LBPO.MCB02 · 分子与细胞生物学 · Late-Breaking
超越突变的癌症:营养获取的发育程序影响YAP驱动肝癌的致癌胜任性
Cancer beyond mutations: Developmental programs of nutrient acquisition influence oncogenic competence in YAP-driven liver cancer
该海报暂无可下载的资料
AACR 官方页面
作者与单位 Authors & Affiliations
摘要 Abstract
中文摘要
癌症长期以来被视为由致癌突变累积所引起的遗传疾病。然而,新兴证据强调了“致癌胜任性”的作用,即致癌突变的致瘤潜能由特定的非遗传性细胞和环境背景所决定。此外,许多肿瘤表现出“癌胚重编程”,重新激活胚胎发育所特有的细胞状态。尽管人们日益认识到它们在癌症生物学中的重要性,但致癌胜任性和癌胚重编程背后的分子机制仍知之甚少。肝癌是研究致癌胜任性的一个引人注目的模型,因为对组织学正常肝活检的基因组测序揭示了包括致癌突变在内的高突变负荷。
为研究发育程序在肝脏致癌胜任性中的作用,我们采用了一种重现临床特征的新型斑马鱼肝癌模型(p53KO; TO:YAP)。我们的模型将p53功能缺失突变与肝细胞特异性、多西环素诱导表达的癌基因YAP相结合。利用这一条件性肝癌模型,我们发现发育年龄决定致癌胜任性。具体而言,在胚胎发生的卵黄营养(依赖卵黄的营养)阶段早期诱导YAP导致显著的肿瘤形成,而在发育的外源营养(外部摄食)阶段较晚诱导YAP则无致瘤效应。卵黄囊切除研究揭示,当在卵黄营养阶段诱导YAP时,卵黄来源的脂质是肿瘤形成所必需的。同样地,在外源营养阶段补充富含脂质的饮食足以赋予致癌胜任性。为鉴定肝细胞在卵黄营养和外源营养发育阶段发生的新生转录变化,我们在致癌胜任和难治两种状态下进行了无偏倚的SLAM-IT-seq。我们发现脂质代谢在卵黄营养向外源营养转变期间被重编程,且致癌胜任性与涉及细胞可塑性增加的背景相关。最后,我们进行了以脂质代谢为重点的化学筛选,并鉴定出PCSK9驱动的胆固醇摄取强烈促成了所观察到的致癌胜任性差异。
总之,这些研究揭示了营养获取的发育程序对致癌胜任性和肿瘤起始具有主导性影响。重要的是,这些研究强调,胆固醇代谢的重编程是致癌胜任性的一个关键屏障,而该屏障在肿瘤起始过程中被克服。
查看英文原文 English abstract
Cancer has long been regarded as a genetic disease arising from the accumulation of oncogenic mutations. However, emerging evidence emphasizes the role of ‘oncogenic competence', whereby the tumorigenic potential of oncogenic mutations is determined by specific non-genetic cellular and environmental contexts. Furthermore, many tumors exhibit ‘oncofetal reprogramming', reactivating cell states characteristic of embryonic development. Despite growing recognition of their significance in cancer biology, the molecular mechanisms underlying oncogenic competence and oncofetal reprogramming are still poorly understood. Liver cancer represents a compelling model to study oncogenic competence, as genomic sequencing of histologically normal liver biopsies have revealed a high mutational burden that includes oncogenic mutations.
To examine the role of developmental programs in hepatic oncogenic competence, we have employed a novel zebrafish model of liver cancer (p53KO; TO:YAP) that recapitulates clinical features. Our model combines a loss-of-function mutation in p53 with a hepatocyte-specific doxycycline-inducible expression of the oncogene YAP. Using this conditional model of liver cancer, we have found that developmental age determines oncogenic competence. Specifically, early induction of YAP at lecithotrophic (yolk-dependent nutrition) stages of embryogenesis led to profound tumor formation, whereas later induction of YAP at exotrophic (external feeding) stages of development had no tumorigenic effect. Yolk sac resection studies revealed that yolk-derived lipids were required for tumor formation when YAP was induced during the lecithotrophic stage. Similarly, supplementation of a lipid-rich diet during the exotrophic stages was sufficient to imbue oncogenic competence. To identify the nascent transcriptional changes occurring in hepatocytes during lecithotrophic and exotrophic stages of development, we performed unbiased SLAM-IT-seq in both oncogenic competent and refractory states. We found that lipid metabolism is reprogrammed during the lecithotrophic to exotrophic transition, and that oncogenic competence is associated with contexts involving increased cell plasticity. Finally, we performed a lipid metabolism-focused chemical screen and identified that PCSK9-driven cholesterol uptake strongly contributes to the observed differences in oncogenic competence.
Together, these studies reveal that developmental programs of nutrient acquisition have a dominant influence on oncogenic competence and tumor initiation. Importantly, these studies highlight that the reprogramming of cholesterol metabolism is a key barrier to oncogenic competence that is overcome during tumor initiation.
利益披露 Disclosure
M. M. K. Wong, None..
K. F. Harvey, None..
K. K. Brown, None..
A. G. Cox, None.