|
1
|
Vahdatinia F, Hooshyarfard A, Jamshidi S,
Shojaei S, Patel K, Moeinifard E, Haddadi R, Farhadian M, Gholami L
and Tayebi L: 3D-printed soft membrane for periodontal guided
tissue regeneration. Materials (Basel). 16(1364)2023.PubMed/NCBI View Article : Google Scholar
|
|
2
|
Davidopoulou S, Karakostas P, Batas L,
Barmpalexis P, Assimopoulou A, Angelopoulos C and Tsalikis L:
Multidimensional 3D-printed scaffolds and regeneration of intrabony
periodontal defects: A systematic review. J Funct Biomater.
15(44)2024.PubMed/NCBI View Article : Google Scholar
|
|
3
|
Behfarnia P, Khorasani MM, Birang R and
Abbas FM: Histological and histomorphometric analysis of animal
experimental dehiscence defect treated with three bioabsorbable GTR
collagen membranes. Dent Res J (Isfahan). 9:574–581.
2012.PubMed/NCBI View Article : Google Scholar
|
|
4
|
Lee HS, Byun SH, Cho SW and Yang BE: Past,
present, and future of regeneration therapy in oral and periodontal
tissue: A review. Appl Sci. 9(1046)2019.
|
|
5
|
Raveau S and Jordana F: Tissue engineering
and three-dimensional printing in periodontal regeneration: A
literature review. J Clin Med. 9(4008)2020.PubMed/NCBI View Article : Google Scholar
|
|
6
|
Zhang Q, Zhou J, Zhi P, Liu L, Liu C, Fang
A and Zhang Q: 3D printing method for bone tissue engineering
scaffold. Med Nov Technol Devices. 17(None)2023.PubMed/NCBI View Article : Google Scholar
|
|
7
|
Gul M, Arif A and Ghafoor R: Role of
three-dimensional printing in periodontal regeneration and repair:
Literature review. J Indian Soc Periodontol. 23:504–510.
2019.PubMed/NCBI View Article : Google Scholar
|
|
8
|
Jiang S, Wang M and He J: A review of
biomimetic scaffolds for bone regeneration: Toward a cell-free
strategy. Bioeng Transl Med. 6(e10206)2021.PubMed/NCBI View Article : Google Scholar
|
|
9
|
Vaquette C, Pilipchuk SP, Bartold PM,
Hutmacher DW, Giannobile WV and Ivanovski S: Tissue engineered
constructs for periodontal regeneration: Current status and future
perspectives. Adv Healthc Mater. 7(e1800457)2018.PubMed/NCBI View Article : Google Scholar
|
|
10
|
Roato I, Masante B, Putame G, Massai D and
Mussano F: Challenges of periodontal tissue engineering: Increasing
biomimicry through 3D printing and controlled dynamic environment.
Nanomaterials (Basel). 12(3878)2022.PubMed/NCBI View Article : Google Scholar
|
|
11
|
Dwivedi R and Mehrotra D: 3D bioprinting
and craniofacial regeneration. J Oral Biol Craniofac Res.
10:650–659. 2020.PubMed/NCBI View Article : Google Scholar
|
|
12
|
Almeida ND, Carneiro CA, de Marco AC,
Porto VC and França R: 3D bioprinting techniques and bioinks for
periodontal tissues regeneration: A literature review. Biomimetics
(Basel). 9(480)2024.PubMed/NCBI View Article : Google Scholar
|
|
13
|
Gudapati H, Dey M and Ozbolat I: A
comprehensive review on droplet-based bioprinting: Past, present
and future. Biomaterials. 102:20–42. 2016.PubMed/NCBI View Article : Google Scholar
|
|
14
|
Hou Y, Li Y, Yang A, Lu X, Han X, Yang Z,
Sun J and Liu Y: Revolutionizing periodontitis treatment: The
promise of GelMA hydrogel. Int J Pharm. 681(125850)2025.PubMed/NCBI View Article : Google Scholar
|
|
15
|
Woo HN, Cho YJ, Tarafder S and Lee CH:
Recent advances in scaffolds for integrated periodontal
regeneration. Bioact Mater. 6:3328–3342. 2021.PubMed/NCBI View Article : Google Scholar
|
|
16
|
Sun X, Xu C, Wu G, Ye Q and Wang C:
Poly(lactic-co-glycolic acid): Applications and future prospects
for periodontal tissue regeneration. Polymers (Basel).
