PO.MCB09.06 · 分子与细胞生物学
遗传背景塑造甲状腺癌进展背后的线粒体代谢适应
Genetic background shapes mitochondrial metabolic adaptations underlying thyroid cancer progression
作者与单位 Authors & Affiliations
摘要 Abstract
中文摘要
引言:未分化型甲状腺癌(ATC)以快速进展和不明确的扩散机制为特征。肿瘤演化不仅仅由作用于预先存在的亚克隆的选择压力所定义,还与快速的、环境介导的适应性表型获得错综复杂地交织在一起。代谢可塑性是位于这些互补演化范式交叉点的关键过程,积极推动恶性进展并赋予转移能力。阐明代谢重塑如何促进高侵袭性ATC克隆的出现和扩增,对于对抗甲状腺癌(TC)进展至关重要。
实验流程:我们利用人胚胎干细胞和CRISPR/Cas9基因组工程建立了TC肿瘤发生模型,生成携带特定突变的不同TC祖细胞。我们开发了高侵袭性的体外TC细胞,以鉴定与细胞侵袭性相关的代谢特征。这些数据在原位TC小鼠模型中得到证实,该模型重现了疾病进展。通过测量耗氧率(OCR)、细胞外酸化率(ECAR)表征代谢谱。分析RNA-seq数据以获得与特定遗传背景相关的转录组和代谢相关特征。用MitoQ处理细胞,在原发肿瘤生长和转移扩散方面评估治疗效果。
新的未发表数据:我们观察到BRAF V600E单/双突变细胞根据其代谢谱聚类,并在超侵袭性亚群的选择过程中经历相似的代谢转变。BRAF V600E突变的ATC来源侵袭性克隆经历向氧化磷酸化(OXPHOS)的重编程。ATC超氧化物克隆表现出线粒体呼吸增强、线粒体膜电位升高和线粒体活性氧积累,与其增强的侵袭能力一致。利用这种代谢依赖性揭示了一个治疗机会:用线粒体靶向抗氧化剂MitoQ处理在体外显著降低了细胞侵袭性,并在体内小鼠模型中抑制了肺转移的形成。这种明确的代谢脆弱性提供了一个独特的特征,可能有助于对相关甲状腺癌患者亚群进行分层。
结论:我们的研究表明,线粒体代谢重塑并非ATC的普遍特征,而是由肿瘤的遗传背景严格决定的。这些发现强调了遗传背景与代谢适应之间的关键相互作用,为开发旨在药理学上遏制BRAF V600E突变ATC转移进展的靶向治疗策略提供了一个精细的框架。
查看英文原文 English abstract
Introduction: Anaplastic Thyroid Cancer (ATC) is characterized by rapid progression and unclear dissemination mechanisms. Tumor evolution is not solely defined by the selective pressure acting on pre-existing subclones, but is intricately intertwined with the rapid, environmentally mediated acquisition of adaptive phenotypes. Metabolic plasticity is a critical process that lies at the intersection of these complementary evolutionary paradigms, actively fueling malignant progression and conferring metastatic competence. Elucidating how metabolic rewiring contributes to the emergence and expansion of highly invasive ATC clones is critical to counteract TC progression
Experimental procedures: We established a TC tumorigenesis model by leveraging human embryonic stem cells and CRISPR/Cas9 genome engineering to generate distinct TC progenitor cells, harbouring specific mutations. We developed highly invasive in vitro TC cells to identify the metabolic signatures linked to cellular aggressiveness. The data were corroborated in orthotopic TC mouse models, which recapitulated the disease progression. The metabolic profile was characterized by measuring oxygen consumption rate (OCR), extracellular acidification rate (ECAR). RNA-seq data were analyzed to obtain transcriptomic and metabolism-related signatures associated with specific genetic background. Cells were treated with MitoQ, Treatment effects were assessed on primary tumor growth and metastatic dissemination.
New, unpublished data: We observed that BRAF V600E single/double-mutated cells cluster based on their metabolic profile and undergo a similar metabolic shift during the selection of super-invasive subpopulations. BRAFV600E-mutated ATC-derived aggressive clones experience a reprogramming toward oxidative phosphorylation (OXPHOS). ATC superoxide clones exhibit heightened mitochondrial respiration, increased mitochondrial membrane potential, and accumulation of mitochondrial reactive oxygen species, in line with their enhanced invasive capacity. Leveraging this metabolic dependency uncovered a therapeutic opportunity: treatment with the mitochondria-targeted antioxidant MitoQ significantly reduced cellular invasiveness in vitro and suppressed lung metastasis formation in vivo in mouse models. This defined metabolic vulnerability provides a distinct signature that may aid in stratifying relevant thyroid cancer patient subsets.
Conclusions: Our study demonstrates that mitochondrial metabolic rewiring is not a universal feature of ATC but is instead tightly dictated by the tumor's genetic background. These findings underscore the critical interplay between genetic context and metabolic adaptation, providing a refined framework for developing targeted therapeutic strategies aimed at pharmacologically restraining the metastatic progression of BRAFV600E-mutated ATC
利益披露 Disclosure
V. Pantina, None..
C. Modica, None..
F. Verona, None..
G. Bozzari, None..
R. Drago, None..
C. D'accardo, None..
G. Porcelli, None..
S. Di Bella, None..
R. Brancato, None..
M. Todaro, None..
G. Stassi, None.