悬浮液生物打印的全椎间盘类似物能够通过原代人髓核和纤维环细胞分泌局部僵硬和缺氧调节的基质。

Matthew J Kibble, Miguel J S Ferreira, Yusuf H Usta, Guus G H van den Akker, Samuel R Moxon, Pauline Baird, Judith A Hoyland, Marco A N Domingos, Stephen M Richardson
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引用次数: 0

摘要

椎间盘(IVD)退变是背痛的主要原因,虽然研究已经揭示了驻留髓核(NP)和纤维环(AF)细胞在退变中的作用,但需要组织工程的IVD模型来更好地研究这些细胞驱动变化的机制。因此,本研究将悬浮液与生物打印相结合,创造了四种多材料、完整的IVD类似物,并研究了氧张力降低和区域基质刚度增加对椎间盘细胞表型的综合影响,因为这些因素与IVD退变相关。将原代NP和AF细胞植入海藻酸胶原水凝胶中,生物打印成双相IVD结构。采用免疫荧光染色定量测定各区域的I型前胶原、VI型胶原、聚集蛋白和透明质酸的新生面积、强度和综合密度。在AF中观察到刚度介导的胶原蛋白和糖胺聚糖的产生,并且刚度的增加使AF中的VI型胶原蛋白下调,而在NP中则上调。氧张力影响蛋白多糖的产生,缺氧增加了两个区域的聚集蛋白和透明质酸。这项工作代表了整个IVD类似物的自动化生物制造的一步,并扩展了使用区域特定基质线索的最先进的悬浮生物打印。这些发现为研究驱动IVD退化的两个关键微环境因素提供了重要见解。意义声明:该手稿概述了悬浮层增材制造的原始应用,用于生物制造含有患者来源的原代人细胞的新型双相椎间盘类似物。值得注意的是,生物打印模型显示了生物学功能,并使用一系列国际公认的表型椎间盘细胞标记物来评估刚度和氧浓度对区域基质生成的影响。因此,该研究使用区域特异性基质线索进一步推进了悬浮生物打印技术的发展,并为未来生物打印椎间盘模型铺平了道路,该模型可以作为生物模拟器,能够深入了解控制组织发育、体内平衡和退化的关键机制。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Suspension bioprinted whole intervertebral disc analogues enable regional stiffness- and hypoxia-regulated matrix secretion by primary human nucleus pulposus and annulus fibrosus cells.

Intervertebral disc (IVD) degeneration is a leading cause of back pain, and while studies have revealed the roles resident nucleus pulposus (NP) and annulus fibrosus (AF) cells play in degeneration, tissue-engineered IVD models are needed to better investigate the mechanisms underpinning these cell-driven changes. This study therefore integrated suspension baths with bioprinting to create four multi-material, whole IVD analogues and investigated the combined effect of reduced oxygen tension and increased regional matrix stiffness on disc cell phenotype since these factors correlate with IVD degeneration. Primary NP and AF cells were seeded into alginate-collagen hydrogels and bioprinted into biphasic IVD structures. The nascent area, intensity, and integrated density of pro-collagen type I, collagen type VI, aggrecan, and hyaluronic acid were quantified using immunofluorescence staining in each region. Stiffness-mediated collagen and glycosaminoglycan production was observed in the AF, and increased stiffness downregulated collagen type VI in the AF but upregulated it in NP. Oxygen tension impacted proteoglycan production, with hypoxia increasing aggrecan and hyaluronic acid in both regions. This work represents a step towards the automated biofabrication of whole IVD analogues and expands the state-of-the-art in suspension bioprinting using regionally specific matrix cues. The findings provide important insights into two key microenvironmental factors driving IVD degeneration. STATEMENT OF SIGNIFICANCE: This manuscript outlines an original application of suspended layer additive manufacturing to biofabricate novel, biphasic intervertebral disc analogues containing patient-derived primary human cells. Significantly, the bioprinted models demonstrated biological function and were used to assess the effect of stiffness and oxygen concentration on regional matrix production using a range of internationally-recognized phenotypic intervertebral disc cell markers. The study therefore furthers the state-of-the-art in suspended bioprinting using regionally specific matrix cues and paves the way for future bioprinted disc models that can serve as biosimulators capable of generating insights into key mechanisms governing tissue development, homeostasis, and degeneration.

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