铁中毒诱导的SUMO2乳酸化通过增强肺腺癌中ACSL4的降解来对抗铁中毒。

IF 12.5 1区 生物学 Q1 CELL BIOLOGY
Guangyao Shan, Yunyi Bian, Qihai Sui, Jiaqi Liang, Shencheng Ren, Binyang Pan, Haochun Shi, Zhaolin Zheng, Dejun Zeng, Junkan Zhu, Zhencong Chen, Guoshu Bi, Hong Fan, Cheng Zhan
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引用次数: 0

摘要

乳酸化是一种乳酸介导的翻译后修饰,因其在表观遗传调节中的关键作用而受到广泛关注。然而,肺腺癌(LUAD)中乳酸化与铁下垂之间复杂的相互作用仍有待完全阐明。利用代谢组学分析和综合代谢文库筛选,我们的研究发现,铁下垂显著增强乳酸积累和随后的蛋白质乳酸化,这反过来赋予LUAD细胞对铁下垂的抵抗力。功能分析,包括细胞活力测试、脂质过氧化检测、丙二醛和谷胱甘肽检测,共同揭示了SUMO2-K11乳酸化(SUMO2-K11la)是对铁衰亡诱导反应中最显著的乳酸化,是决定铁衰亡抗性的关键因素。summo2 - k11la抑制了SUMO2与ACSL4之间的相互作用。因此,这种破坏促进了ACSL4的降解,从而破坏了脂质代谢,有效地减轻了铁下垂。此外,AARS1被鉴定为SUMO2-K11la的乙酰转移酶,HDAC1被鉴定为SUMO2-K11la的去乙酰化酶。基于这些发现,我们开发了一种具有竞争性和特异性抑制SUMO2-K11la的细胞穿透肽。在异种移植模型中,该肽显著增强铁下垂并使LUAD对顺铂敏感,同时增强自发性肺癌模型中的化学免疫治疗反应。总之,我们的研究结果表明,SUMO2-K11la是LUAD中铁中毒耐药性的关键调节因子,并提出了一种有希望的策略,即通过细胞穿透肽靶向SUMO2-K11la来增强基于铁中毒的癌症治疗。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Ferroptosis-induced SUMO2 lactylation counteracts ferroptosis by enhancing ACSL4 degradation in lung adenocarcinoma.

Lactylation, a lactate-mediated post-translational modification, has garnered significant attention for its pivotal role in epigenetic modulation. However, the intricate interplay between lactylation and ferroptosis in lung adenocarcinoma (LUAD) remains to be fully elucidated. Utilizing metabolomic profiling and comprehensive metabolic library screening, our study uncovers that ferroptosis markedly enhances lactic acid accumulation and subsequent protein lactylation, which in turn confers resistance to ferroptosis in LUAD cells. Functional assays, comprising cell viability tests, lipid peroxidation detection, as well as malondialdehyde and glutathione measurements, collectively reveal that SUMO2-K11 lactylation (SUMO2-K11la), the most prominently elevated lactylation in response to ferroptosis induction, serves as a pivotal factor in determining ferroptosis resistance. Sumoylation proteomics and co-immunoprecipitation assays reveal that SUMO2-K11la impairs the interaction between SUMO2 and ACSL4. Consequently, this disruption facilitates the degradation of ACSL4, thereby disrupting lipid metabolism and effectively mitigating ferroptosis. Furthermore, AARS1 is identified as the lactyltransferase and HDAC1 as the delactylase for SUMO2-K11la. Based on these findings, we develop a cell-penetrating peptide that competitively and specifically inhibits SUMO2-K11la. This peptide significantly potentiates ferroptosis and sensitizes LUAD to cisplatin in xenograft models, while enhancing chemoimmunotherapy responses in spontaneous lung cancer models. Overall, our findings imply that SUMO2-K11la is a pivotal regulator of ferroptosis resistance in LUAD, and suggest a promising strategy to potentiate ferroptosis-based cancer therapies via targeting SUMO2-K11la by the cell-penetrating peptide.

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来源期刊
Cell Discovery
Cell Discovery Biochemistry, Genetics and Molecular Biology-Molecular Biology
CiteScore
24.20
自引率
0.60%
发文量
120
审稿时长
20 weeks
期刊介绍: Cell Discovery is a cutting-edge, open access journal published by Springer Nature in collaboration with the Center for Excellence in Molecular Cell Science, Chinese Academy of Sciences (CAS). Our aim is to provide a dynamic and accessible platform for scientists to showcase their exceptional original research. Cell Discovery covers a wide range of topics within the fields of molecular and cell biology. We eagerly publish results of great significance and that are of broad interest to the scientific community. With an international authorship and a focus on basic life sciences, our journal is a valued member of Springer Nature's prestigious Molecular Cell Biology journals. In summary, Cell Discovery offers a fresh approach to scholarly publishing, enabling scientists from around the world to share their exceptional findings in molecular and cell biology.
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