3D bioprinting of ultrashort self-assembling peptides to engineer scaffolds with different matrix stiffness for chondrogenesis.

IF 6.8 3区 医学 Q1 ENGINEERING, BIOMEDICAL
Dana M Alhattab, Zainab Khan, Salwa Alshehri, Hepi H Susapto, Charlotte A E Hauser
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引用次数: 2

Abstract

62Articular cartilage is a nonvascularized and poorly cellularized tissue with a low self-repair capacity. Therefore, damage to this tissue due to trauma or degenerative joint diseases such as osteoarthritis needs a high-end medical intervention. However, such interventions are costly, have limited healing capacity, and could impair patients' quality of life. In this regard, tissue engineering and three-dimensional (3D) bioprinting hold great potential. However, identifying suitable bioinks that are biocompatible, with the desired mechanical stiffness, and can be used under physiological conditions is still a challenge. In this study, we developed two tetrameric self-assembling ultrashort peptide bioinks that are chemically well-defined and can spontaneously form nanofibrous hydrogels under physiological conditions. The printability of the two ultrashort peptides was demonstrated; different shape constructs were printed with high shape fidelity and stability. Furthermore, the developed ultrashort peptide bioinks gave rise to constructs with different mechanical properties that could be used to guide stem cell differentiation toward specific lineages. Both ultrashort peptide bioinks demonstrated high biocompatibility and supported the chondrogenic differentiation of human mesenchymal stem cells. Additionally, the gene expression analysis of differentiated stem cells with the ultrashort peptide bioinks revealed articular cartilage extracellular matrix formation preference. Based on the different mechanical stiffness of the two ultrashort peptide bioinks, they can be used to fabricate cartilage tissue with different cartilaginous zones, including the articular and calcified cartilage zones, which are essential for engineered tissue integration.

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超短自组装肽的3D生物打印技术用于不同基质刚度的软骨形成支架。
62关节软骨是一种无血管化和细胞化不良的组织,自我修复能力低。因此,由于创伤或退行性关节疾病(如骨关节炎)导致的该组织损伤需要高端的医疗干预。然而,这样的干预是昂贵的,有有限的愈合能力,并可能损害患者的生活质量。在这方面,组织工程和三维生物打印具有巨大的潜力。然而,确定合适的生物墨水是生物相容性的,具有所需的机械刚度,并且可以在生理条件下使用仍然是一个挑战。在这项研究中,我们开发了两种四聚体自组装超短肽生物墨水,它们具有良好的化学定义,可以在生理条件下自发形成纳米纤维水凝胶。证实了这两种超短肽的可打印性;打印出不同形状的结构体,具有较高的形状保真度和稳定性。此外,开发的超短肽生物墨水产生了具有不同机械特性的构建物,可用于引导干细胞向特定谱系分化。两种超短肽生物墨水均表现出较高的生物相容性,支持人间充质干细胞成软骨分化。此外,利用超短肽生物墨水对分化干细胞进行基因表达分析,揭示了关节软骨细胞外基质形成的偏好。基于两种超短肽生物墨水不同的机械刚度,它们可以用来制造具有不同软骨带的软骨组织,包括关节软骨带和钙化软骨带,这是工程组织整合所必需的。
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来源期刊
CiteScore
6.90
自引率
4.80%
发文量
81
期刊介绍: The International Journal of Bioprinting is a globally recognized publication that focuses on the advancements, scientific discoveries, and practical implementations of Bioprinting. Bioprinting, in simple terms, involves the utilization of 3D printing technology and materials that contain living cells or biological components to fabricate tissues or other biotechnological products. Our journal encompasses interdisciplinary research that spans across technology, science, and clinical applications within the expansive realm of Bioprinting.
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