癌症研究
表观遗传学
小RNA
甲基转移酶
组蛋白
膀胱癌
生物
核糖核酸
化学
恶性肿瘤
基因表达调控
体内
细胞生物学
癌症
基因表达
赖氨酸
下调和上调
细胞生长
基因
信号转导
细胞培养
翻译(生物学)
肿瘤进展
组蛋白H3
体外
酶
非编码RNA
组蛋白甲基转移酶
分子生物学
癌细胞
细胞
泛素
HEK 293细胞
DNA甲基化
转录调控
作者
Xiaoling Ying,Yapeng Huang,Jian Huang,Qinyu Cai,Danni Zhang,Cong Chen,Yuxi Nie,Baotong Yang,Chuan Li,Wenyu Hu,Chang Xiong,C-Q Zhang,Ding Ji,Yaomin Liang,Mei Yang,Wenliang Wu,Weidong Ji
标识
DOI:10.1002/advs.202522294
摘要
ABSTRACT The epigenetic modification of transfer RNA (tRNA) and tRNA‐derived small RNAs (tsRNAs) is associated with the initiation and development of cancer. However, the biological role of m 5 C‐modified tsRNAs, especially in bladder cancer (BC), and their regulatory mechanisms remain unclear. Here, we identify a novel m 5 C‐modified tsRNA, m 5 C‐tRF3b‐Cys GCA ‐23 (mtRC), whose expression is significantly downregulated in both tumor tissues and urine samples of BC patients and is strongly negatively correlated with the malignant progression of bladder cancer. In vitro and in vivo functional experiments reveal that mtRC, but not its unmodified counterpart (tRC), exhibits a tumor‐suppressive role. Furthermore, NOP2/Sun RNA methyltransferase 6 (NSUN6) regulates mtRC abundance and suppresses cell proliferation. Mechanistically, mtRC directly binds the oncosuppressor protein RNA‐binding motif 4 (RBM4) and improves its stability by preventing RBM4 ubiquitination, thereby upregulating RBM4 protein levels. RBM4 reduces the levels of glycolytic genes and decreases glycolysis, thereby inhibiting histone H3 lysine 18 lactylation (H3K18la). This reduction in H3K18 lactylation attenuates the transcriptional activation of the downstream oncogenes IL1RAP and VASH2, thereby ultimately suppressing tumor malignancy in BC. Together, our results not only underscore the critical role of mtRC in BC but also unravel a novel and coherent regulatory signaling axis—mtRC/RBM4/H3K18la/IL1RAP&VASH2—that orchestrates BC malignancy, suggesting mtRC may serve as a candidate therapeutic target for BC treatment.
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