9(189)2017.PubMed/NCBI View Article : Google Scholar
|
|
17
|
Zupančič Š, Baumgartner S, Lavrič Z,
Petelin M and Kristl J: Local delivery of resveratrol using
polycaprolactone nanofibers for treatment of periodontal disease. J
Drug Deliv Sci Technol. 30 (Part B):408–416. 2015.
|
|
18
|
Varoni EM, Vijayakumar S, Canciani E,
Cochis A, De Nardo L, Lodi G, Rimondini L and Cerruti M:
Chitosan-based trilayer scaffold for multitissue periodontal
regeneration. J Dent Res. 97:303–311. 2018.PubMed/NCBI View Article : Google Scholar
|
|
19
|
Paczkowska-Walendowska M, Koumentakou I,
Lazaridou M, Bikiaris D, Miklaszewski A, Plech T and
Cielecka-Piontek J: 3D-printed chitosan-based scaffolds with
Scutellaria baicalensis extract for dental applications.
Pharmaceutics. 16(359)2024.PubMed/NCBI View Article : Google Scholar
|
|
20
|
Suo L, Wu H, Wang P, Xue Z, Gao J and Shen
J: Improvement of periodontal tissue regeneration using a
3D-printed carbon nanotube/chitosan/sodium alginate composite
scaffold. J Biomed Mater Res B Appl Biomater. 111:73–84.
2023.PubMed/NCBI View Article : Google Scholar
|
|
21
|
Heckmann L, Fiedler J, Mattes T, Dauner M
and Brenner RE: Interactive effects of growth factors and
three-dimensional scaffolds on multipotent mesenchymal stromal
cells. Biotechnol Appl Biochem. 49 (Pt 3):185–194. 2008.PubMed/NCBI View Article : Google Scholar
|
|
22
|
Kim SE, Park JH, Cho YW, Chung H, Jeong
SY, Lee EB and Kwon IC: Porous chitosan scaffold containing
microspheres loaded with transforming growth factor-beta1:
Implications for cartilage tissue engineering. J Control Release.
91:365–374. 2003.PubMed/NCBI View Article : Google Scholar
|
|
23
|
Giannobile WV: Periodontal tissue
engineering by growth factors. Bone. 19 (1 Suppl):S23–S37.
1996.PubMed/NCBI View Article : Google Scholar
|
|
24
|
Jiang L, Ding Z, Xia S, Liu Y, Lei S,
Zhong M and Chen X: Poly(lactic-co-glycolic acid) scaffold loaded
with plasmid DNA encoding fibroblast growth factor-2 promotes
periodontal ligament regeneration of replanted teeth. J Periodontal
Res. 55:488–495. 2020.PubMed/NCBI View Article : Google Scholar
|
|
25
|
Espitia-Quiroz LC, Fernández-Orjuela AL,
Anaya-Sampayo LM, Acosta-Gómez AP, Sequeda-Castañeda LG,
Gutiérrez-Prieto SJ, Roa-Molina NS and García-Robayo DA: Viability
and adhesion of periodontal ligament fibroblasts on a
hydroxyapatite scaffold combined with collagen, polylactic
acid-polyglycolic acid copolymer and platelet-rich fibrin: A
preclinical pilot study. Dent J (Basel). 10(167)2022.PubMed/NCBI View Article : Google Scholar
|
|
26
|
Wang CY, Chiu YC, Lee AK, Lin YA, Lin PY
and Shie MY: Biofabrication of gingival fibroblast cell-laden
collagen/strontium-doped calcium silicate 3D-printed Bi-layered
scaffold for osteoporotic periodontal regeneration. Biomedicines.
9(431)2021.PubMed/NCBI View Article : Google Scholar
|
|
27
|
Abedi N, Rajabi N, Kharaziha M,
Nejatidanesh F and Tayebi L: Layered scaffolds in periodontal
regeneration. J Oral Biol Craniofac Res. 12:782–797.
2022.PubMed/NCBI View Article : Google Scholar
|
|
28
|
Porta M, Tonda-Turo C, Pierantozzi D,
Ciardelli G and Mancuso E: Towards 3D multi-layer scaffolds for
periodontal tissue engineering applications: Addressing
manufacturing and architectural challenges. Polymers (Basel).
12(2233)2020.PubMed/NCBI View Article : Google Scholar
|
|
29
|
Kwan JC, Dondani J, Iyer J, Muaddi HA,
Nguyen TT and Tran SD: Biomimicry and 3D-printing of mussel
adhesive proteins for regeneration of the periodontium-A review.
Biomimetics (Basel). 8(78)2023.PubMed/NCBI View Article : Google Scholar
|
|
30
|
Chen H, Wang Y, Lai Y, Meng C, Ning X, Xu
T, Song G, Zhang Y, Lin Y and Han B: Advances of 3D bioprinting
technology for periodontal tissue regeneration. iScience.
28(112532)2025.PubMed/NCBI View Article : Google Scholar
|