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CRISPR screens reveal convergent targeting strategies against evolutionarily distinct chemoresistance in cancer.

Chunge ZhongWen-Jie JiangYingjia YaoZexu LiYou LiShengnan WangXiaofeng WangWenjuan ZhuSiqi WuJing WangShuangshuang FanShixin MaYeshu LiuHan ZhangWenchang ZhaoLu ZhaoYi FengZihan LiRuifang GuoLi YuFengyun PeiJun HuXingzhi FengZi-Huan YangZhengjia YangXueying YangYue HouDanni ZhangDake XuRen ShengYihao LiLijun LiuHua-Jun WuJun HuangTeng Fei
Published in: Nature communications (2024)
Resistance to chemotherapy has been a major hurdle that limits therapeutic benefits for many types of cancer. Here we systematically identify genetic drivers underlying chemoresistance by performing 30 genome-scale CRISPR knockout screens for seven chemotherapeutic agents in multiple cancer cells. Chemoresistance genes vary between conditions primarily due to distinct genetic background and mechanism of action of drugs, manifesting heterogeneous and multiplexed routes towards chemoresistance. By focusing on oxaliplatin and irinotecan resistance in colorectal cancer, we unravel that evolutionarily distinct chemoresistance can share consensus vulnerabilities identified by 26 second-round CRISPR screens with druggable gene library. We further pinpoint PLK4 as a therapeutic target to overcome oxaliplatin resistance in various models via genetic ablation or pharmacological inhibition, highlighting a single-agent strategy to antagonize evolutionarily distinct chemoresistance. Our study not only provides resources and insights into the molecular basis of chemoresistance, but also proposes potential biomarkers and therapeutic strategies against such resistance.
Keyphrases
  • genome wide
  • dna methylation
  • copy number
  • cancer stem cells
  • papillary thyroid
  • crispr cas
  • genome editing
  • squamous cell carcinoma
  • single cell
  • transcription factor
  • radiofrequency ablation