Liver X receptor unlinks intestinal regeneration and tumorigenesis

生物 肝X受体 癌变 细胞生物学 再生(生物学) CYP27A1 肠上皮 癌症研究 下调和上调 癌症 转录因子 上皮 核受体 基因 遗传学
作者
Srustidhar Das,Sara Martina Parigi,Xinxin Luo,Jennifer Fransson,Bianca C. Kern,Ali Okhovat,Oscar E. Diaz,Chiara Sorini,Paulo Czarnewski,Anna Webb,Rodrigo A. Morales,Sacha Lebon,Gustavo Monasterio,Francisca Castillo,Kumar Parijat Tripathi,He Ning,Penelope Pelczar,Nicola Schaltenberg,Marjorie De la Fuente,Francisco López-Köstner
出处
期刊:Nature [Nature Portfolio]
被引量:4
标识
DOI:10.1038/s41586-024-08247-6
摘要

Abstract Uncontrolled regeneration leads to neoplastic transformation 1–3 . The intestinal epithelium requires precise regulation during continuous homeostatic and damage-induced tissue renewal to prevent neoplastic transformation, suggesting that pathways unlinking tumour growth from regenerative processes must exist. Here, by mining RNA-sequencing datasets from two intestinal damage models 4,5 and using pharmacological, transcriptomics and genetic tools, we identified liver X receptor (LXR) pathway activation as a tissue adaptation to damage that reciprocally regulates intestinal regeneration and tumorigenesis. Using single-cell RNA sequencing, intestinal organoids, and gain- and loss-of-function experiments, we demonstrate that LXR activation in intestinal epithelial cells induces amphiregulin ( Areg ), enhancing regenerative responses. This response is coordinated by the LXR-ligand-producing enzyme CYP27A1, which was upregulated in damaged intestinal crypt niches. Deletion of Cyp27a1 impaired intestinal regeneration, which was rescued by exogenous LXR agonists. Notably, in tumour models, Cyp27a1 deficiency led to increased tumour growth, whereas LXR activation elicited anti-tumour responses dependent on adaptive immunity. Consistently, human colorectal cancer specimens exhibited reduced levels of CYP27A1 , LXR target genes, and B and CD8 T cell gene signatures. We therefore identify an epithelial adaptation mechanism to damage, whereby LXR functions as a rheostat, promoting tissue repair while limiting tumorigenesis.
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