylate functionalized gelatin-based 3D hydrogel properties. Bioengineering (Basel), 6: 76.
scaffold for liver tissue engineering. Mater Sci Eng C Mater
Biol Appl, 123: 111694. https://doi.org/10.3390/bioengineering6030076
https://doi.org/10.1016/j.msec.2020.111694 124. Wüst S, Godla ME, Müller R, et al., 2014, Tunable hydrogel
composite with two-step processing in combination
114. Fedorovich NE, Oudshoorn MH, van Geemen D, et al., 2009, with innovative hardware upgrade for cell-based three-
The effect of photopolymerization on stem cells embedded dimensional bioprinting. Acta Biomater, 10: 630–640.
in hydrogels. Biomaterials, 30: 344–353.
https://doi.org/10.1016/j.actbio.2013.10.016
https://doi.org/10.1016/j.biomaterials.2008.09.037
125. Jin Q, Jin G, Ju J, et al., 2022, Bioprinting small-diameter
115. Hennink WE, van Nostrum CF, 2002, Novel crosslinking vascular vessel with endothelium and smooth muscle by
methods to design hydrogels. Adv Drug Deliv Rev, 54: 13–36. the approach of two-step crosslinking process. Biotechnol
https://doi.org/10.1016/s0169-409x(01)00240-x Bioeng, 119: 1673–1684.
116. Rouillard AD, Berglund CM, Lee JY, et al., 2011, Methods https://doi.org/10.1002/bit.28075
for photocrosslinking alginate hydrogel scaffolds with high 126. Bupphathong S, Quiroz, C, Huang, W, et al., 2022, Gelatin
cell viability. Tissue Eng Part C Methods, 17: 173–179. methacrylate hydrogel for tissue engineering applications-a
https://doi.org/10.1089/ten.TEC.2009.0582 review on material modifications. Pharmaceuticals, 15: 171.
117. Camci-Unal G, Cuttica D, Annabi N, et al., 2013, Synthesis https://doi.org/10.3390/ph15020171
and characterization of hybrid hyaluronic acid-gelatin 127. Cui H, Zhu W, Huang Y, et al., 2019, In vitro and in vivo
hydrogels. Biomacromolecules, 14: 1085–1092. evaluation of 3D bioprinted small-diameter vasculature
https://doi.org/10.1021/bm3019856 with smooth muscle and endothelium. Biofabrication,
12: 015004.
118. Duan B, Kapetanovic E, Hockaday LA, et al., 2014, Three-
dimensional printed trileaflet valve conduits using biological https://doi.org/10.1088/1758-5090/ab402c
hydrogels and human valve interstitial cells. Acta Biomater, 128. Ruther F, Distler T, Boccaccini AR, et al., 2018, Biofabrication
10: 1836–1846. of vessel-like structures with alginate di-aldehyde-gelatin
https://doi.org/10.1016/j.actbio.2013.12.005 (ADA-GEL) bioink. J Mater Sci Mater Med, 30: 8.
119. Fan Y, Yue Z, Lucarelli E, et al., 2020, Hybrid printing using https://doi.org/10.1007/s10856-018-6205-7
cellulose nanocrystals reinforced GelMA/HAMA hydrogels 129. Zhuang P, Ng WL, An J, et al., 2019, Layer-by-layer
for improved structural integration. Adv Healthc Mater, 9: ultraviolet assisted extrusion-based (UAE) bioprinting of
e2001410. hydrogel constructs with high aspect ratio for soft tissue
https://doi.org/10.1002/adhm.202001410 engineering applications. PLoS One, 12: e0216776.
120. Mouser VH, Levato R, Mensinga A, et al., 2020, Bio-ink https://doi.org/10.1371/journal.pone.0216776
development for three-dimensional bioprinting of hetero- 130. Crapo PM, Gilbert TW, Badylak SF, 2011, An overview
cellular cartilage constructs. Connect Tissue Res, 61: 137–151. of tissue and whole organ decellularization processes.
https://doi.org/10.1080/03008207.2018.1553960 Biomaterials, 32: 3233–3243.
Volume 9 Issue 4 (2023) 432 https://doi.org/10.18063/ijb.740

