Suppr超能文献

通过 microRNA-547-3p 介导的 Map4k4/NF-κb 信号通路解析 microRNAs 转录组谱揭示手法治疗缓解神经病理性疼痛的潜在机制

Transcriptome profiling of microRNAs reveals potential mechanisms of manual therapy alleviating neuropathic pain through microRNA-547-3p-mediated Map4k4/NF-κb signaling pathway.

机构信息

Yueyang Hospital of Integrated Traditional Chinese and Western Medicine, Shanghai University of Traditional Chinese Medicine, Shanghai, 200437, People's Republic of China.

School of Acupuncture-Moxibustion and Tuina, Shanghai University of Traditional Chinese Medicine, Shanghai, 201203, People's Republic of China.

出版信息

J Neuroinflammation. 2022 Sep 1;19(1):211. doi: 10.1186/s12974-022-02568-x.

Abstract

BACKGROUND

Local neuroinflammation secondary to spinal nerve compression in lumbar disk herniation (LDH) is a key driver contributing to neuropathic pain. Manual therapy (MT), a widely used nonsurgical therapy, can relieve LDH-mediated pain by reducing inflammation. MT has attracted extensive attention; however, its mechanism remains poorly understood. MicroRNAs (miRNAs) are important regulators of pain signaling transduction, but are rarely reported in the chronic compression of dorsal root ganglia (CCD) model, and further investigation is needed to decipher whether they mediate anti-inflammatory and analgesic effects of MT.

METHODS

We used a combination of in vivo behavioral and molecular techniques to study MT intervention mechanisms. Neuropathic pain was induced in a CCD rat model and MT intervention was performed according to standard procedures. Enzyme-linked immunosorbent assay (ELISA) was used to detect inflammatory cytokine levels in dorsal root ganglia (DRG). Small RNA sequencing, immunofluorescence, Western blot, and qRT-PCR were performed to screen miRNAs and their target genes and determine core factors in the pathway possibly regulated by miRNA-mediated target gene in DRG of MT-treated CCD rats.

RESULTS

Compared with naive rats, small RNA sequencing detected 22 differentially expressed miRNAs in DRG of CCD rats, and compared with CCD rats, MT-treated rats presented 19 differentially expressed miRNAs, which were functionally associated with nerve injury and inflammation. Among these, miR-547-3p was screened as a key miRNA mediating neuroinflammation and participating in neuropathic pain. We confirmed in vitro that its function is achieved by directly regulating its target gene Map4k4. Intrathecal injection of miR-547-3p agomir or MT intervention significantly reduced Map4k4 expression and the expression and phosphorylation of IκBα and p65 in the NF-κB pathway, thus reducing the inflammatory cytokine levels and exerting an analgesic effect, whereas intrathecal injection of miR-547-3p antagomir led to opposite effects.

CONCLUSIONS

In rats, CCD-induced neuropathic pain leads to variation in miRNA expression in DRG, and MT can intervene the transcription and translation of inflammation-related genes through miRNAs to improve neuroinflammation and alleviate neuropathic pain. MiR-547-3p may be a key target of MT for anti-inflammatory and analgesia effects, which is achieved by mediating the Map4k4/NF-κB pathway to regulate downstream inflammatory cytokines.

摘要

背景

腰椎间盘突出症(LDH)导致的脊髓神经受压引起的局部神经炎症是导致神经病理性疼痛的关键因素。手法治疗(MT)作为一种广泛应用的非手术治疗方法,通过减轻炎症来缓解 LDH 介导的疼痛。MT 引起了广泛的关注;然而,其机制仍不清楚。microRNAs(miRNAs)是疼痛信号转导的重要调节因子,但在背根神经节(DRG)慢性压迫模型中很少有报道,需要进一步研究以确定它们是否介导 MT 的抗炎和镇痛作用。

方法

我们使用体内行为和分子技术相结合的方法来研究 MT 干预机制。在 DRG 中,采用酶联免疫吸附试验(ELISA)检测神经病理性疼痛诱导的 CCD 大鼠模型中的炎症细胞因子水平。采用小 RNA 测序、免疫荧光、Western blot 和 qRT-PCR 筛选 miR-NAs 及其靶基因,并确定 MT 治疗 CCD 大鼠 DRG 中可能受 miRNA 介导的靶基因调控的通路中的核心因子。

结果

与正常大鼠相比,DRG 中小 RNA 测序在 CCD 大鼠中检测到 22 个差异表达的 miRNAs,与 CCD 大鼠相比,MT 治疗大鼠中检测到 19 个差异表达的 miRNAs,这些 miRNAs 与神经损伤和炎症有关。其中,miR-547-3p 被筛选为介导神经炎症和参与神经病理性疼痛的关键 miRNA。我们在体外证实,其功能是通过直接调节其靶基因 Map4k4 来实现的。鞘内注射 miR-547-3p 激动剂或 MT 干预可显著降低 NF-κB 通路中 IκBα 和 p65 的表达和磷酸化,从而降低炎症细胞因子水平并发挥镇痛作用,而鞘内注射 miR-547-3p 拮抗剂则产生相反的效果。

结论

在大鼠中,CCD 诱导的神经病理性疼痛导致 DRG 中 miRNA 表达发生变化,MT 可以通过 miRNA 干预炎症相关基因的转录和翻译,改善神经炎症,缓解神经病理性疼痛。miR-547-3p 可能是 MT 抗炎和镇痛作用的关键靶点,通过调节 Map4k4/NF-κB 通路来调节下游炎症细胞因子。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/2fa4/9434879/72b2c3a818a1/12974_2022_2568_Fig1_HTML.jpg

文献AI研究员

20分钟写一篇综述,助力文献阅读效率提升50倍。

立即体验

用中文搜PubMed

大模型驱动的PubMed中文搜索引擎

马上搜索

文档翻译

学术文献翻译模型,支持多种主流文档格式。

立即体验