Is 3D Printing Promising for Osteochondral Tissue Regeneration?

被引:28
作者
Ege, Duygu [1 ]
Hasirci, Vasif [2 ,3 ,4 ]
机构
[1] Bogazici Univ, Inst Biomed Engn, TR-34684 Istanbul, Turkiye
[2] Acibadem Mehmet Ali Aydinlar Univ, Biomat A&R Ctr, TR-34684 Istanbul, Turkiye
[3] Acibadem Mehmet Ali Aydinlar Univ, Dept Biomed Engn, TR-34684 Istanbul, Turkiye
[4] BIOMATEN, Ctr Excellence Biomat & Tissue Engn, METU Res Grp, TR-06800 Ankara, Turkiye
关键词
3D printing; ostechondral tissue; GelMA; alginate; cartilage; MESENCHYMAL STEM-CELLS; CHONDROGENIC DIFFERENTIATION; CARTILAGE REGENERATION; ARTICULAR-CARTILAGE; HYALURONIC-ACID; SCAFFOLDS; HYDROGEL; POLYURETHANE; CHONDROCYTES; PEPTIDES;
D O I
10.1021/acsabm.3c00093
中图分类号
TB3 [工程材料学];
学科分类号
0805 ; 080502 ;
摘要
Osteochondral tissue regeneration is quite difficult to achieve due to the complexity of its organization. In the design of these complex multilayer structures, a fabrication method, 3D printing, started to be employed, especially by using extrusion, stereolithography and inkjet printing approaches. In this paper, the designs are discussed including biphasic, triphasic, and gradient structures which aim to mimic the cartilage and the calcified cartilage and the whole osteochondral tissue closely. In the first section of the review paper, 3D printing of hydrogels including gelatin methacryloyl (GelMa), alginate, and polyethylene glycol diacrylate (PEGDA) are discussed. However, their physical and biological properties need to be augmented, and this generally is achieved by blending the hydrogel with other, more durable, less hydrophilic, polymers. These scaffolds are very suitable to carry growth factors, such as TGF-beta 1, to further stimulate chondrogenesis. The bone layer is mimicked by printing calcium phosphates (CaPs) or bioactive glasses together with the hydrogels or as a component of another polymer layer. The current research findings indicate that polyester (i.e. polycaprolactone (PCL), polylactic acid (PLA) and poly(lactide-co-glycolide) (PLGA)) reinforced hydrogels may more successfully mimic the complex structure of osteochondral tissue. Moreover, more recent printing methods such as melt electrowriting (MEW), are being used to integrate polyester fibers to enhance the mechanical properties of hydrogels. Additionally, polyester scaffolds that are 3D printed without hydrogels are discussed after the hydrogel-based scaffolds. In this review paper, the relevant studies are analyzed and discussed, and future work is recommended with support of tables of designed scaffolds. The outcome of the survey of the field is that 3D printing has significant potential to contribute to osteochondral tissue repair.
引用
收藏
页码:1431 / 1444
页数:14
相关论文
共 124 条
[51]   3D bioprinting of hydrogel constructs with cell and material gradients for the regeneration of full-thickness chondral defect using a microfluidic printing head [J].
Idaszek, Joanna ;
Costantini, Marco ;
Karlsen, Tommy A. ;
Jaroszewicz, Jakub ;
Colosi, Cristina ;
Testa, Stefano ;
Fornetti, Ersilia ;
Bernardini, Sergio ;
Seta, Martyna ;
Kasarello, Kaja ;
Wrzesien, Robert ;
Cannata, Stefano ;
Barbetta, Andrea ;
Gargioli, Cesare ;
Brinchman, Jan E. ;
Swieszkowski, Wojciech .
BIOFABRICATION, 2019, 11 (04)
[52]   A 3D-printed PRP-GelMA hydrogel promotes osteochondral regeneration through M2 macrophage polarization in a rabbit model [J].
Jiang, Guangyao ;
Li, Sihao ;
Yu, Kang ;
He, Bin ;
Hong, Jianqiao ;
Xu, Tengjing ;
Meng, Jiahong ;
Ye, Chenyi ;
Chen, Yazhou ;
Shi, Zhongli ;
Feng, Gang ;
Chen, Weishan ;
Yan, Shigui ;
He, Yong ;
Yan, Ruijian .
ACTA BIOMATERIALIA, 2021, 128 :150-162
[53]   3D Bioprinted Alginate-Silk-Based Smart Cell-Instructive Scaffolds for Dual Differentiation of Human Mesenchymal Stem Cells [J].
Joshi, Akshay ;
Kaur, Tejinder ;
Singh, Neetu .
ACS APPLIED BIO MATERIALS, 2022, 5 (06) :2870-2879
[54]  
Jurvelin J S, 2003, Proc Inst Mech Eng H, V217, P215, DOI 10.1243/095441103765212712
[55]  
Kabiri Azadeh, 2014, Adv Biomed Res, V3, P138, DOI 10.4103/2277-9175.135156
[56]   Modulation of 3D Printed Calcium-Deficient Apatite Constructs with Varying Mn Concentrations for Osteochondral Regeneration via Endochondral Differentiation [J].
Kamaraj, Meenakshi ;
Roopavath, Uday Kiran ;
Giri, Pravin Shankar ;
Ponnusamy, Nandha Kumar ;
Rath, Subha Narayan .
ACS APPLIED MATERIALS & INTERFACES, 2022, 14 (20) :23245-23259
[57]   3D printing of patient-specific implants for osteochondral defects: workflow for an MRI-guided zonal design [J].
Kilian, David ;
Sembdner, Philipp ;
Bretschneider, Henriette ;
Ahlfeld, Tilman ;
Mika, Lydia ;
Lutzner, Jorg ;
Holtzhausen, Stefan ;
Lode, Anja ;
Stelzer, Ralph ;
Gelinsky, Michael .
BIO-DESIGN AND MANUFACTURING, 2021, 4 (04) :818-832
[58]   Gelatin-Methacryloyl Hydrogels: Towards Biofabrication-Based Tissue Repair [J].
Klotz, Barbara J. ;
Gawlitta, Debby ;
Rosenberg, Antoine J. W. P. ;
Malda, Jos ;
Melchels, Ferry P. W. .
TRENDS IN BIOTECHNOLOGY, 2016, 34 (05) :394-407
[59]   Mechanical properties of hybrid triphasic scaffolds for osteochondral tissue engineering [J].
Kosik-Koziol, Alicja ;
Heljak, Marcin ;
Swieszkowski, Wojciech .
MATERIALS LETTERS, 2020, 261
[60]   Directed Regeneration of Osteochondral Tissue by Hierarchical Assembly of Spatially Organized Composite Spheroids [J].
Lee, Jinkyu ;
Lee, Seoyun ;
Huh, Seung Jae ;
Kang, Byung-Jae ;
Shin, Heungsoo .
ADVANCED SCIENCE, 2022, 9 (03)