Bioprinting of structurally organized meniscal tissue within anisotropic melt electrowritten scaffolds

被引:17
作者
Barcelo, Xavier [1 ,2 ,3 ,4 ]
Eichholz, Kian F. [1 ,2 ,3 ,4 ]
Goncalves, Ines F. [1 ,2 ,3 ,4 ]
Garcia, Orquidea [5 ]
Kelly, Daniel J. [1 ,2 ,3 ,4 ,6 ]
机构
[1] Trinity Coll Dublin, Trinity Biomed Sci Inst, Trinity Ctr Biomed Engn, Dublin D02 R590, Ireland
[2] Trinity Coll Dublin, Sch Engn, Dept Mech Mfg & Biomed Engn, Dublin D02 R590, Ireland
[3] Royal Coll Surgeons Ireland, Adv Mat & Bioengn Res Ctr AMBER, Dublin D02 F6N2, Ireland
[4] Trinity Coll Dublin, Dublin D02 F6N2, Ireland
[5] Johnson & Johnson Serv Inc, Johnson & Johnson 3D Printing Innovat & Customer, Irvine, CA USA
[6] Royal Coll Surgeons Ireland, Dept Anat & Regenerat Med, Dublin D02 YN77, Ireland
基金
爱尔兰科学基金会;
关键词
Melt electrowriting (MEW); Bioprinting; Oxidized alginate; Collagen alignment; Tissue engineering; Anisotropy; Meniscus; MECHANICAL-PROPERTIES; CHONDROITINASE-ABC; TENSILE PROPERTIES; OXIDIZED ALGINATE; STEM-CELLS; COLLAGEN; HYDROGELS; CARTILAGE; TGF-BETA-1; ALIGNMENT;
D O I
10.1016/j.actbio.2022.12.047
中图分类号
R318 [生物医学工程];
学科分类号
0831 ;
摘要
The meniscus is characterised by an anisotropic collagen fibre network which is integral to its biomechan-ical functionality. The engineering of structurally organized meniscal grafts that mimic the anisotropy of the native tissue remains a significant challenge. In this study, inkjet bioprinting was used to deposit a cell-laden bioink into additively manufactured scaffolds of differing architectures to engineer fibrocarti-lage grafts with user defined collagen architectures. Polymeric scaffolds consisting of guiding fibre net-works with varying aspect ratios (1:1; 1:4; 1:16) were produced using either fused deposition modelling (FDM) or melt electrowriting (MEW), resulting in scaffolds with different internal architectures and fibre diameters. Scaffold architecture was found to influence the spatial organization of the collagen network laid down by the jetted cells, with higher aspect ratios (1:4 and 1:16) supporting the formation of struc-turally anisotropic tissues. The MEW scaffolds supported the development of a fibrocartilaginous tissue with compressive mechanical properties similar to that of native meniscus, while the anisotropic tensile properties of these constructs could be tuned by altering the fibre network aspect ratio. This MEW frame-work was then used to generate scaffolds with spatially distinct fibre patterns, which in turn supported the development of heterogenous tissues consisting of isotropic and anisotropic collagen networks. Such bioprinted tissues could potentially form the basis of new treatment options for damaged and diseased meniscal tissue.Statement of significance This study describes a multiple tool biofabrication strategy which enables the engineering of spatially or-ganized fibrocartilage tissues. The architecture of MEW scaffolds can be tailored to not only modulate the directionality of the collagen fibres laid down by cells, but also to tune the anisotropic tensile mechan-ical properties of the resulting constructs, thereby enabling the engineering of biomimetic meniscal-like tissues. Furthermore, the inherent flexibility of MEW enables the development of zonally defined and potentially patient-specific implants.(c) 2023 Acta Materialia Inc. Published by Elsevier Ltd. All rights reserved.
引用
收藏
页码:216 / 227
页数:12
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