miR-155-5p 在椎间盘退化过程中的炎症和机械负荷中的作用。

IF 8.2 2区 生物学 Q1 CELL BIOLOGY
Petra Cazzanelli, Mikkael Lamoca, Johannes Hasler, Oliver Nic Hausmann, Addisu Mesfin, Varun Puvanesarajah, Wolfgang Hitzl, Karin Wuertz-Kozak
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引用次数: 0

摘要

背景:椎间盘(IVD)退化是一种多因素病理过程,导致 IVD 细胞活性失调。在退化过程中观察到的 IVD 细胞分解代谢转变会导致炎症加剧、细胞外基质(ECM)降解、细胞内信号传导失常和细胞丢失。重要的是,已知这些病理过程是相互关联的,共同导致了疾病的进展。众所周知,微RNA(miRNA)是强大的转录后调控因子,可同时靶向多个基因并调控多种细胞内通路。其中,miR-155-5p 尤为引人关注,因为它是一种促炎介质,也是癌症和骨关节炎等疾病的诱因。本研究调查了 miR-155-5p 在 IVD 退化中的作用,特别关注炎症和机械感应:方法:通过用 miR-155-5p 模拟物、抑制剂或相应的非靶向对照组转染从退化的 IVDs 中分离出来的人髓核(NP)和纤维环(AF)细胞,进行功能增益和功能缺失研究。然后将转染细胞置于炎症环境或机械负荷下。收集条件培养基和细胞裂解液,用于磷酸化和细胞因子分泌阵列以及基因表达分析:结果:miR-155-5p 在房颤细胞中的表达增加导致白细胞介素(IL)-8 细胞因子在循环拉伸过程中分泌显著上调,而在炎症过程中 IL-6 的分泌也有类似趋势。此外,miR-155-5p 模拟物增加了周期性拉伸的 AF 细胞中脑源性神经营养因子(BDNF)的表达。在 NP 细胞中,miR-155-5p 功能增益通过增加 p38 和 p53 的磷酸化激活了丝裂原活化蛋白激酶(MAPK)信号通路。最后,miR-155-5p抑制分别导致AF细胞中抗炎细胞因子IL-10和NP细胞中金属蛋白酶组织抑制剂(TIMP)-4的显著增加:总之,这些结果表明,miR-155-5p 可通过促炎细胞因子和 MAPK 信号转导增强炎症反应,并在机械负荷过程中促进 AF 细胞的分解代谢转变,从而导致 IVD 退化。抑制 miR-155-5p 可能是治疗 IVD 退化和腰背痛的一种潜在方法。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
The role of miR-155-5p in inflammation and mechanical loading during intervertebral disc degeneration.

Background: Intervertebral disc (IVD) degeneration is a multifactorial pathological process resulting in the dysregulation of IVD cell activity. The catabolic shift observed in IVD cells during degeneration leads to increased inflammation, extracellular matrix (ECM) degradation, aberrant intracellular signaling and cell loss. Importantly, these pathological processes are known to be interconnected and to collectively contribute to the progression of the disease. MicroRNAs (miRNAs) are known as strong post-transcriptional regulators, targeting multiple genes simultaneously and regulating numerous intracellular pathways. Specifically, miR-155-5p has been of particular interest since it is known as a pro-inflammatory mediator and contributing factor to diseases like cancer and osteoarthritis. This study investigated the role of miR-155-5p in IVD degeneration with a specific focus on inflammation and mechanosensing.

Methods: Gain- and loss-of-function studies were performed through transfection of human Nucleus pulposus (NP) and Annulus fibrosus (AF) cells isolated from degenerated IVDs with miR-155-5p mimics, inhibitors or their corresponding non-targeting control. Transfected cells were then subjected to an inflammatory environment or mechanical loading. Conditioned media and cell lysates were collected for phosphorylation and cytokine secretion arrays as well as gene expression analysis.

Results: Increased expression of miR-155-5p in AF cells resulted in significant upregulation of interleukin (IL)-8 cytokine secretion during cyclic stretching and a similar trend in IL-6 secretion during inflammation. Furthermore, miR-155-5p mimics increased the expression of the brain-derived neurotrophic factor (BDNF) in AF cells undergoing cyclic stretching. In NP cells, miR-155-5p gain-of-function resulted in the activation of the mitogen-activated protein kinase (MAPK) signaling pathway through increased phosphorylation of p38 and p53. Lastly, miR-155-5p inhibition caused a significant increase in the anti-inflammatory cytokine IL-10 in AF cells and the tissue inhibitor of metalloproteinases (TIMP)-4 in NP cells respectively.

Conclusion: Overall, these results show that miR-155-5p contributes to IVD degeneration by enhancing inflammation through pro-inflammatory cytokines and MAPK signaling, as well as by promoting the catabolic shift of AF cells during mechanical loading. The inhibition of miR-155-5p may constitute a potential therapeutic approach for IVD degeneration and low back pain.

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来源期刊
CiteScore
11.00
自引率
0.00%
发文量
180
期刊介绍: Cell Communication and Signaling (CCS) is a peer-reviewed, open-access scientific journal that focuses on cellular signaling pathways in both normal and pathological conditions. It publishes original research, reviews, and commentaries, welcoming studies that utilize molecular, morphological, biochemical, structural, and cell biology approaches. CCS also encourages interdisciplinary work and innovative models, including in silico, in vitro, and in vivo approaches, to facilitate investigations of cell signaling pathways, networks, and behavior. Starting from January 2019, CCS is proud to announce its affiliation with the International Cell Death Society. The journal now encourages submissions covering all aspects of cell death, including apoptotic and non-apoptotic mechanisms, cell death in model systems, autophagy, clearance of dying cells, and the immunological and pathological consequences of dying cells in the tissue microenvironment.
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