Page 150 - IJB-9-4
P. 150
International Journal of Bioprinting 3D-printed scaffolds for osteochondral defects
48. O’Connell CD, Konate S, Onofrillo C, et al., 2020, Free- A review of recent trends and advances. Bioact Mater,
form co-axial bioprinting of a gelatin methacryloyl bio- 3(2):144–156.
ink by direct in situ photo-crosslinking during extrusion. 63. Kumar H, Sakthivel K, Mohamed MG, et al., 2021, Designing
Bioprinting, 19:e00087.
gelatin methacryloyl (GelMA)‐based bioinks for visible
49. Sodupe Ortega E, Sanz-Garcia A, Pernia-Espinoza A, et al., light stereolithographic 3D biofabrication. Macromol Biosci,
2019, Efficient fabrication of polycaprolactone scaffolds for 21(1):2000317.
printing hybrid tissue-engineered constructs. Materials,
12(4):613. 64. Zhu S, Chen P, Chen Y, et al., 2020, 3D-printed
extracellular matrix/polyethylene glycol diacrylate hydrogel
50. Gong L, Li J, Zhang J, et al., 2020, An interleukin-4-loaded incorporating the anti-inflammatory phytomolecule
bi-layer 3D printed scaffold promotes osteochondral honokiol for regeneration of osteochondral defects. Am J
regeneration. Acta Biomater, 117:246–260. Sports Med, 48(11):2808–2818.
51. Ginestra P, Pandini S, Ceretti E, 2020, Hybrid multi-layered 65. Mano J, Reis R, 2007, Osteochondral defects: Present
scaffolds produced via grain extrusion and electrospinning situation and tissue engineering approaches. J Tissue Eng
for 3D cell culture tests. Rapid Prototyp J, 26(3):593–602. Regen Med, 1(4):261–273.
52. Kilian D, Ahlfeld T, Akkineni AR, et al., 2020, 3D 66. Galois L, Freyria A, Grossin L, et al., 2004, Cartilage
bioprinting of osteochondral tissue substitutes—In vitro- repair: Surgical techniques and tissue engineering
chondrogenesis in multi-layered mineralized constructs. Sci using polysaccharide- and collagen-based biomaterials.
Rep, 10(1):1–17. Biorheology, 41(3-4):433–443.
53. Diloksumpan P, De Ruijter M, Castilho M, et al., 2020, 67. Nair LS, Laurencin CT, 2007, Biodegradable polymers as
Combining multi-scale 3D printing technologies to engineer biomaterials. Progr Polym Sci, 32(8-9):762–798.
reinforced hydrogel-ceramic interfaces. Biofabrication,
12(2):025014. 68. Gonçalves AM, Moreira A, Weber A, et al., 2021,
Osteochondral tissue engineering: The potential of
54. Chen L, Deng C, Li J, et al., 2019, 3D printing of a lithium- electrospinning and additive manufacturing. Pharmaceutics,
calcium-silicate crystal bioscaffold with dual bioactivities 13(7):983.
for osteochondral interface reconstruction. Biomaterials,
196:138–150. 69. Qiao Z, Lian M, Han Y, et al., 2021, Bioinspired stratified
electrowritten fiber-reinforced hydrogel constructs
55. Gao F, Xu Z, Liang Q, et al., 2018, Direct 3D printing of with layer-specific induction capacity for functional
high strength biohybrid gradient hydrogel scaffolds for osteochondral regeneration. Biomaterials, 266:120385.
efficient repair of osteochondral defect. Adv Funct Mater,
28(13):1706644. 70. Li L, Duan X, Fan Z, et al., 2018, Mesenchymal stem cells
in combination with hyaluronic acid for articular cartilage
56. Saidy NT, Wolf F, Bas O, et al., 2019, Biologically inspired defects. Sci Rep, 8(1):1–11.
scaffolds for heart valve tissue engineering via melt
electrowriting. Small, 15(24):1900873. 71. Huang X, Chen Z, Zhao G, et al., 2020, Combined culture
experiment of mouse bone marrow mesenchymal stem cells
57. Hejazi F, Bagheri-Khoulenjani S, Olov N, et al., 2021, and bioceramic scaffolds. Exp Ther Med, 20(5):19.
Fabrication of nanocomposite/nanofibrous functionally
graded biomimetic scaffolds for osteochondral tissue 72. Zhang L, He A, Yin Z, et al., 2014, Regeneration of
regeneration. J Biomed Mater Res A, 109(9):1657–1669. human-ear-shaped cartilage by co-culturing human
microtia chondrocytes with BMSCs. Biomaterials, 35(18):
58. Wortmann M, Frese N, Sabantina L, et al., 2019, New 4878–4887.
polymers for needleless electrospinning from low-toxic
solvents. Nanomaterials, 9(1):52. 73. Peng XB, Zhang Y, Wang YQ, et al., 2019, IGF‐1 and BMP‐7
synergistically stimulate articular cartilage repairing in the
59. Saidy NT, Shabab T, Bas O, et al., 2020, Melt electrowriting rabbit knees by improving chondrogenic differentiation
of complex 3D anatomically relevant scaffolds. Front Bioeng of bone-marrow mesenchymal stem cells. J Cell Biochem,
Biotechnol, 8:793. 120(4):5570–5582.
60. Wunner FM, Wille ML, Noonan TG, et al., 2018, Melt 74. Xue J, He A, Zhu Y, et al., 2018, Repair of articular cartilage
electrospinning writing of highly ordered large volume defects with acellular cartilage sheets in a swine model.
scaffold architectures. Adv Mater, 30(20):1706570. Biomed Mater, 13(2):025016.
61. Stansbury JW, Idacavage MJ, 2016, 3D printing with 75. Koh Y-G, Kwon O-R, Kim Y-S, et al., 2016, Adipose-
polymers: Challenges among expanding options and derived mesenchymal stem cells with microfracture versus
opportunities. Dent Mater, 32(1):54–64. microfracture alone: 2-year follow-up of a prospective
randomized trial. Arthroscopy, 32(1):97–109.
62. Derakhshanfar S, Mbeleck R, Xu K, et al., 2018, 3D
bioprinting for biomedical devices and tissue engineering: 76. Williams R, Khan IM, Richardson K, et al., 2010,
Identification and clonal characterisation of a progenitor cell
Volume 9 Issue 4 (2023) 142 https://doi.org/10.18063/ijb.724

