Nuclear receptor Nur77 regulates immunomechanics of macrophages

IF 4.5 3区 生物学 Q2 CELL BIOLOGY European journal of cell biology Pub Date : 2024-05-15 DOI:10.1016/j.ejcb.2024.151419
Sanne C. Lith , Tom M.J. Evers , Beatriz Marton Freire , Claudia M. van Tie , Winnie. G. Vosa , Alireza Mashaghi , Carlie J.M. de Vries
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Abstract

Nuclear receptor Nur77 plays a pivotal role in immune regulation across various tissues, influencing pro-inflammatory signaling pathways and cellular metabolism. While cellular mechanics have been implicated in inflammation, the contribution of Nur77 to these mechanical processes remains elusive. Macrophages exhibit remarkable plasticity in their morphology and mechanics, enabling them to adapt and execute essential inflammatory functions, such as navigating through inflamed tissue and pathogen engulfment. However, the precise regulatory mechanisms governing these dynamic changes in macrophage mechanics during inflammation remain poorly understood. To establish the potential correlation of Nur77 with cellular mechanics, we compared bone marrow-derived macrophages (BMDMs) from wild-type (WT) and Nur77-deficient (Nur77-KO) mice and employed cytoskeletal imaging, single-cell acoustic force spectroscopy (AFS), migration and phagocytosis assays, and RNA-sequencing. Our findings reveal that Nur77-KO BMDMs exhibit changes to their actin networks compared to WT BMDMs, which is associated with a stiffer and more rigid phenotype. Subsequent in vitro experiments validated our observations, showcasing that Nur77 deficiency leads to enhanced migration, reduced adhesion, and increased phagocytic activity. The transcriptomics data confirmed altered mechanics-related pathways in Nur77-deficient macrophage that are accompanied by a robust pro-inflammatory phenotype. Utilizing previously obtained ChIP-data, we revealed that Nur77 directly targets differentially expressed genes associated with cellular mechanics. In conclusion, while Nur77 is recognized for its role in reducing inflammation of macrophages by inhibiting the expression of pro-inflammatory genes, our study identifies a novel regulatory mechanism where Nur77 governs macrophage inflammation through the modulation of expression of genes involved in cellular mechanics. Our findings suggest that immune regulation by Nur77 may be partially mediated through alterations in cellular mechanics, highlighting a potential avenue for therapeutic targeting.

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核受体 Nur77 调节巨噬细胞的免疫机制
核受体 Nur77 在各种组织的免疫调节中发挥着关键作用,影响着促炎症信号通路和细胞代谢。虽然细胞力学与炎症有牵连,但 Nur77 对这些力学过程的贡献仍然难以捉摸。巨噬细胞的形态和力学表现出显著的可塑性,使其能够适应和执行基本的炎症功能,如在炎症组织中导航和病原体吞噬。然而,人们对炎症期间巨噬细胞力学动态变化的精确调控机制仍然知之甚少。为了确定 Nur77 与细胞力学的潜在相关性,我们比较了野生型(WT)和 Nur77 缺失型(Nur77-KO)小鼠的骨髓巨噬细胞(BMDMs),并采用了细胞骨架成像、单细胞声学力谱(AFS)、迁移和吞噬测定以及 RNA 序列测定。我们的研究结果表明,与 WT BMDMs 相比,Nur77-KO BMDMs 的肌动蛋白网络发生了变化,这与更硬、更僵化的表型有关。随后的体外实验验证了我们的观察结果,表明 Nur77 的缺乏会导致迁移增强、粘附性降低和吞噬活性增强。转录组学数据证实了 Nur77 缺乏的巨噬细胞中与力学相关的通路发生了改变,并伴随着强大的促炎表型。利用之前获得的 ChIP 数据,我们发现 Nur77 直接靶向与细胞力学相关的差异表达基因。总之,Nur77 通过抑制促炎基因的表达来减轻巨噬细胞炎症的作用已得到公认,而我们的研究则发现了一种新的调控机制,即 Nur77 通过调节细胞力学相关基因的表达来控制巨噬细胞炎症。我们的研究结果表明,Nur77的免疫调节作用可能部分是通过改变细胞力学介导的,这为靶向治疗提供了一条潜在的途径。
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来源期刊
European journal of cell biology
European journal of cell biology 生物-细胞生物学
CiteScore
7.30
自引率
1.50%
发文量
80
审稿时长
38 days
期刊介绍: The European Journal of Cell Biology, a journal of experimental cell investigation, publishes reviews, original articles and short communications on the structure, function and macromolecular organization of cells and cell components. Contributions focusing on cellular dynamics, motility and differentiation, particularly if related to cellular biochemistry, molecular biology, immunology, neurobiology, and developmental biology are encouraged. Manuscripts describing significant technical advances are also welcome. In addition, papers dealing with biomedical issues of general interest to cell biologists will be published. Contributions addressing cell biological problems in prokaryotes and plants are also welcome.
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