References
1. Lee JM, Yeong WY (2015) A preliminary
model of time-pressure dispensing system for
bioprinting based on printing and material
parameters. Virtual Phys Prototyp 10:3–8
2. Mota C, Puppi D, Chiellini F, Chiellini E
(2015) Additive manufacturing techniques for
the production of tissue engineering constructs. J Tissue Eng Regen Med 9:174–190
3. Li MG, Tian XY, Chen XB (2009) A brief
review of dispensing-based rapid prototyping
techniques in tissue scaffold fabrication: role
of modeling on scaffold properties prediction.
Biofab 1:32001
4. Chia HN, Wu BM (2015) Recent advances in
3D printing of biomaterials. J Biol Eng 9:4
5. Moroni L, Boland T, Burdick JA, De Maria C,
Derby B, Yoo JJ, Vozzi G (2017) Biofabrication: a guide to technology and terminology.
Trends
Biotechnol.
https://doi.org/10.
1016/j.tibtech.2017.10.015
6. Taboas JM, Maddox RD, Krebsbach PH, Hollister SJ (2003) Indirect solid free form fabrication of local and global porous, biomimetic and
composite 3D polymer-ceramic scaffolds. Biomaterials 24:181–194
7. Youssef A, Hollister SJ, Dalton PD, Amin R,
Knowlton S, Hart A (2017) Current and
emerging applications of 3D printing in medicine. Biofabrication 9:1–9
8. Poh PSP, Chhaya MP, Wunner FM, De-JuanPardo EM, Schilling AF, Schantz JT, van
Griensven M, Hutmacher DW (2016) Polylactides in additive biomanufacturing. Adv Drug
Deliv Rev 107:228–246
9. Malda J, Visser J, Melchels FP, Ju ¨ngst T, Hennink WE, Dhert WJA, Groll J, Hutmacher DW
(2013) 25th anniversary article: Engineering
hydrogels for biofabrication. Adv Mater
25:5011–5028
10. Moroni L, de Wijn JR, van Blitterswijk CA
(2006) 3D fiber-deposited scaffolds for tissue
engineering: influence of pores geometry and
architecture on dynamic mechanical properties.
Biomaterials 27:974–985
11. Hendriks JAA, Moroni L, Riesle J, de Wijn JR,
van Blitterswijk CA (2013) The effect of
scaffold-cell entrapment capacity and physicochemical properties on cartilage regeneration.
Biomaterials 34:4259–4265
12. Nandakumar A, Cruz C, Mentink A, Tahmasebi Birgani Z, Moroni L, Van Blitterswijk C,
Habibovic P (2013) Monolithic and assembled
polymer-ceramic composites for bone regeneration. Acta Biomater 9:5708–5717
13. Korpela J, Kokkari A, Korhonen H, Malin M,
Narhi T, Seppalea J (2013) Biodegradable and
bioactive porous scaffold structures prepared
using fused deposition modeling. J Biomed
Mater Res Part B Appl Biomater 101:610–619
14. Marchioli G, Di Luca A, de Koning E,
Engelse M, Van Blitterswijk CA, Karperien M,
Van Apeldoorn AA, Moroni L (2016) Hybrid
polycaprolactone/alginate scaffolds functionalized with VEGF to promote de novo vessel
formation for the transplantation of islets of
langerhans. Adv Healthc Mater 5:1606–1616
15. Di Luca A, Longoni A, Criscenti G, Mota C,
van Blitterswijk C, Moroni L (2016) Toward
mimicking the bone structure: design of novel
hierarchical scaffolds with a tailored radial
porosity gradient. Biofabrication 8:45007
AM of Thermoplastics for Tissue Engineering
99
1. Lee JM, Yeong WY (2015) A preliminary
model of time-pressure dispensing system for
bioprinting based on printing and material
parameters. Virtual Phys Prototyp 10:3–8
2. Mota C, Puppi D, Chiellini F, Chiellini E
(2015) Additive manufacturing techniques for
the production of tissue engineering constructs. J Tissue Eng Regen Med 9:174–190
3. Li MG, Tian XY, Chen XB (2009) A brief
review of dispensing-based rapid prototyping
techniques in tissue scaffold fabrication: role
of modeling on scaffold properties prediction.
Biofab 1:32001
4. Chia HN, Wu BM (2015) Recent advances in
3D printing of biomaterials. J Biol Eng 9:4
5. Moroni L, Boland T, Burdick JA, De Maria C,
Derby B, Yoo JJ, Vozzi G (2017) Biofabrication: a guide to technology and terminology.
Trends
Biotechnol.
https://doi.org/10.
1016/j.tibtech.2017.10.015
6. Taboas JM, Maddox RD, Krebsbach PH, Hollister SJ (2003) Indirect solid free form fabrication of local and global porous, biomimetic and
composite 3D polymer-ceramic scaffolds. Biomaterials 24:181–194
7. Youssef A, Hollister SJ, Dalton PD, Amin R,
Knowlton S, Hart A (2017) Current and
emerging applications of 3D printing in medicine. Biofabrication 9:1–9
8. Poh PSP, Chhaya MP, Wunner FM, De-JuanPardo EM, Schilling AF, Schantz JT, van
Griensven M, Hutmacher DW (2016) Polylactides in additive biomanufacturing. Adv Drug
Deliv Rev 107:228–246
9. Malda J, Visser J, Melchels FP, Ju ¨ngst T, Hennink WE, Dhert WJA, Groll J, Hutmacher DW
(2013) 25th anniversary article: Engineering
hydrogels for biofabrication. Adv Mater
25:5011–5028
10. Moroni L, de Wijn JR, van Blitterswijk CA
(2006) 3D fiber-deposited scaffolds for tissue
engineering: influence of pores geometry and
architecture on dynamic mechanical properties.
Biomaterials 27:974–985
11. Hendriks JAA, Moroni L, Riesle J, de Wijn JR,
van Blitterswijk CA (2013) The effect of
scaffold-cell entrapment capacity and physicochemical properties on cartilage regeneration.
Biomaterials 34:4259–4265
12. Nandakumar A, Cruz C, Mentink A, Tahmasebi Birgani Z, Moroni L, Van Blitterswijk C,
Habibovic P (2013) Monolithic and assembled
polymer-ceramic composites for bone regeneration. Acta Biomater 9:5708–5717
13. Korpela J, Kokkari A, Korhonen H, Malin M,
Narhi T, Seppalea J (2013) Biodegradable and
bioactive porous scaffold structures prepared
using fused deposition modeling. J Biomed
Mater Res Part B Appl Biomater 101:610–619
14. Marchioli G, Di Luca A, de Koning E,
Engelse M, Van Blitterswijk CA, Karperien M,
Van Apeldoorn AA, Moroni L (2016) Hybrid
polycaprolactone/alginate scaffolds functionalized with VEGF to promote de novo vessel
formation for the transplantation of islets of
langerhans. Adv Healthc Mater 5:1606–1616
15. Di Luca A, Longoni A, Criscenti G, Mota C,
van Blitterswijk C, Moroni L (2016) Toward
mimicking the bone structure: design of novel
hierarchical scaffolds with a tailored radial
porosity gradient. Biofabrication 8:45007
AM of Thermoplastics for Tissue Engineering
99
