结直肠癌
线粒体
线粒体生物发生
癌症研究
生物发生
医学
氧化应激
癌症
生物
生物信息学
功能(生物学)
化疗
癌细胞
细胞器
细胞器生物发生
新陈代谢
抗药性
线粒体DNA
氧化磷酸化
作者
Deborah Y. Moss,Connor Brown,Andrew M. Shaw,Christopher McCann,Nikita Lewis,Matilda Downs,Rebecca Wurelly,Ciara Cunningham,Aaron Philips,Niamh Doherty,Sarah Gallagher,William J. McDaid,Andrew Roe,Aisling Y. Coughlan,Brenton Cavanagh,Callum Ormsby,Fiammetta Falcone,Rachel McCole,Scott Monteith,Emily Rogan
标识
DOI:10.1038/s42255-026-01578-w
摘要
Therapy resistance is attributed to over 80% of cancer deaths per year, emphasizing the urgent need to overcome this challenge for improved patient outcomes. Despite its widespread use in colorectal cancer (CRC) treatment, resistance to 5-fluorouracil (5FU) remains poorly understood. As an antimetabolite, 5FU imposes substantial metabolic stress, forcing cells that survive treatment to rapidly adapt. We explored acute 5FU-driven changes in mitochondria, the organelle critical for coordinating metabolic stress responses. Here we demonstrate in a range of CRC models that 5FU treatment promotes mitochondrial biogenesis and increases mitochondrial function in surviving cells. Furthermore, we show that targeting mitochondrial metabolism, particularly by inhibiting Complex I, sensitizes CRC cells to 5FU, resulting in delayed tumour growth and prolonged survival in preclinical models. Additionally, analysis of patient data suggests that oxidative metabolism signatures may predict responses to 5FU-based chemotherapy. These findings shed light on mechanisms underlying 5FU resistance and propose a rational strategy for combination therapy in CRC, emphasizing the potential clinical benefit of targeting mitochondrial metabolism to overcome resistance and enhance patient outcomes.
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