机械拉伸触发的EGR1过表达增强巨噬细胞M2极化并驱动线粒体分裂。

IF 3.5 3区 生物学 Q3 CELL BIOLOGY
Fei Han , Yi Cheng , Xianzhi Xu, Jiayi Yin, Wei-Bing Zhang
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引用次数: 0

摘要

正畸牙齿运动涉及机械力和骨组织重塑之间复杂的相互作用。作为对机械刺激的反应,巨噬细胞在组织重塑和潜在的副作用中发挥重要作用。在本研究中,我们研究了机械刺激下巨噬细胞极化的分子机制,重点研究了EGR1 (Early Growth Response 1)在线粒体动力学和巨噬细胞极化中的双重调控。在体外RAW264.7细胞循环拉伸应力模型中,我们发现机械张力促进巨噬细胞M2极化表型。在机械拉伸的第1 ~ 2小时,细胞中iNOS、ARG-1和CD163的表达增加。同时,巨噬细胞线粒体动力学的显著变化包括裂变行为增强和膜电位降低。转录组测序结果表明,EGR1在机械刺激后迅速上调,并从细胞质转移到细胞核。抑制线粒体裂变或敲低EGR1可显著抑制张力诱导的M2极化。此外,这一过程可能与PI3K-Akt信号通路有关。我们的研究结果通过egr1介导的线粒体动力学揭示了机械力与巨噬细胞功能之间的联系。本研究为正畸运动过程中骨重塑的研究提供了新的视角。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Mechanical stretch-triggered EGR1 overexpression enhances macrophage M2 polarization and drives mitochondrial fission
Orthodontic tooth movement involves a complex interaction between mechanical forces and bone tissue remodeling. As a response to mechanical stimuli, macrophages play an important role in tissue remodeling and potential side effects. In this study, we investigated the molecular mechanism of macrophage polarization under mechanical stimulation, focusing on the dual regulation of EGR1 (Early Growth Response 1) in mitochondrial dynamics and macrophage polarization. In the cyclic stretch stress model of RAW264.7 cells in vitro, we found that mechanical tension promotes the M2 polarization phenotype of macrophages. During the first to second hour of mechanical stretching, the expression of iNOS, ARG-1, and CD163 in cells increased. At the same time, significant changes in macrophage mitochondrial dynamics include enhanced fission behavior and decreased membrane potential. The transcriptome sequencing results indicated that EGR1 was rapidly upregulated after mechanical stimulation and translocated from the cytoplasm to the nucleus. Inhibition of mitochondrial fission or knockdown of EGR1 significantly inhibited tension-induced M2 polarization. Moreover, this process may be associated with the PI3K-Akt signaling pathway. Our research findings reveal new insights into the connection between mechanical forces and macrophage function through EGR1-mediated mitochondrial dynamics. This work provides new perspectives on bone remodeling during orthodontic movement.
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来源期刊
Experimental cell research
Experimental cell research 医学-细胞生物学
CiteScore
7.20
自引率
0.00%
发文量
295
审稿时长
30 days
期刊介绍: Our scope includes but is not limited to areas such as: Chromosome biology; Chromatin and epigenetics; DNA repair; Gene regulation; Nuclear import-export; RNA processing; Non-coding RNAs; Organelle biology; The cytoskeleton; Intracellular trafficking; Cell-cell and cell-matrix interactions; Cell motility and migration; Cell proliferation; Cellular differentiation; Signal transduction; Programmed cell death.
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