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椎间盘类器官芯片:一种研究椎间盘退变过程中单核细胞外渗的创新模型。

Intervertebral disc organ-on-a-chip: an innovative model to study monocyte extravasation during nucleus pulposus degeneration.

机构信息

Department of Medical Sciences, Graduate School of Medicine, Korea University, 80, Guro-dong, Guro-gu, Seoul 152703, South Korea.

Department of Healthcare Information Technology, Inje University, 197 Inje-Ro, Gimhae 50834, South Korea.

出版信息

Lab Chip. 2023 Jun 13;23(12):2819-2828. doi: 10.1039/d3lc00032j.

DOI:10.1039/d3lc00032j
PMID:37212601
Abstract

Degenerative cascades of the intervertebral disc (IVD) are characterized by the presence of immune cells like monocytes, macrophages, and leukocytes, which contribute to inflammation. Previous studies on monocyte chemotaxis in the presence of chemical or mechanical stimulation were unable to establish the effects of endogenous stimulating factors from resident IVD cells, or fully understand macrophage and monocyte differentiation pathways in IVD degeneration. Our study simulates monocyte extravasation using a fabricated microfluidic chemotaxis IVD organ-on-a-chip (IVD organ chip), which models the geometry of IVD, chemoattractant diffusion, and infiltration of immune cells. Additionally, the fabricated IVD organ chip mimics stepwise monocyte infiltration and differentiation into macrophages in the degenerative nucleus pulposus (NP) induced by IL-1β. We find that naïve NP cells do not recruit THP-1 monocyte-like cells, but degenerative NP cells recruit and accumulate macrophages through chemo-gradient channels. Furthermore, the differentiated and migrated THP-1 cells show phagocytic activity around inflammatory NP cells. Our model of monocyte chemotaxis with degenerative NP on an IVD organ chip depicts the sequential processes of monocyte migration/infiltration, monocyte-to-macrophage differentiation, and accumulation. Using this platform to gain a deeper understanding of monocyte infiltration and differentiation processes can provide insights into the pathophysiology of the immune response in degenerative IVD.

摘要

椎间盘(IVD)的退行性级联反应的特征是存在免疫细胞,如单核细胞、巨噬细胞和白细胞,它们有助于炎症反应。之前关于在化学或机械刺激存在下单核细胞趋化作用的研究未能确定来自 IVD 细胞的内源性刺激因子的影响,或完全了解 IVD 退变中巨噬细胞和单核细胞的分化途径。我们的研究使用制造的微流控趋化性 IVD 类器官芯片(IVD 类器官芯片)模拟单核细胞渗出,该芯片模拟了 IVD 的几何形状、趋化因子扩散和免疫细胞的渗透。此外,制造的 IVD 类器官芯片模拟了 IL-1β诱导的退变核髓核(NP)中单核细胞样细胞的逐步浸润和分化为巨噬细胞。我们发现幼稚 NP 细胞不会招募 THP-1 单核细胞样细胞,但退行性 NP 细胞通过趋化梯度通道招募并积累巨噬细胞。此外,分化和迁移的 THP-1 细胞在炎症性 NP 细胞周围表现出吞噬活性。我们在 IVD 类器官芯片上用退行性 NP 进行单核细胞趋化的模型描述了单核细胞迁移/浸润、单核细胞向巨噬细胞分化和积累的顺序过程。使用该平台更深入地了解单核细胞浸润和分化过程,可以深入了解退行性 IVD 中免疫反应的病理生理学。

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