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Bioink for Reconstruction of Rigid-living Systems
García-Roche. In addition, supplementary figures were 9. Mass T, et al., 2017, Amorphous Calcium Carbonate Particles
designed and created with the aid of http://biorender. form Coral Skeletons. Proc Natl Acad Sci, 114:E7670–8.
com/. This work was financially supported by the King https://doi.org/10.1073/pnas.1707890114
Abdullah University of Science and Technology. 10. Wangpraseurt D, You S, Azam F, et al., 2020, Bionic 3D
Conflicts of interest Printed Corals. Nat Commun, 11:1748.
11. Yu AC, Reinhart M, Hunter R, et al., 2021, Seasonal Impact
The authors declare that they do not have any competing of Phosphate-Based Fire Retardants on Soil Chemistry
interests.
Following the Prophylactic Treatment of Vegetation. Environ
Authors’ Contributions Sci Technol, 55:2316–23.
C.A.E.H. guided and supervised the project. A. A. R. https://doi.org/10.1021/acs.est.0c05472.s001
designed and supervised the experiments. A. A. R., 12. Loessner D, Meinert C, Kaemmerer E, et al., Functionalization,
A.U.V.P., H.H.S., G.B., R.P.P., A. A., and Z. K. conducted Preparation and use of Cell-laden Gelatin Methacryloyl-
experiments and contributed intellectually to the scientific based Hydrogels as Modular Tissue Culture Platforms. Nat
design of the project. P.B. mentored the technical part of Protoc, 11:727–46.
the project. https://doi.org/10.1038/nprot.2016.037
References 13. Khan Z, Kahin K, Rauf S, et al., 2019, Optimization of a 3D
Bioprinting Process Using Ultrashort Peptide Bioinks. Int J
1. Chesterman J, Zhang Z, Ortiz O, et al., 2020, Biodegradable Bioprint, 5:173.
Polymers. In: Principles of Tissue Engineering. 5 ed., Ch. 18. https://doi.org/10.18063/ijb.v5i1.173
th
Academic Press, United States, p317-342. 14. Gong J, Schuurmans CC, van Genderen AM, et al.,
https://doi.org/10.1016/j.matpr.2020.01.437 2020, Complexation-induced Resolution Enhancement of
2. Biswal T, BadJena SK, Pradhan D, 2020, Sustainable 3D-Printed Hydrogel Constructs. Nat Commun, 11:1267.
Biomaterials and their Applications: A Short Review. Mater 15. Gonzalez-Rios JA, Valle-Pérez AU, Amaya-Delgado L, et al.,
Today, 30:274–82. 2021, A Quick Fed-batch Saccharification Strategy of Wheat
3. Simionescu BC, Ivanov D, 2015, Natural and Synthetic Straw at High Solid Loadings Improving Lignocellulosic
Polymers for Designing Composite Materials. In: Handbook Ethanol Productivity. Biomass Conversion Biorefinery.
of Bioceramics and Biocomposites. Ch. 11-1. Wiley-VCH: https://doi.org/10.1007/s13399-021-01580-0
Weinheim, Germany, p1–54. 16. Valle-Pérez AU, Flores-Cosío G, Amaya-Delgado L, 2021,
https://doi.org/10.1007/978-3-319-09230-0_11-1 Bioconversion of Agave Bagasse to Produce Cellulases and
4. Lee M, Rizzo R, Surman F, Zenobi-Wong M, 2020, Guiding Xylanases by Penicillium citrinum and Aspergillus fumigatus
Lights: Tissue Bioprinting Using Photoactivated Materials. in Solid-State Fermentation. Waste Biomass Valorization.
Chem Rev, 120:10950–1027. https://doi.org/10.1007/s12649-021-01397-y
https://doi.org/10.1021/acs.chemrev.0c00077 17. Susapto HH, Alhattab D, Abdelrahman S, et al., 2021,
5. Chimene D, Miller L, Cross LM, et al., 2020, Nanoengineered Ultrashort Peptide Bioinks Support Automated Printing of
Osteoinductive Bioink for 3D Bioprinting Bone Tissue. ACS Large-Scale Constructs Assuring Long-Term Survival of
Appl Mater Interfaces, 12:15976–88. Printed Tissue Constructs. Nano Lett, 21:2719–29.
https://doi.org/10.1021/acsami.9b19037 https://doi.org/10.1021/acs.nanolett.0c04426.s010
6. Zhou H, Lee J, 2011, Nanoscale Hydroxyapatite Particles for 18. Theus AS, Ning L, Hwang B, et al., 2020, Bioprintability:
Bone Tissue Engineering. Acta Biomater, 7:2769–81. Physiomechanical and Biological Requirements of Materials
7. Kelly BE, Bhattacharya I, Heidari H, et al, 2019, Volumetric for 3D Bioprinting Processes. Polymers (Basel), 12:2262.
Additive Manufacturing Via Tomographic Reconstruction. https://doi.org/10.3390/polym12102262
Science, 363:1075–9. 19. Doostmohammadi A, Monshi A, Salehi R, et al., 2011,
https://doi.org/10.1126/science.aau7114 Cytotoxicity Evaluation of 63s Bioactive Glass and Bone-
8. Leggat WP, Camp EF, Suggett DJ, et al., 2019, Rapid Coral Derived Hydroxyapatite Particles Using Human Bone-
Decay is Associated with Marine Heatwave Mortality Events marrow Stem Cells. Biomed Pap Med Fac Univ Palacky
on Reefs. Curr Biol, 29:2723–30.e4. Olomouc Czech Repub, 155:323–6.
https://doi.org/10.1016/j.cub.2019.06.077 https://doi.org/10.5507/bp.2011.028
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