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将胶原膜内嵌入的 LEGO 启发式 3D 打印 PCL 构建体用于下颌骨修复的 hMSCs 成骨作用。

osteogenesis of hMSCs on collagen membranes embedded within LEGO-inspired 3D printed PCL constructs for mandibular bone repair.

机构信息

AO Research Institute Davos, Clavadelerstrasse 8, Davos Platz, Switzerland.

Department of Health Science and Technology, ETH Zurich, Zurich, Switzerland.

出版信息

Biofabrication. 2024 Aug 12;16(4). doi: 10.1088/1758-5090/ad6931.

Abstract

The field of bone tissue engineering aims to develop an effective and aesthetical bone graft substitute capable of repairing large mandibular defects. However, graft failure resulting from necrosis and insufficient integration with native tissue due to lack of oxygen and nutrient transportation remains a concern. To overcome these drawbacks, this study aims to develop a 3D printed polycaprolactone layered construct with a LEGO-inspired interlocking mechanism enabling spatial distribution of biological components. To highlight itsosteogenic potential, human mesenchymal stromal cells are cultured onto Bio-GideCompressed collagen (Col) membranes, which are embedded within the layered construct for 28 d. The osteogenic response is assessed through the measurement of proliferation, relevant markers for osteogenesis including alkaline phosphatase (ALP) activity, expression of transcriptional genes (SP7, RUNX2/SOX9) as well matrix-related genes (COL1A1, ALPL IBSP, SPP1), osteoprotegerin secretion.osteogenic differentiation results showed increased levels of these osteogenic markers, indicating the layered construct's potential to support osteogenesis. In this study, a novel workflow of 3D printing a patient-specific LEGO-inspired layered construct that can spatially deliver biological elements was successfully demonstrated. These layered constructs have the potential to be employed as a bone tissue engineering strategy, with particular focus on the repair of large mandibular defects.

摘要

骨组织工程领域旨在开发一种有效的、美观的骨移植替代物,能够修复大的下颌骨缺损。然而,由于缺乏氧气和营养物质的运输,导致移植失败、坏死和与原生组织的融合不足仍然是一个关注点。为了克服这些缺点,本研究旨在开发一种 3D 打印的聚己内酯分层结构,具有乐高启发的互锁机制,能够实现生物成分的空间分布。为了突出其成骨潜力,将人骨髓间充质基质细胞培养在 Bio-Gide 压缩胶原(Col)膜上,将其嵌入分层结构中 28 天。通过测量增殖、成骨相关标志物(碱性磷酸酶(ALP)活性、转录基因(SP7、RUNX2/SOX9)以及基质相关基因(COL1A1、ALPL IBSP、SPP1)的表达来评估成骨反应,骨保护素的分泌。成骨分化结果表明这些成骨标志物的水平增加,表明分层结构具有支持成骨的潜力。在本研究中,成功地演示了一种新的 3D 打印患者特异性乐高启发分层结构的工作流程,该结构可以空间传递生物元件。这些分层结构有可能被用作骨组织工程策略,特别关注大的下颌骨缺损的修复。

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