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3D 生物打印仿生藻酸盐/明胶/硫酸软骨素水凝胶纳米复合材料用于人骨髓间充质干细胞的内在软骨分化。

3D Bioprinting of Biomimetic Alginate/Gelatin/Chondroitin Sulfate Hydrogel Nanocomposites for Intrinsically Chondrogenic Differentiation of Human Mesenchymal Stem Cells.

机构信息

Departamento de Ingeniería Química, Biotecnología y Materiales, Facultad de Ciencias Físicas y Matemáticas, Universidad de Chile, Avenida Beauchef 851, 8370458 Santiago, Chile.

IMPACT, Center of Interventional Medicine for Precision and Advanced Cellular Therapy, Avenida Monseñor Álvaro del Portillo 12455, 7620086 Las Condes, Chile.

出版信息

Biomacromolecules. 2024 Jun 10;25(6):3312-3324. doi: 10.1021/acs.biomac.3c01444. Epub 2024 May 10.

Abstract

3D-printed hydrogel scaffolds biomimicking the extracellular matrix (ECM) are key in cartilage tissue engineering as they can enhance the chondrogenic differentiation of mesenchymal stem cells (MSCs) through the presence of active nanoparticles such as graphene oxide (GO). Here, biomimetic hydrogels were developed by cross-linking alginate, gelatin, and chondroitin sulfate biopolymers in the presence of GO as a bioactive filler, with excellent processability for developing bioactive 3D printed scaffolds and for the bioprinting process. A novel bioink based on our hydrogel with embedded human MSCs presented a cell survival rate near 100% after the 3D bioprinting process. The effects of processing and filler concentration on cell differentiation were further quantitatively evaluated. The nanocomposited hydrogels render high MSC proliferation and viability, exhibiting intrinsic chondroinductive capacity without any exogenous factor when used to print scaffolds or bioprint constructs. The bioactivity depended on the GO concentration, with the best performance at 0.1 mg mL. These results were explained by the rational combination of the three biopolymers, with GO nanoparticles having carboxylate and sulfate groups in their structures, therefore, biomimicking the highly negatively charged ECM of cartilage. The bioactivity of this biomaterial and its good processability for 3D printing scaffolds and 3D bioprinting techniques open up a new approach to developing novel biomimetic materials for cartilage repair.

摘要

3D 打印水凝胶支架仿生细胞外基质 (ECM) 在软骨组织工程中非常重要,因为它们可以通过存在活性纳米粒子(如氧化石墨烯 (GO))来增强间充质干细胞 (MSCs) 的软骨分化。在这里,通过在 GO 作为生物活性填料的存在下交联藻酸盐、明胶和硫酸软骨素生物聚合物来开发仿生水凝胶,具有出色的加工性能,可用于开发具有生物活性的 3D 打印支架和生物打印工艺。一种基于我们的水凝胶的新型生物墨水,其中嵌入了人 MSCs,在 3D 生物打印过程后细胞存活率接近 100%。进一步定量评估了处理和填充剂浓度对细胞分化的影响。纳米复合水凝胶在用于打印支架或生物打印结构时表现出高 MSC 增殖和活力,并表现出内在的软骨诱导能力,而无需任何外源性因素。生物活性取决于 GO 浓度,在 0.1mg/mL 时表现最佳。这些结果可以通过三种生物聚合物的合理组合来解释,GO 纳米粒子在其结构中具有羧酸盐和硫酸盐基团,因此仿生软骨中高度带负电荷的 ECM。这种生物材料的生物活性及其对 3D 打印支架和 3D 生物打印技术的良好加工性能为开发用于软骨修复的新型仿生材料开辟了新途径。

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