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Helical nanofiber yarn enabling highly stretchable engineered microtissue

机译:螺旋纳米纤维纱可实现高度可拉伸的工程微组织

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摘要

Development of microtissues that possess mechanical properties mimicking those of native stretchable tissues, such as muscle and tendon, is in high demand for tissue engineering and regenerative medicine. However, regardless of the significant advances in synthetic biomaterials, it remains challenging to fabricate living microtissue with high stretchability because application of large strains to microtissues can damage the cells by rupturing their structures. Inspired by the hierarchical helical structure of native fibrous tissues and its behavior of nonaffine deformation, we develop a highly stretchable and tough microtissue fiber made up of a hierarchical helix yarn scaffold, scaling from nanometers to millimeters, that can overcome this limitation. This microtissue can be stretched up to 15 times its initial length and has a toughness of 57 GJ m−3. More importantly, cells grown on this scaffold maintain high viability, even under severe cyclic strains (up to 600%) that can be attributed to the nonaffine deformation under large strains, mimicking native biopolymer scaffolds. Furthermore, as proof of principle, we demonstrate that the nanotopography of the helical nanofiber yarn is able to induce cytoskeletal alignment and nuclear elongation, which promote myogenic differentiation of mesenchymal stem cells by triggering nuclear translocation of transcriptional coactivator with PDZ-binding motif (TAZ). The highly stretchable microtissues we develop here will facilitate a variety of tissue engineering applications and the development of engineered living systems.
机译:对于具有组织工程学和再生医学要求的具有与天然可拉伸组织(例如,肌肉和肌腱)相似的机械性能的微组织,人们的需求量很大。然而,不管合成生物材料的重大进展如何,制造具有高拉伸性的活体微组织仍然具有挑战性,因为对微组织施加大菌株会破坏细胞结构,从而破坏细胞。受天然纤维组织的分层螺旋结构及其非仿射变形行为的启发,我们开发了一种可伸缩且坚韧的微组织纤维,该纤维由分层的螺旋纱线支架组成,尺寸从纳米到毫米,可以克服此限制。该微组织可以拉伸到其初始长度的15倍,并且具有57 GJ m -3 的韧性。更重要的是,即使在严重的循环应变(高达600%)下,在该支架上生长的细胞也能保持高活力,这可归因于大应变下的非亲和力变形,从而模仿了天然生物聚合物支架。此外,作为原理证明,我们证明螺旋纳米纤维纱的纳米形貌能够诱导细胞骨架排列和核伸长,从而通过触发具有PDZ结合基序(TAZ)的转录共激活因子的核易位而促进间充质干细胞的成肌分化。 。我们在这里开发的高度可拉伸的微组织将促进各种组织工程应用和工程化生活系统的发展。

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