← 返回前沿论文

SMYD5 对 rpL40 的甲基化将核糖体输出与胃癌联系起来

英文原题:SMYD5 methylation of rpL40 links ribosomal output to gastric cancer.

PubMed 2024/07/24(内容时间) Nature Q1 · IF 56.1(JCR 2025)

研究概要

我们的工作揭示了一种基于核糖体的表观遗传机制,该机制促进了恶性GAC的演化,并提出将SMYD5作为潜在联合治疗方案的一部分来治疗这种癌症。

中文摘要

组蛋白赖氨酸甲基化动态的破坏导致的转录失调已被确认为肿瘤发生的促进因素1,2。然而,类似的病理性表观遗传机制是否直接作用于核糖体以推进肿瘤发生尚不清楚。在此我们发现,赖氨酸甲基转移酶SMYD5对核心核糖体蛋白L40(rpL40)第22位赖氨酸的三甲基化(rpL40K22me3)调控mRNA翻译输出,从而促进伴有致死性腹膜腹水的胃腺癌(GAC)的恶性进展。一项生化蛋白质组学策略鉴定出单泛素融合蛋白伴侣rpL40(参考文献3)是SMYD5在多种样本中的主要生理底物。在GAC细胞系中抑制SMYD5-rpL40K22me3轴可重编程蛋白质合成,从而减弱致癌基因表达特征。SMYD5和rpL40K22me3在GAC患者样本中上调,并与临床结局呈负相关。在家族性和散发性恶性GAC小鼠模型中体内敲除SMYD5可阻断转移性疾病,包括腹膜癌病。抑制SMYD5对rpL40的甲基化可抑制人癌细胞和患者来源GAC异种移植瘤的生长,并使其对PI3K和mTOR抑制剂高度敏感。最后,将SMYD5敲除与PI3K-mTOR抑制及CAR-T 细胞给药相结合,可治愈一种原本致死性的侵袭性GAC来源腹膜癌病体内小鼠模型。总之,我们的工作揭示了一种基于核糖体的表观遗传机制,该机制促进恶性GAC的演进,并提出靶向SMYD5作为治疗该癌症的潜在联合治疗方案的一部分。

展开英文摘要原文

Dysregulated transcription due to disruption in histone lysine methylation dynamics is an established contributor to tumorigenesis 1,2 . However, whether analogous pathologic epigenetic mechanisms act directly on the ribosome to advance oncogenesis is unclear. Here we find that trimethylation of the core ribosomal protein L40 (rpL40) at lysine 22 (rpL40K22me3) by the lysine methyltransferase SMYD5 regulates mRNA translation output to promote malignant progression of gastric adenocarcinoma (GAC) with lethal peritoneal ascites. A biochemical-proteomics strategy identifies the monoubiquitin fusion protein partner rpL40 (ref. 3 ) as the principal physiological substrate of SMYD5 across diverse samples. Inhibiting the SMYD5-rpL40K22me3 axis in GAC cell lines reprogrammes protein synthesis to attenuate oncogenic gene expression signatures. SMYD5 and rpL40K22me3 are upregulated in samples from patients with GAC and negatively correlate with clinical outcomes. SMYD5 ablation in vivo in familial and sporadic mouse models of malignant GAC blocks metastatic disease, including peritoneal carcinomatosis. Suppressing SMYD5 methylation of rpL40 inhibits human cancer cell and patient-derived GAC xenograft growth and renders them hypersensitive to inhibitors of PI3K and mTOR. Finally, combining SMYD5 depletion with PI3K-mTOR inhibition and chimeric antigen receptor T cell administration cures an otherwise lethal in vivo mouse model of aggressive GAC-derived peritoneal carcinomatosis. Together, our work uncovers a ribosome-based epigenetic mechanism that facilitates the evolution of malignant GAC and proposes SMYD5 targeting as part of a potential combination therapy to treat this cancer.

论文信息

作者
Park J、Wu J、Szkop KJ、Jeong J、Jovanovic P、Husmann D、Flores NM、Francis JW
第一作者单位
Department of Biology, Stanford University, Stanford, CA, USA.United States
通讯作者单位
Department of Experimental Radiation Oncology, The University of Texas MD Anderson Cancer Center, Houston, TX, USA. pkmazur@mdanderson.org.United States
文献类型
美国 NIH 资助研究
期刊
Nature2024 Aug
原文标识
PubMed 39048817 · DOI 10.1038/s41586-024-07718-0