YTHDF2-dependent m6A modification of FOXO3 mRNA mediates TIMP1 expression and contributes to intervertebral disc degeneration following ROS stimulation.

IF 6.2 2区 生物学 Q1 BIOCHEMISTRY & MOLECULAR BIOLOGY Cellular and Molecular Life Sciences Pub Date : 2024-12-03 DOI:10.1007/s00018-024-05503-w
Fei Wang, Yifeng Wang, Songou Zhang, Mengyang Pu, Ping Zhou
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Abstract

The accumulation of reactive oxygen species (ROS) significantly contributes to intervertebral disc degeneration (IDD), but the mechanisms behind this phenomenon remain unclear. This study revealed elevated ROS levels in the intervertebral discs (IVDs) of aged mice compared to those of younger mice. The local application of hydrogen peroxide (H2O2) near lumbar discs also induced ROS accumulation and IDD. Isobaric tags for relative and absolute quantitation (iTRAQ) analysis of discs from aged and H2O2-injected mice showed increased levels of YTH N6-methyladenosine RNA binding protein F2 (YTHDF2) and matrix metallopeptidase 1/3/7/9 (MMP1/3/7/9), along with decreased levels of forkhead box O3 (FOXO3) and TIMP1 (tissue inhibitor of metalloproteinases 1). Our experiments indicated that in nucleus pulposus (NP) cells and young mouse IVDs that were not exposed to ROS, FOXO3 recruited histone acetyltransferase CBP (CREB binding protein) and mediator complex subunit 1 (Med1) to activate TIMP1 expression, which inhibited MMP activity and prevented disc degeneration. However, ROS exposure activated YTHDF2 and promoted the degradation of m6A-modified FOXO3 mRNA, impairing FOXO3's ability to activate TIMP1. This degradation exacerbated MMP activity and contributed to the degradation of the IVD extracellular matrix. Notably, administration of the YTHDF2 inhibitor DC-Y13-27 in older and H2O2-treated mice significantly enhanced FOXO3 and TIMP1 expression, reduced MMP activity, and mitigated IVD degeneration. Together, this study uncovers a novel ROS-regulated pathway in IDD, centered on the YTHDF2/FOXO3/TIMP1/MMPs axis, suggesting that targeting YTHDF2 may represent a promising therapeutic strategy for combating the progression of IDD.

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ythdf2依赖的m6A修饰FOXO3 mRNA介导TIMP1表达,并有助于ROS刺激后的椎间盘退变。
活性氧(ROS)的积累显著促进了椎间盘退变(IDD),但这一现象背后的机制尚不清楚。这项研究显示,与年轻小鼠相比,老年小鼠椎间盘(IVDs)中的ROS水平升高。腰椎间盘附近局部应用过氧化氢(H2O2)也可引起ROS积累和IDD。老龄小鼠和注射h2o2的小鼠椎间盘的相对和绝对定量等压标记(iTRAQ)分析显示,YTH n6 -甲基腺苷RNA结合蛋白F2 (YTHDF2)和基质金属肽酶1/3/7/9 (MMP1/3/7/9)水平升高,叉头盒O3 (FOXO3)和TIMP1(金属蛋白酶组织抑制剂1)水平降低。我们的实验表明,在未暴露于ROS的髓核(NP)细胞和年轻小鼠ivd中,FOXO3募集组蛋白乙酰转移酶CBP (CREB结合蛋白)和介质复合物亚基1 (Med1)激活TIMP1表达,从而抑制MMP活性,防止椎间盘退变。然而,ROS暴露激活了YTHDF2,促进了m6a修饰的FOXO3 mRNA的降解,损害了FOXO3激活TIMP1的能力。这种降解加剧了MMP的活性,并导致了IVD细胞外基质的降解。值得注意的是,在老年和h2o2处理的小鼠中给予YTHDF2抑制剂DC-Y13-27,可显著提高FOXO3和TIMP1的表达,降低MMP活性,减轻IVD变性。总之,本研究揭示了IDD中以YTHDF2/FOXO3/TIMP1/MMPs轴为中心的一种新的ros调控通路,表明靶向YTHDF2可能是对抗IDD进展的一种有希望的治疗策略。
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来源期刊
Cellular and Molecular Life Sciences
Cellular and Molecular Life Sciences 生物-生化与分子生物学
CiteScore
13.20
自引率
1.20%
发文量
546
审稿时长
1.0 months
期刊介绍: Journal Name: Cellular and Molecular Life Sciences (CMLS) Location: Basel, Switzerland Focus: Multidisciplinary journal Publishes research articles, reviews, multi-author reviews, and visions & reflections articles Coverage: Latest aspects of biological and biomedical research Areas include: Biochemistry and molecular biology Cell biology Molecular and cellular aspects of biomedicine Neuroscience Pharmacology Immunology Additional Features: Welcomes comments on any article published in CMLS Accepts suggestions for topics to be covered
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