SOX2 驱动胎儿重编程和结直肠癌的可逆休眠

Anna Baulies, Veronica Moncho-Amor, Diana Drago-Garcia, Anna Kucharska, Probir Chakravarty, Manuel Moreno-Valladares, Sara Cruces-Salguero, Florian Hubl, Colin Hutton, Haeun Kim, Ander Matheu, Robin Lovell-Badge, Vivian S.W. Li
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摘要

细胞可塑性在组织再生、肿瘤进展和抗药性方面发挥着至关重要的作用。然而,这种细胞状态转变的内在机制仍然难以捉摸。在这里,我们发现转录因子 SOX2 可诱导结直肠癌(CRC)的胎儿重编程和可逆休眠。在人类原发性和转移性结直肠腺癌中,SOX2 的表达与胎儿重编程和不良预后相关。在小鼠 CRC 模型中,早期 Apc 缺失的小鼠肿瘤中检测到罕见的慢周期 SOX2+SCA1+ 细胞,随着时间的推移,这些细胞会发生缓慢的克隆扩增。相反,在晚期Apc-/-;KrasG12D/+;p53-/-;Tgfbr2-/-(AKPT)肿瘤中发现SOX2+克隆具有增殖性,并伴随着从LGR5+到LGR5-SCA1+细胞的动态细胞状态重编程。我们利用转基因小鼠模型证明,异位表达 SOX2 会抑制肠系分化并诱导胎儿重编程。SOX2+细胞根据其表达水平的不同而呈现动态的细胞周期状态。SOX2的高表达会导致细胞过度增殖,而低水平的SOX2则会诱导衰老介导的休眠。我们发现,p53 的缺失可以逆转 SOX2 诱导的衰老,这与晚期肿瘤中观察到的 SOX2+ 细胞退出休眠的细胞状态是一致的。最后,5-FU 治疗诱导了 CRC 中 SOX2 的表达。表达 SOX2 的器官组织对化疗的耐受性增强,而在 AKPT 肿瘤器官组织中缺失 SOX2 会使药物反应变得敏感。我们认为,SOX2诱导的可塑性和可逆休眠促进了肿瘤进展和对药物的耐受性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
SOX2 drives fetal reprogramming and reversible dormancy in colorectal cancer
Cellular plasticity plays critical roles in tissue regeneration, tumour progression and therapeutic resistance. However, the mechanism underlying this cell state transition remains elusive. Here, we show that the transcription factor SOX2 induces fetal reprogramming and reversible dormancy in colorectal cancer (CRC). SOX2 expression correlates with fetal reprogramming and poor prognosis in human primary and metastatic colorectal adenocarcinomas. In mouse CRC models, rare slow-cycling SOX2+SCA1+ cells are detected in early Apc-deleted mouse tumours that undergo slow clonal expansion over time. In contrast, the SOX2+ clones were found proliferative in advanced Apc-/-;KrasG12D/+;p53-/-;Tgfbr2-/- (AKPT) tumours, accompanied by dynamic cell state reprogramming from LGR5+ to LGR5-SCA1+ cells. Using transgenic mouse models, we demonstrate that ectopic expression of SOX2 inhibits intestinal lineage differentiation and induces fetal reprogramming. SOX2+ cells adopt dynamic cell cycle states depending on its expression level. High SOX2 expression results in hyperproliferation, whereas low SOX2 levels induce senescence-mediated dormancy. We find that loss of p53 can reverse SOX2-induced senescence, in line with the dormant cell state exit of the SOX2+ cells observed in advanced tumours. Finally, SOX2 expression is induced by 5-FU treatment in CRC. SOX2-expressing organoids exhibit increased tolerance to chemotherapy treatment, whilst deletion of SOX2 in AKPT tumour organoids sensitises drug responses. We propose that SOX2-induced plasticity and reversible dormancy promotes tumour progression and drug tolerance in CRC.
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