Department of Ophthalmology, Shanghai Key Laboratory of Orbital Diseases and Ocular Oncology, Shanghai Ninth People's Hospital, Shanghai Jiao Tong University School of Medicine, Shanghai 200011, People's Republic of China.
Nucleic Acids Res. 2024 Mar 21;52(5):2273-2289. doi: 10.1093/nar/gkad1193.
Albeit N1-Methyladenosine (m1A) RNA modification represents an important regulator of RNA metabolism, the role of m1A modification in carcinogenesis remains enigmatic. Herein, we found that histone lactylation enhances ALKBH3 expression and simultaneously attenuates the formation of tumor-suppressive promyelocytic leukemia protein (PML) condensates by removing the m1A methylation of SP100A, promoting the malignant transformation of cancers. First, ALKBH3 is specifically upregulated in high-risk ocular melanoma due to excessive histone lactylation levels, referring to m1A hypomethylation status. Moreover, the multiomics analysis subsequently identified that SP100A, a core component for PML bodies, serves as a downstream candidate target for ALKBH3. Therapeutically, the silencing of ALKBH3 exhibits efficient therapeutic efficacy in melanoma both in vitro and in vivo, which could be reversed by the depletion of SP100A. Mechanistically, we found that YTHDF1 is responsible for recognition of the m1A methylated SP100A transcript, which increases its RNA stability and translational efficacy. Conclusively, we initially demonstrated that m1A modification is necessary for tumor suppressor gene expression, expanding the current understandings of dynamic m1A function during tumor progression. In addition, our results indicate that lactylation-driven ALKBH3 is essential for the formation of PML nuclear condensates, which bridges our knowledge of m1A modification, metabolic reprogramming, and phase-separation events.
尽管 N1-甲基腺苷(m1A)RNA 修饰是 RNA 代谢的重要调节剂,但 m1A 修饰在癌症发生中的作用仍然是个谜。在此,我们发现组蛋白乳酰化增强了 ALKBH3 的表达,并通过去除 SP100A 的 m1A 甲基化来同时减弱抑癌蛋白早幼粒细胞白血病蛋白(PML)凝聚物的形成,促进癌症的恶性转化。首先,由于组蛋白乳酰化水平过高,ALKBH3 在高危眼黑色素瘤中特异性上调,提示 m1A 低甲基化状态。此外,多组学分析随后确定 SP100A,作为 PML 体的核心组成部分,是 ALKBH3 的下游候选靶标。在治疗上,ALKBH3 的沉默在体外和体内均对黑色素瘤具有有效的治疗效果,而 SP100A 的耗竭可逆转这种效果。从机制上讲,我们发现 YTHDF1 负责识别 m1A 甲基化的 SP100A 转录本,从而增加其 RNA 稳定性和翻译效率。总之,我们首次证明 m1A 修饰对于肿瘤抑制基因表达是必要的,这扩展了我们对肿瘤进展过程中动态 m1A 功能的现有认识。此外,我们的结果表明,由乳酰化驱动的 ALKBH3 对于 PML 核凝聚物的形成是必不可少的,这将我们对 m1A 修饰、代谢重编程和相分离事件的认识联系起来。