Construction of biomimetic artificial intervertebral disc scaffold via 3D printing and electrospinning

被引:49
作者
Zhu, Meiling [1 ]
Tan, Jianwang [1 ]
Liu, Lu [1 ]
Tian, Jinhuan [1 ]
Li, Lihua [1 ]
Luo, Binghong [1 ]
Zhou, Changren [1 ]
Lu, Lu [1 ]
机构
[1] Jinan Univ, Dept Mat Sci & Engn, Guangzhou 510632, Peoples R China
来源
MATERIALS SCIENCE AND ENGINEERING C-MATERIALS FOR BIOLOGICAL APPLICATIONS | 2021年 / 128卷
基金
中国国家自然科学基金;
关键词
3D printing; Electrospinning; Intervertebral disc; Tissue engineering; ANGLE-PLY STRUCTURE; MECHANICAL-PROPERTIES; NUCLEUS PULPOSUS; NEEDLE PUNCTURE; GROWTH-FACTOR; DEGENERATION; REPLACEMENT; HEIGHT; MODEL;
D O I
10.1016/j.msec.2021.112310
中图分类号
TB3 [工程材料学]; R318.08 [生物材料学];
学科分类号
0805 ; 080501 ; 080502 ;
摘要
Intervertebral disc (IVD) degeneration is a clinically disease that seriously endangers people's health. Tissue engineering provides a promising method to repair and regenerate the damaged IVD physiological function. Successfully tissue-engineered IVD scaffold should mimic the native IVD histological and macro structures. Here, 3D printing and electrospinning were combined to construct an artificial IVD composite scaffold. Poly lactide (PLA) was used to print the IVD frame structure, the oriented porous poly(L-lactide)/octa-armed polyhedral oligomeric silsesquioxanes (PLLA/POSS-(PLLA)8) fiber bundles simulated the annulus fibrosus (AF), and the gellan gum/poly (ethylene glycol) diacrylate (GG/PEGDA) double network hydrogel loaded with bone marrow mesenchymal stem cells (BMSCs) simulated the nucleus pulposus (NP) structure. Morphological and mechanical tests showed that the structure and mechanical properties of the IVD scaffold were similar to that of the natural IVD. The compression modulus of the scaffold is about 10 MPa, which is comparable to natural IVD and provides good mechanical support for tissue repair and regeneration. At the same time, the porosity and mechanical properties of the scaffold can be regulated through the 3D model design. In the AF structure, the fiber bundles are oriented concentrically with each subsequent layer oriented 60 degrees to the spinal column, and can withstand the tension generated during the deformation of the NP. In the NP structure, BMSCs were evenly distributed in the hydrogel and could maintain high cell viability. Animal experiment results demonstrated that the biomimetic artificial IVD scaffold could maintain the disc space and produce the new extracellular matrix. This engineered biomimetic IVD scaffold is a promising biomaterial for individualized IVD repair and regeneration.
引用
收藏
页数:9
相关论文
共 50 条
[41]   INNOVATIVE APPROACH: MRI-GUIDED FABRICATION OF A BIOMIMETIC INTERVERTEBRAL DISC SCAFFOLD [J].
Ye, Y. C. ;
Shao, C. ;
Wang, Y. ;
Lin, F. G. ;
Su, P. ;
Niu, Y. P. ;
Yang, H. W. ;
Wang, Z. C. ;
Ma, T. ;
Ji, S. ;
Chang, W. J. ;
Xi, J. ;
Wang, R. ;
Zhu, K. ;
Zhang, C. C. ;
Sun, Y. M. .
EUROPEAN CELLS & MATERIALS, 2025, 51 :46-60
[42]   Biomimetic Microchannel Integrated Silk Fibroin Scaffold for Regeneration of Intervertebral Disc Degeneration [J].
Zhang, Tongxing ;
Cheng, Zhaojun ;
Zhang, Zhen ;
Du, Lilong ;
Li, Zhenhua ;
Jiang, Zhuyan ;
Zheng, Zhaomin ;
Kong, Deling ;
Zhu, Meifeng ;
Li, Wen ;
Xu, Baoshan .
BIOMATERIALS RESEARCH, 2025, 29
[43]   3D printing of biomimetic multi-layered GelMA/nHA scaffold for osteochondral defect repair [J].
Liu, Jingyi ;
Li, Liang ;
Suo, Hairui ;
Yan, Mengling ;
Yin, Jun ;
Fu, Jianzhong .
MATERIALS & DESIGN, 2019, 171
[44]   Artificial Neural Network Algorithms for 3D Printing [J].
Mahmood, Muhammad Arif ;
Visan, Anita Ioana ;
Ristoscu, Carmen ;
Mihailescu, Ion N. .
MATERIALS, 2021, 14 (01) :1-29
[45]   Motility Improvement of Biomimetic Trachea Scaffold via Hybrid 3D-Bioprinting Technology [J].
Yu, Young Soo ;
Ahn, Chi Bum ;
Son, Kuk Hui ;
Lee, Jin Woo .
POLYMERS, 2021, 13 (06)
[46]   Advances of 3D Printing in Vascularized Organ Construction [J].
Li, Shenglong ;
Liu, Siyu ;
Wang, Xiaohong .
INTERNATIONAL JOURNAL OF BIOPRINTING, 2022, 8 (03) :232-253
[47]   Biomimetic Superhydrophobic Materials through 3D Printing: Progress and Challenges [J].
Liu, Haishuo ;
Zhang, Zipeng ;
Wu, Chenyu ;
Su, Kang ;
Kan, Xiaonan .
MICROMACHINES, 2023, 14 (06)
[48]   A biomimetic artificial intervertebral disc system composed of a cubic three-dimensional fabric [J].
Shikinami, Yasuo ;
Kawabe, Yasuhiro ;
Yasukawa, Kazuhiro ;
Tsuta, Kaoru ;
Kotani, Yoshihisa ;
Abumi, Kuniyoshi .
SPINE JOURNAL, 2010, 10 (02) :141-152
[49]   3D Printing-Electrospinning Hybrid Nanofibrous Scaffold as LEGO-Like Bricks for Modular Assembling Skeletal Muscle-on-a-Chip Functional Platform [J].
Wang, Zihan ;
Liu, Sitian ;
Han, Mingying ;
Xu, Jie ;
Qin, Maoyu ;
Yang, Qiao ;
Zeng, Guanjie ;
Long, Meng ;
Li, Ting ;
Yin, Junfeiyang ;
Yu, Liu ;
Huang, Wenhua ;
Wang, Ling ;
Wu, Yaobin .
ADVANCED FIBER MATERIALS, 2024, 6 (05) :1521-1540
[50]   Combination of 3D printing and electrospinning to develop chitin/gelatin/PVA scaffolds [J].
Carranza, Teresa ;
Uranga, Jone ;
Irastorza, Ainhoa ;
Izeta, Ander ;
Guerrero, Pedro ;
de la Caba, Koro .
INTERNATIONAL JOURNAL OF BIOPRINTING, 2023, 9 (03)