Enhanced gelatin methacryloyl nanohydroxyapatite hydrogel for high-fidelity 3D printing of bone tissue engineering scaffolds.

IF 8.2 2区 医学 Q1 ENGINEERING, BIOMEDICAL
Toufik Naolou, Nadine Schadzek, Jan Mathis Hornbostel, Iliyana Pepelanova, Miriam Frommer, Franziska Lötz, Leopold Sauheitl, Stefan Dultz, Vincent J M N L Felde, Ola Myklebost, Cornelia Lee-Thedieck
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引用次数: 0

Abstract

Patients suffering from large bone defects are in urgent need of suitable bone replacements. Besides biocompatibility, such replacements need to mimic the 3D architecture of bone and match chemical, mechanical and biological properties, ideally promoting ossification. As natural bone mainly contains collagen type I and carbonate hydroxyapatite, a 3D-printable biomaterial consisting of methacrylated gelatin (GelMA) and nanohydroxyapatite (nHAp) would be beneficial to mimic the composition and shape of natural bone. So far, such nanocomposite hydrogels (NCH) suffered from unsatisfactory rheological properties making them unsuitable for extrusion-based 3D printing with high structural fidelity. In this study, we introduce a novel GelMA/nHAp NCH composition, incorporating the rheological modifier carbomer to improve rheological properties and addressing the challenge of calcium cations released from nHAp that hinder GelMA gelation. Leveraging its shear-thinning and self-healing properties, the NCH ink retains its shape and forms cohesive structures after deposition, which can be permanently stabilized by subsequent UV crosslinking. Consequently, the NCH enables the printing of 3D structures with high shape fidelity in all dimensions, including thez-direction, allowing the fabrication of highly macroporous constructs. Both the uncured and the UV crosslinked NCH behave like a viscoelastic solid, withG'>G″ at deformations up to 100-200 %. After UV crosslinking, the NCH can, depending on the GelMA concentration, reach storage moduli of approximately 10 to over 100 kPa and a mean Young's Modulus of about 70 kPa. The printed scaffolds permit not only cell survival but also osteogenic differentiation, highlighting their potential for bone tissue engineering.

增强明胶甲基丙烯酰纳米羟基磷灰石水凝胶用于高保真3D打印骨组织工程支架。
患有较大骨缺损的患者迫切需要合适的骨替代物。除了生物相容性外,这种替代品还需要模仿骨骼的三维结构,并匹配化学、机械和生物特性,理想地促进骨化。由于天然骨主要含有I型胶原蛋白和碳酸盐羟基磷灰石,由甲基丙烯酸明胶(GelMA)和纳米羟基磷灰石(nHAp)组成的3d打印生物材料有利于模拟天然骨的组成和形状。到目前为止,这种纳米复合水凝胶(NCH)的流变性不理想,不适合用于具有高结构保真度的基于挤压的3D打印。在这项研究中,我们引入了一种新的GelMA/nHAp NCH组合物,结合流变改性剂卡波姆来改善流变特性,并解决了nHAp释放的钙离子阻碍GelMA凝胶化的挑战。利用其剪切减薄和自愈特性,NCH油墨在沉积后保持其形状并形成内聚结构,可以通过随后的UV交联永久稳定。因此,NCH能够在包括z方向在内的所有维度上打印具有高形状保真度的3D结构,从而允许制造高大孔结构。未固化的NCH和UV交联的NCH都表现得像粘弹性固体,其G´b> G´at变形高达100- 200%。在UV交联后,根据GelMA浓度的不同,NCH可以达到约10至100 kPa的存储模量,平均杨氏模量约为70 kPa。打印的支架不仅可以使细胞存活,而且可以成骨分化,突出了其在骨组织工程方面的潜力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Biofabrication
Biofabrication ENGINEERING, BIOMEDICAL-MATERIALS SCIENCE, BIOMATERIALS
CiteScore
17.40
自引率
3.30%
发文量
118
审稿时长
2 months
期刊介绍: Biofabrication is dedicated to advancing cutting-edge research on the utilization of cells, proteins, biological materials, and biomaterials as fundamental components for the construction of biological systems and/or therapeutic products. Additionally, it proudly serves as the official journal of the International Society for Biofabrication (ISBF).
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