4D Biofabrication of Magnetically Augmented Callus Assembloid Implants Enables Rapid Endochondral Ossification via Activation of Mechanosensitive Pathways

IF 14.1 1区 材料科学 Q1 CHEMISTRY, MULTIDISCIPLINARY Advanced Science Pub Date : 2025-02-25 DOI:10.1002/advs.202413680
Konstantinos Ioannidis, Andreas Dimopoulos, Isaak Decoene, Maya Guilliams, Hanna Svitina, Liudmyla Storozhuk, Rodrigo de Oliveira-Silva, Sergey Basov, Nguyen Thi Kim Thanh, Stefanos Mourdikoudis, Margriet J. Van Bael, Bart Smeets, Dimitrios Sakellariou, Ioannis Papantoniou
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Abstract

The use of magnetic-driven strategies for non-contact manipulation of engineered living modules opens up new possibilities for tissue engineering. The integration of magnetic nanoparticles (MNPs) with cartilaginous microtissues enables model-driven 4D bottom-up biofabrication of remotely actuated assembloids, providing unique properties to mechanoresponsive tissues, particularly skeletal constructs. However, for clinical use, the long-term effects of magnetic stimulation on phenotype and in vivo functionality need further exploration. Magnetic-driven biofabrication includes both rapid processes, such as guided microtissue assembly, and slower biological processes, like extracellular matrix secretion. This work explores the interplay between magnetic fields and MNP-loaded cartilaginous microtissues through mathematical modeling and experimental approaches, investigating long-term stimulation effects on ECM maturation and chondrogenic hypertrophy. Transcriptomic analysis reveal that magnetic stimulation activated mechanosensitive pathways and catabolic processes, driving accelerated cartilage-to-bone transitions via endochondral ossification, outcomes not observed in non-stimulated controls. This study paves the way for pre-programmed, remotely actuated skeletal assembloids with superior bone-forming capacity for regenerating challenging bone fractures.

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磁性增强的愈伤组织组装体植入物的4D生物制造通过激活机械敏感途径实现快速软骨内成骨。
利用磁驱动策略对工程生物模块进行非接触操作,为组织工程开辟了新的可能性。磁性纳米颗粒(MNPs)与软骨微组织的整合使模型驱动的4D自下而上的远程驱动组装体的生物制造成为可能,为机械反应组织,特别是骨骼结构提供了独特的特性。然而,对于临床应用,磁刺激对表型和体内功能的长期影响需要进一步探索。磁驱动的生物制造既包括快速过程,如引导微组织组装,也包括较慢的生物过程,如细胞外基质分泌。本研究通过数学建模和实验方法探讨了磁场与加载mnp的软骨微组织之间的相互作用,研究了长期刺激对ECM成熟和软骨增生的影响。转录组学分析显示,磁刺激激活了机械敏感通路和分解代谢过程,通过软骨内成骨加速了软骨向骨的转变,而在未受刺激的对照组中没有观察到这一结果。这项研究为预编程、远程驱动的骨骼组合体铺平了道路,这些骨骼组合体具有优越的骨形成能力,可用于再生挑战性骨折。
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来源期刊
Advanced Science
Advanced Science CHEMISTRY, MULTIDISCIPLINARYNANOSCIENCE &-NANOSCIENCE & NANOTECHNOLOGY
CiteScore
18.90
自引率
2.60%
发文量
1602
审稿时长
1.9 months
期刊介绍: Advanced Science is a prestigious open access journal that focuses on interdisciplinary research in materials science, physics, chemistry, medical and life sciences, and engineering. The journal aims to promote cutting-edge research by employing a rigorous and impartial review process. It is committed to presenting research articles with the highest quality production standards, ensuring maximum accessibility of top scientific findings. With its vibrant and innovative publication platform, Advanced Science seeks to revolutionize the dissemination and organization of scientific knowledge.
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