Page 38 - IJB-7-3
P. 38
3D Bioprinted Organoids
42. Takasato M, Er PX, Chiu HS, et al., 2016, Kidney Organoids 55. Linnemann JR, Miura H, Meixner LK, et al., 2015,
from Human iPS Cells Contain Multiple Lineages and Model Quantification of Regenerative Potential in Primary Human
Human Nephrogenesis. Nature, 536:238. Mammary Epithelial Cells. Development, 142:3239–51.
https://doi.org/10.1038/nature17982 56. Sarvestani SK, Signs S, Hu B, et al., 2021, Induced Organoids
43. Homan KA, Kolesky DB, Skylar-Scott MA, et al., 2016, Derived from Patients with Ulcerative Colitis Recapitulate
Bioprinting of 3D Convoluted Renal Proximal Tubules on Colitic Reactivity. Nat Commun, 12:262.
Perfusable Chips. Scic Rep, 6:34845. https://doi.org/10.1038/s41467-020-20351-5
https://doi.org/10.1038/srep34845 57. Qu ML, Xiong L, Lyu YL, et al., Establishment of Intestinal
44. King SM, Higgins JW, Nino CR, et al., 2017, 3D Proximal Organoid Cultures Modeling Injury-Associated Epithelial
Tubule Tissues Recapitulate Key Aspects of Renal Physiology Regeneration. Cell Res, 31:259–71.
to Enable Nephrotoxicity Testing. Front Physiol, 8:18. https://doi.org/10.1038/s41422-020-00453-x
https://doi.org/10.3389/fphys.2017.00123 58. Curvello R, Kerr G, Micati DJ, et al., 2021, Engineered Plant-
45. Lawlor KT, Vanslambrouck JM, Higgins JW, et al., Based Nanocellulose Hydrogel for Small Intestinal Organoid
Cellular Extrusion Bioprinting Improves Kidney Organoid Growth. Adv Sci, 8:2002135.
Reproducibility and Conformation. Nat Mater, 20:260–71. https://doi.org/10.1002/advs.202002135
https://doi.org/10.3390/mi10100676 59. Lukonin I, Serra D, Meylan LC, et al., 2020, Phenotypic
46. Deng J, Wei WB, Chen ZZ, et al., 2019, Engineered Liver- Landscape of Intestinal Organoid Regeneration. Nature,
On-A-Chip Platform to Mimic Liver Functions and Its 586:275–80.
Biomedical Applications: A Review. Micromachines, 10:26. 60. Kim WJ, Kim GH, 2020, An Intestinal Model with a Finger-
47. Huch M, Dorrell C, Boj SF, et al., 2013, In Vitro Expansion Like Villus Structure Fabricated Using a Bioprinting Process
of Single Lgr5(+) Liver Stem Cells Induced by Wnt-Driven and Collagen/SIS-Based Cell-Laden Bioink. Theranostics,
Regeneration. Nature, 494:247–50. 10:2495–508.
https://doi.org/10.1038/nature11826 https://doi.org/10.7150/thno.41225
48. Takebe T, Sekine K, Enomura M, et al., 2013, Vascularized 61. Madden LR, Nguyen TV, Garcia-Mojica S, et al., 2018,
and Functional Human Liver from an iPSC-Derived Organ Bioprinted 3D Primary Human Intestinal Tissues Model
Bud Transplant. Nature, 499:481–4. Aspects of Native Physiology and ADME/Tox Functions.
https://doi.org/10.1038/nature12271 Iscience, 2:156–67.
49. Tostões RM, Leite SB, Serra M, et al., 2012, Human Liver https://doi.org/10.1016/j.isci.2018.03.015
Cell Spheroids in Extended Perfusion Bioreactor Culture for 62. Huang L, Holtzinger A, Jagan I, et al., 2015, Ductal
Repeated-Dose Drug Testing. Hepatology, 55:1227–36. Pancreatic Cancer Modeling and Drug Screening Using
https://doi.org/10.1002/hep.24760 Human Pluripotent Stem Cell-and Patient-Derived Tumor
50. Tobias G, Alicia R, Alexander T, et al., 2018, Bioprinting Organoids. Nat Med, 21:1364–71.
Perfusion-Enabled Liver Equivalents for Advanced Organ- https://doi.org/10.1158/1538-7445.panca16-b45
On-A-Chip Applications. Genes, 9:176. 63. Dominijanni A, Mazzocchi A, Shelkey E, et al., 2020,
51. Kang D, Hong G, An S, et al., 2020, Bioprinting of Bioengineered Tumor Organoids. Curr Opin Biomed Eng,
Multiscaled Hepatic Lobules within a Highly Vascularized 13:168–73.
Construct. Small, 16:1905505. 64. Ma L, Li Y, Wu Y, et al., 2020, The Construction of In Vitro
https://doi.org/10.1002/smll.201905505 Tumor Models Based on 3D Bioprinting. Biodes Manuf,
52. Kaur S, Tripathi DM, Ghosh S, 2020, Three-Dimensional 3:227–36.
Bioprinted Hepatorganoids in Liver Failure. Gut, 70:998–9. 65. Drost J, Karthaus W R, Gao D, et al., Organoid Culture
https://doi.org/10.1136/gutjnl-2020-322317 Systems for Prostate Epithelial and Cancer Tissue. Nat
53. Boj SF, Hwang CI, Baker LA, et al., 2015, Organoid Models of Protoc, 11:347–58.
Human and Mouse Ductal Pancreatic Cancer. Cell, 160:324–38. https://doi.org/10.1038/nprot.2016.006
54. Chua CW, Shibata M, Lei M, et al., 2014, Single Luminal 66. Fujii M, Shimokawa M, Date S, et al., 2016, A Colorectal
Epithelial Progenitors Can Generate Prostate Organoids in Tumor Organoid Library Demonstrates Progressive Loss of
Culture. Nat Cell Biol, 16:951. Niche Factor Requirements during Tumorigenesis. Cell Stem
https://doi.org/10.1038/ncb3047 Cell, 18:827–38.
34 International Journal of Bioprinting (2021)–Volume 7, Issue 3

