Towards Bioinspired Meniscus-Regenerative Scaffolds: Engineering a Novel 3D Bioprinted Patient-Specific Construct Reinforced by Biomimetically Aligned Nanofibers

被引:18
作者
Stocco, Thiago Domingues [1 ,2 ,3 ]
Moreira Silva, Mayara Cristina [4 ]
Finzi Corat, Marcus Alexandre [4 ]
Lima, Gabriely Goncalves [5 ]
Lobo, Anderson Oliveira [5 ]
机构
[1] Unicamp State Univ Campinas, Fac Med Sci, Campinas, SP, Brazil
[2] Harvard Med Sch, Brigham & Womens Hosp, Dept Med, Div Engn Med, Cambridge, MA USA
[3] UNISA Univ Santo Amaro, Sao Paulo, Brazil
[4] Unicamp State Univ Campinas, Multidisciplinary Ctr Biol Res, Campinas, SP, Brazil
[5] UFPI Fed Univ Piaui, LIMAV Interdisciplinary Lab Adv Mat, BioMatLab, Teresina, PI, Brazil
来源
INTERNATIONAL JOURNAL OF NANOMEDICINE | 2022年 / 17卷
关键词
tissue engineering; regenerative medicine; meniscus; biomaterials; nanotechnology; 3D printing; COLLAGEN CONCENTRATION; HYDROGEL; TISSUE; NANOCOMPOSITE; FABRICATION; SEARCH; DESIGN;
D O I
10.2147/IJN.S353937
中图分类号
TB3 [工程材料学];
学科分类号
0805 ; 080502 ;
摘要
Introduction: Three of the main requirements that remain major challenges in tissue engineering of the knee meniscus are to engineer scaffolds with compatible anatomical shape, good mechanical properties, and microstructure able to mimic the architecture of the extracellular matrix (ECM). In this context, we presented a new biofabrication strategy to develop a three-dimensional (3D) meniscus-regenerative scaffold with custom-made macroscopic size and microarchitecture bioinspired by the organization of structural fibers of native tissue ECM. Methods: The concept was based on the combination of bioprinted cell-laden hydrogel (type 1 collagen) reinforced by multilayers of biomimetically aligned electrospun nanofibrous mats (polycaprolactone/carbon nanotubes, PCL/CNT), using a patient-specific 3D digital meniscus model reconstructed from MRI data by free and open-source software. Results: The results showed that the incorporation of aligned nanofibers sheets between the hydrogel layers enhanced the scaffold's structural integrity and shape fidelity compared to the nanofiber-free collagen hydrogel. Furthermore, mechanical compression tests demonstrated that the presence of nanofiber layers significantly improved the mechanical properties of the bioprinted construct. Importantly, the introduction of PCL/CNT nanofibrous mats between the layers of the bioprinted collagen hydrogel did not negatively affect cell viability, in which mesenchymal stem cells remained viable even after 7 days of culture within the scaffold. Conclusion: Overall, these findings evidence that this bioengineering approach offers a promising strategy for fabricating biomimetic meniscus scaffolds for tissue engineering.
引用
收藏
页码:1111 / 1124
页数:14
相关论文
共 2 条
  • [1] Patient-Specific Bioinks for 3D Bioprinting of Tissue Engineering Scaffolds
    Faramarzi, Negar
    Yazdi, Iman K.
    Nabavinia, Mahboubeh
    Gemma, Andrea
    Fanelli, Adele
    Caizzone, Andrea
    Ptaszek, Leon M.
    Sinha, Indranil
    Khademhosseini, Ali
    Ruskin, Jeremy N.
    Tamayol, Ali
    ADVANCED HEALTHCARE MATERIALS, 2018, 7 (11)
  • [2] 3D Bioprinted Patient-Specific Extracellular Matrix Scaffolds for Soft Tissue Defects
    Behre, Anne
    Tashman, Joshua W.
    Dikyol, Caner
    Shiwarski, Daniel J.
    Crum, Raphael J.
    Johnson, Scott A.
    Kommeri, Remya
    Hussey, George S.
    Badylak, Stephen F.
    Feinberg, Adam W.
    ADVANCED HEALTHCARE MATERIALS, 2022, 11 (24)