骨样生态位的体积生物打印。

IF 8.2 2区 医学 Q1 ENGINEERING, BIOMEDICAL Biofabrication Pub Date : 2025-01-24 DOI:10.1088/1758-5090/adab25
Jessie Duquesne, Laurens Parmentier, Edward Vermeersch, Flora Lemaire, Jung Won Seo, Ruslan I Dmitriev, Sandra Van Vlierberghe
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引用次数: 0

摘要

体积生物打印已经彻底改变了生物制造领域,它可以在更快的打印时间内(大约几秒钟)创建立方厘米级的生物结构。然而,一个关键的挑战仍然存在:开发更广泛的可用的成骨生物墨水,使结构内被封装的细胞成骨成熟。在这里,利用台阶生长机制的生物链(降冰片烯-降冰片烯官能化明胶与巯基明胶- GelNBNBSH结合)优于利用链式生长机制的生物链(明胶甲基丙烯酰- GelMA),因为必要的光引发剂浓度降低了三倍,并且所需的光暴露剂量减少了50%以上,从而提高了正负分辨率。为了模拟类骨基质的弹性,在固化后比较了两种浓度的光引发剂Li-TPO-L(1和10 mg/ml),选择了最低浓度,因为它可以获得成骨基质弹性,并与HT1080细胞具有良好的生物相容性(> 95%)。进一步的物理化学测试表明,体积印刷工艺影响了结构体的降解时间,体积印刷工艺的降解速度比对照片慢,这可能是由于引入了体积印刷工艺固有的纤维结构。此外,GelNBNBSH体积结构在光交联片段转换增加2倍和结构体刚度增加3倍方面明显优于GelMA体积结构。最后,进行了为期21天的成骨细胞研究,将高存活率的牙髓源性干细胞(> 95%)封装在体积打印构建体中。通过增强早期(碱性磷酸酶活性)和后期成熟(钙生成)成骨标志物,GelNBNBSH构建体非常有利于成骨。21天后,分泌组分析显示,在成骨、免疫和血管生成信号方面,GelNBNBSH构建物的成骨表型比其链生长物更成熟。
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Volumetric bioprinting of the osteoid niche.

Volumetric bioprinting has revolutionized the field of biofabrication by enabling the creation of cubic centimeter-scale living constructs at faster printing times (in the order of seconds). However, a key challenge remains: developing a wider variety of available osteogenic bioinks that allow osteogenic maturation of the encapsulated cells within the construct. Herein, the bioink exploiting a step-growth mechanism (norbornene-norbornene functionalized gelatin in combination with thiolated gelatin-GelNBNBSH) outperformed the bioink exploiting a chain-growth mechanism (gelatin methacryloyl-GelMA), as the necessary photo-initiator concentration was three times lower combined with a more than 50% reduction in required light exposure dose resulting in an improved positive and negative resolution. To mimic the substrate elasticity of the osteoid, two concentrations of the photo-initiator Li-TPO-L (1 and 10 mg ml-1) were compared for post-curing whereby the lowest concentration was selected since it resulted in attaining the osteogenic substrate elasticity combined with excellent biocompatibility with HT1080 cells (>95%). Further physico-chemical testing revealed that the volumetric printing (VP) process affected the degradation time of the constructs with volumetric constructs degrading slower than the control sheets which could be due to the introduced fibrillar structure inherent to the VP process. Moreover, GelNBNBSH volumetric constructs significantly outperformed the GelMA volumetric constructs in terms of a 2-fold increase in photo-crosslinkable moiety conversion and a 3-fold increase in bulk stiffness of the construct. Finally, a 21-day osteogenic cell study was performed with highly viable dental pulp-derived stem cells (>95%) encapsulated within the volumetric printed constructs. Osteogenesis was greatly favored for the GelNBNBSH constructs through enhanced early (alkaline phosphatase activity) and late maturation (calcium production) osteogenic markers. After 21 d, a secretome analysis revealed a more mature osteogenic phenotype within GelNBNBSH constructs as compared to their chain-growth counterpart in terms of osteogenic, immunological and angiogenic signaling.

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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).
期刊最新文献
Pneumatic conveying inkjet bioprinting for the processing of living cells. Volumetric bioprinting of the osteoid niche. Optimizing extrusion-based 3D bioprinting of plant cells with enhanced resolution and cell viability. Electrospun robust, biodegradable, bioactive, and nanostructured sutures to accelerate the chronic wound healing. In vivo vessel connection of pre-vascularised 3D-bioprinted gingival connective tissue substitutes.
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