沉默 FTO 可抑制氧化应激,通过 GPR177 的 m6A 修饰缓解神经性疼痛。

IF 3.1 4区 医学 Q3 IMMUNOLOGY Immunity, Inflammation and Disease Pub Date : 2024-07-18 DOI:10.1002/iid3.1345
Li Liu, Mei Liu, Zhiping Song, Huaigen Zhang
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引用次数: 0

摘要

背景:神经病理性疼痛(NP)是一种具有挑战性的健康问题,因为其性质复杂,且与多种病因相关。NP 的发生涉及氧化应激(OS)介导的神经元异常活动。以往的研究表明,m6A 甲基化在 NP 的调控途径中发挥作用。本研究旨在探讨 m6A 甲基化修饰剂缓解 NP 的具体分子途径:为此,我们通过幸免神经损伤(SNI)建立了一个NO大鼠模型,然后通过爪退缩阈值(PWT)和爪退缩潜伏期(PWL)对动物的疼痛评估进行量化。通过测量脊髓组织中的活性氧、超氧化物歧化酶和过氧化氢酶(CAT)来评估 SNI 大鼠的 OS。此外,还采用了定量实时聚合酶链反应和 Western 印迹分析法检测脂肪量和肥胖相关(FTO)及 GPR177 的水平,并通过 MeRIP 分析 GPR117 的 m6A 水平:结果:研究结果表明,脊髓组织样本中高表达的 FTO 会增强 OS,而敲除 Fto 能有效缓解 SNI 大鼠的 NP 和 OS。机理研究发现,Fto 介导的 Grp177 m6A 修饰减少参与了 WNT5a/TRPV1 轴介导的 NP OS 缓解。此外,体外实验结果表明,YTHDF2是这一过程中重要的m6A甲基化阅读蛋白:结论:Fto沉默通过YTHDF2依赖机制导致Grp177的m6A甲基化增加,导致Grp177稳定性降低,最终通过OS抑制减轻大鼠NP。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

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Silencing of FTO inhibits oxidative stress to relieve neuropathic pain by m6A modification of GPR177

Background

Neuropathic pain (NP) is a challenging health condition owing to its complex nature and associated multiple etiologies. The occurrence of NP involves the abnormal activity of neurons mediated by oxidative stress (OS). Previous research has demonstrated that m6A methylation plays a role in the regulatory pathway of NP. This study aimed to investigate the specific molecular pathways through which m6A methylation modifiers alleviate NP.

Methods

For this purpose, an NO rat model was developed via spared nerve injury (SNI), followed by quantifying the animal's pain assessment via paw withdrawal threshold (PWT) and paw withdrawal latency (PWL). The OS in SNI rats was evaluated by measuring reactive oxygen species, superoxide dismutase, and catalase (CAT) in spinal cord tissues. Moreover, quantitative-real-time polymerase chain reaction and western blot analysis were employed for detecting fat mass and obesity-associated (FTO) and GPR177 levels, while m6A levels of GPR117 were analyzed via MeRIP.

Results

The results indicated an enhanced OS with highly expressed FTO in spinal cord tissue samples, where knocking down Fto effectively relieved NP and OS in SNI rats. Mechanistic investigations revealed that Fto-mediated reduction of Grp177 m6A modification was involved in the WNT5a/TRPV1 axis-mediated OS remission of NP. Moreover, in vitro experiment results indicated that YTHDF2 was an important m6A methylated reading protein for this process.

Conclusions

Fto silencing leads to increased m6A methylation of Grp177 through a YTHDF2-dependent mechanism, resulting in decreased Grp177 stability and ultimately reducing NP in rats by OS suppression.

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来源期刊
Immunity, Inflammation and Disease
Immunity, Inflammation and Disease Medicine-Immunology and Allergy
CiteScore
3.60
自引率
0.00%
发文量
146
审稿时长
8 weeks
期刊介绍: Immunity, Inflammation and Disease is a peer-reviewed, open access, interdisciplinary journal providing rapid publication of research across the broad field of immunology. Immunity, Inflammation and Disease gives rapid consideration to papers in all areas of clinical and basic research. The journal is indexed in Medline and the Science Citation Index Expanded (part of Web of Science), among others. It welcomes original work that enhances the understanding of immunology in areas including: • cellular and molecular immunology • clinical immunology • allergy • immunochemistry • immunogenetics • immune signalling • immune development • imaging • mathematical modelling • autoimmunity • transplantation immunology • cancer immunology
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