Bioink with cartilage-derived extracellular matrix microfibers enables spatial control of vascular capillary formation in bioprinted constructs

Publication date

2022-07

Authors

Terpstra, Margo Luchiena
Li, Jinyu
Mensinga, AnneloesISNI 0000000393806208
de Ruijter, Mylène
van Rijen, Mattie H P
Androulidakis, Charalampos
Galiotis, Costas
Papantoniou, Ioannis
Matsusaki, Michiya
Malda, JosORCID 0000-0002-9241-7676ISNI 0000000388144393

Editors

Advisors

Supervisors

Document Type

Article
Open Access logo

License

cc_by

Abstract

Microvasculature is essential for the exchange of gas and nutrient for most tissues in our body. Some tissue structures such as the meniscus presents spatially confined blood vessels adjacent to non-vascularized regions. In biofabrication, mimicking the spatial distribution of such vascular components is paramount, as capillary ingrowth into non-vascularized tissues can lead to tissue matrix alterations and subsequent pathology. Multi-material three-dimensional (3D) bioprinting strategies have the potential to resolve anisotropic tissue features, although building complex constructs comprising stable vascularized and non-vascularized regions remains a major challenge to date. In this study, we developed endothelial cell-laden pro- and anti-angiogenic bioinks, supplemented with bioactive matrix-derived microfibers (MFs) that were created from type I collagen sponges (col-1) and cartilage decellularized extracellular matrix (CdECM), respectively. Human umbilical vein endothelial cell (HUVEC)-driven capillary networks started to form 2 d after bioprinting. Supplementing cartilage-derived MFs to endothelial-cell laden bioinks reduced the total length of neo-microvessels by 29%, and the number of microvessel junctions by 37% after 14 d, compared to bioinks with pro-angiogenic col-1 MFs. As a proof of concept, the bioinks were bioprinted into an anatomical meniscus shape with a biomimetic vascularized outer and non-vascularized inner region, using a gellan gum microgel suspension bath. These 3D meniscus-like constructs were cultured up to 14 d, with in the outer zone the HUVEC-, mural cell-, and col-1 MF-laden pro-angiogenic bioink, and in the inner zone a meniscus progenitor cell (MPC)- and CdECM MF-laden anti-angiogenic bioink, revealing successful spatial confinement of the nascent vascular network only in the outer zone. Further, to co-facilitate both microvessel formation and MPC-derived matrix formation, we formulated cell culture medium conditions with a temporal switch. Overall, this study provides a new strategy that could be applied to develop zonal biomimetic meniscal constructs. Moreover, the use of ECM-derived MFs to promote or inhibit capillary networks opens new possibilities for the biofabrication of tissues with anisotropic microvascular distribution. These have potential for many applications includingin vitromodels of vascular-to-avascular tissue interfaces, cancer progression, and for testing anti-angiogenic therapies.

Keywords

anti-angiogenic, anti-angiogenic bioink, bioprinting, cartilage extracellular matrix, collagen microfibers, meniscus, vascularized meniscus, Biotechnology, Bioengineering, Biochemistry, Biomaterials, Biomedical Engineering, SDG 3 - Good Health and Well-being

Citation

Terpstra, M L, Li, J, Mensinga, A, de Ruijter, M, van Rijen, M H P, Androulidakis, C, Galiotis, C, Papantoniou, I, Matsusaki, M, Malda, J & Levato, R 2022, 'Bioink with cartilage-derived extracellular matrix microfibers enables spatial control of vascular capillary formation in bioprinted constructs', Biofabrication, vol. 14, no. 3, 034104, pp. 1-20. https://doi.org/10.1088/1758-5090/ac6282