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Printability of pulp derived crystal, fibril and blend nanocellulose-alginate bioinks for extrusion 3D bioprinting

机译:胶浆衍生晶体,原纤维和混合物纳米纤维素 - 藻酸盐生物酸盐的可印刷性 - 用于挤出3D BioPlinting

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Background: One of themain challenges for extrusion 3Dbioprinting is the identification of nonsynthetic bioinks with suitable rheological properties and biocompatibility. Our aimwas to optimize and compare the printability of crystal, fibril and blend formulations of novel pulp derived nanocellulose bioinks and assess biocompatibility with human nasoseptal chondrocytes. Methods: The printability of crystalline, fibrillated and blend formulations of nanocellulose was determined by assessing resolution (grid-line assay), post-printing shape fidelity and rheology (elasticity, viscosity and shear thinning characteristics) and compared these to pure alginate bioinks. The optimized nanocellulose-alginate bioink was bioprintedwith human nasoseptal chondrocytes to determine cytotoxicity, metabolic activity and bioprinted construct topography. Results: All nanocellulose-alginate bioink combinations demonstrated a high degree of shear thinning with reversible stress softening behaviorwhich contributed to post-printing shape fidelity. The unique blend of crystal and fibril nanocellulose bioink exhibited nano-as well as micro-roughness for cellular survival and differentiation, aswell as maintaining themost stable construct volume in culture. Human nasoseptal chondrocytes demonstrated highmetabolic activity post printing and adopted a rounded chondrogenic phenotype after prolonged culture. Conclusions: This study highlights the favorable rheological, swelling and biocompatibility properties of nanocellulose-alginate bioinks for extrusion-based bioprinting.
机译:背景:挤出3DBiOplinting的主题挑战之一是具有合适的流变性和生物相容性的非合成生殖器的鉴定。我们的旨在优化和比较新型纸浆衍生的纳米纤维素生物链接的晶体,原纤维和混合物配方的可印刷性,并评估与人鼻孔软骨细胞的生物相容性。方法:通过评估分辨率(栅极测定),印刷后的形状保真度和流变学(弹性,粘度和剪切稀释特性)来测定纳米纤维素的结晶,原纤化和混合物配方的可印刷性,并将其与纯藻酸盐的生物显着相比。优化的纳米纤维素 - 藻酸盐生物酸盐是人鼻孔软骨细胞的生物植物,以确定细胞毒性,代谢活性和生物印刷构建形貌。结果:所有纳米纤维素 - 藻酸盐生物酸盐组合都表现出高度剪切稀疏,具有导致印刷后形状保真度的可逆应力软化行为。晶体和原纤维纳米纤维素生物链的独特共混物表现出纳米以及微观粗糙度,用于细胞存活和分化,作为维持培养术稳定构建体积的威胁。人鼻孔软骨细胞展示了印刷后的高同位素活性,并在长时间培养后采用了圆形的软骨形成表型。结论:本研究突出了纳米纤维素 - 藻酸盐生物蛋白的良好流变,肿胀和生物相容性性能,用于挤出基的生物印刷。

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