人肌腱芯片:揭示核心隔室-T 细胞时空串扰在肌腱炎症发作时的作用。
Human Tendon-on-Chip: Unveiling the Effect of Core Compartment-T Cell Spatiotemporal Crosstalk at the Onset of Tendon Inflammation.
机构信息
3B's Research Group I3Bs - Research Institute on Biomaterials, Biodegradables and Biomimetics University of Minho Headquarters of the European Institute of Excellence on Tissue Engineering and Regenerative Medicine AvePark - Parque de Ciência e Tecnologia Zona Industrial da Gandra Barco, Guimarães, 4805-017, Portugal.
ICVS/3B's - PT Government Associate Laboratory Braga/Guimarães, Portugal.
出版信息
Adv Sci (Weinh). 2024 Nov;11(41):e2401170. doi: 10.1002/advs.202401170. Epub 2024 Sep 11.
The lack of representative in vitro models recapitulating human tendon (patho)physiology is among the major factors hindering consistent progress in the knowledge-based development of adequate therapies for tendinopathy.Here, an organotypic 3D tendon-on-chip model is designed that allows studying the spatiotemporal dynamics of its cellular and molecular mechanisms.Combining the synergistic effects of a bioactive hydrogel matrix with the biophysical cues of magnetic microfibers directly aligned on the microfluidic chip, it is possible to recreate the anisotropic architecture, cell patterns, and phenotype of tendon intrinsic (core) compartment. When incorporated with vascular-like vessels emulating the interface between its intrinsic-extrinsic compartments, crosstalk with endothelial cells are found to drive stromal tenocytes toward a reparative profile. This platform is further used to study adaptive immune cell responses at the onset of tissue inflammation, focusing on interactions between tendon compartment tenocytes and circulating T cells.The proinflammatory signature resulting from this intra/inter-cellular communication induces the recruitment of T cells into the inflamed core compartment and confirms the involvement of this cellular crosstalk in positive feedback loops leading to the amplification of tendon inflammation.Overall, the developed 3D tendon-on-chip provides a powerful new tool enabling mechanistic studies on the pathogenesis of tendinopathy as well as for assessing new therapies.
缺乏能够重现人类肌腱(病理)生理学的代表性体外模型是阻碍基于知识的肌腱病治疗方法不断发展的主要因素之一。在这里,设计了一种器官型 3D 肌腱芯片模型,可用于研究其细胞和分子机制的时空动力学。通过将具有生物活性的水凝胶基质与直接在微流控芯片上排列的磁微纤维的生物物理线索相结合,有可能再现肌腱固有(核心)隔室的各向异性结构、细胞模式和表型。当与模拟其固有-外在隔室之间界面的类似血管的血管结合使用时,发现与内皮细胞的串扰可促使基质成纤维细胞向修复表型发展。该平台还用于研究组织炎症发生时适应性免疫细胞的反应,重点研究肌腱隔室成纤维细胞与循环 T 细胞之间的相互作用。这种细胞内/细胞间通讯产生的促炎特征诱导 T 细胞募集到炎症核心隔室,并证实这种细胞串扰参与导致肌腱炎症放大的正反馈回路。总之,开发的 3D 肌腱芯片提供了一种强大的新工具,可用于研究肌腱病发病机制的机制研究以及评估新的治疗方法。