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A Three-dimensional Polymer Scaffolding Material Exhibiting a Zero Poisson’s Ratio

机译:具有零泊松比的三维聚合物脚手架材料

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摘要

Poisson’s ratio describes the degree to which a material contracts (expands) transversally when axially strained. A material with a zero Poisson’s ratio does not transversally deform in response to an axial strain (stretching). In tissue engineering applications, scaffolding having a zero Poisson’s ratio (ZPR) may be more suitable for emulating the behavior of native tissues and accommodating and transmitting forces to the host tissue site during wound healing (or tissue regrowth). For example, scaffolding with a zero Poisson’s ratio may be beneficial in the engineering of cartilage, ligament, corneal, and brain tissues, which are known to possess Poisson’s ratios of nearly zero. Here, we report a 3D biomaterial constructed from polyethylene glycol (PEG) exhibiting in-plane Poisson’s ratios of zero for large values of axial strain. We use digital micro-mirror device projection printing (DMD-PP) to create single- and double-layer scaffolds composed of semi re-entrant pores whose arrangement and deformation mechanisms contribute the zero Poisson’s ratio. Strain experiments prove the zero Poisson’s behavior of the scaffolds and that the addition of layers does not change the Poisson’s ratio. Human mesenchymal stem cells (hMSCs) cultured on biomaterials with zero Poisson’s ratio demonstrate the feasibility of utilizing these novel materials for biological applications which require little to no transverse deformations resulting from axial strains. Techniques used in this work allow Poisson’s ratio to be both scale-independent and independent of the choice of strut material for strains in the elastic regime, and therefore ZPR behavior can be imparted to a variety of photocurable biomaterial.
机译:泊松的比率描述了在轴向紧张时横向横向地划横向的程度。具有零泊松比的材料响应于轴向菌株(拉伸)而不会横向变形。在组织工程应用中,具有零泊松比(ZPR)的脚手架可以更适合于在伤口愈合(或组织再生)期间对宿主组织部位的刺激和传递到宿主组织部位的行为。例如,具有零泊松比的脚手架在软骨,韧带,角膜和脑组织的工程中可能是有益的,这是已知具有泊松的比例几乎为零。在这里,我们报告了从具有平面内泊松比的聚乙二醇(PEG)构成的3D生物材料,对于大的轴向菌株的大值。我们使用数字微镜装置投影印刷(DMD-PP)创建由半重新参加孔组成的单层和双层脚手架,其布置和变形机制有助于零泊松的比率。应变实验证明了零泊松的脚手架行为,并且添加层不会改变泊松比。在具有零泊松比的生物材料上培养的人间充质干细胞(HMSCs)展示了利用这些新材料用于生物应用的可行性,这几乎没有由轴向菌株产生的横向变形。本作工作中使用的技术允许泊松比既稳定,无关,并且独立于弹性方案中菌株的菌株的选择,因此可以赋予各种光固化生物材料的ZPR行为。

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