SPI1 activates mitochondrial unfolded response signaling to inhibit chondrocyte senescence and relieves osteoarthritis

IF 14.3 1区 医学 Q1 CELL & TISSUE ENGINEERING
Xiangyu Zu, Shenghong Chen, Zhengyuan Li, Lin Hao, Wenhan Fu, Hui Zhang, Zongsheng Yin, Yin Wang, Jun Wang
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Abstract

Chondrocyte senescence is a critical pathological hallmark of osteoarthritis (OA). Aberrant mechanical stress is considered a pivotal determinant in chondrocyte aging; however, the precise underlying mechanism remains elusive. Our findings demonstrate that SPI1 plays a significant role in counteracting chondrocyte senescence and inhibiting OA progression. SPI1 binds to the PERK promoter, thereby promoting its transcriptional activity. Importantly, PERK, rather than GCN2, facilitates eIF2α phosphorylation, activating the mitochondrial unfolded protein response (UPRmt) and impeding chondrocyte senescence. Deficiency of SPI1 in mechanical overload-induced mice leads to diminished UPRmt activation and accelerated OA progression. Intra-articular injection of adenovirus vectors overexpressing SPI1 and PERK effectively mitigates cartilage degeneration. In summary, our study elucidates the crucial regulatory role of SPI1 in the pathogenesis of chondrocyte senescence by activating UPRmt signaling through PERK, which may present a novel therapeutic target for treating OA.

SPI1 alleviates the progression of OA by inhibiting mechanical stress-induced chondrocyte senescence through mitochondrial UPR signaling.

Abstract Image

SPI1激活线粒体未折叠反应信号,抑制软骨细胞衰老,缓解骨关节炎
软骨细胞衰老是骨关节炎(OA)的一个重要病理标志。异常机械应力被认为是软骨细胞老化的关键决定因素;然而,确切的潜在机制仍然难以捉摸。我们的研究结果表明,SPI1在对抗软骨细胞衰老和抑制OA进展中起着重要作用。SPI1与PERK启动子结合,从而促进其转录活性。重要的是,PERK而不是GCN2促进eIF2α磷酸化,激活线粒体未折叠蛋白反应(UPRmt)并阻碍软骨细胞衰老。在机械负荷诱导的小鼠中,SPI1的缺乏导致UPRmt激活减少和OA进展加速。关节内注射过表达SPI1和PERK的腺病毒载体可有效减轻软骨退变。综上所述,我们的研究阐明了SPI1通过PERK激活UPRmt信号在软骨细胞衰老的发病机制中的关键调控作用,这可能是治疗OA的一个新的治疗靶点。SPI1通过线粒体UPR信号传导抑制机械应力诱导的软骨细胞衰老,从而缓解OA的进展。
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来源期刊
Bone Research
Bone Research CELL & TISSUE ENGINEERING-
CiteScore
20.00
自引率
4.70%
发文量
289
审稿时长
20 weeks
期刊介绍: Established in 2013, Bone Research is a newly-founded English-language periodical that centers on the basic and clinical facets of bone biology, pathophysiology, and regeneration. It is dedicated to championing key findings emerging from both basic investigations and clinical research concerning bone-related topics. The journal's objective is to globally disseminate research in bone-related physiology, pathology, diseases, and treatment, contributing to the advancement of knowledge in this field.
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