萎缩性胃炎
机制(生物学)
致癌物
胃炎
癌症研究
转化(遗传学)
恶性转化
肿瘤转化
医学
胃
内科学
胃肠病学
病理
癌症
化学
癌变
基因
生物化学
哲学
认识论
作者
Tomoyasu Yoshihiro,Toshihiro Yamaguchi,Hiroshi Ariyama,Sakuya Koreishi,Koki Uehara,Hirofumi Ohmura,Mamoru Ito,Kenji TSUCHIHASHI,Taichi Isobe,Koji Shindo,Kenoki Ohuchida,Masafumi Nakamura,Yoshihiro Nagao,Yoshinao Oda,Koichi Akashi,Eishi Baba
标识
DOI:10.1016/j.bbadis.2025.167843
摘要
BACKGROUND: Helicobacter pylori infection and subsequent atrophic gastritis (AG) and intestinal metaplasia (IM) are regarded as precursor conditions for gastric cancer (GC). Though diverse mechanisms of carcinogenesis from AG and IM have been clarified using mouse models, few studies using human models have been reported. Here, we describe in vitro modeling of IM, as well as in vivo modeling of the oncogenic transformation from AG using human gastric organoids. METHODS: Organoids derived from patients with AG were established and characterized by immunohistochemistry and in situ hybridization. Niche factor withdrawal and genetic engineering using CRISPR/Cas9 were conducted for modeling IM, and manipulated organoids were xenografted subcutaneously in mice to establish a GC model. RESULTS: AG organoids (AGOs) were maintained by Wnt niche factors; withdrawal of these factors led to differentiation toward foveolar cells. Knockout of Runt-related transcription factor 3 (RUNX3), or activation of bone morphogenetic protein (BMP) signaling, resulted in accumulation of the key IM markers caudal-type homeobox 2 (CDX2) and mucin 2 (MUC2) in AGOs; disruption of SMAD4 counteracted the induction of these markers. Organoids doubly deficient for TP53 and SMAD4 formed larger and more proliferative p21 -negative subcutaneous tumors than did RUNX3-deficient organoids, suggesting that induction of a senescent state is a key barrier in stepwise carcinogenesis from AG. CONCLUSIONS: Wnt signaling is essential for homeostasis of AG, and SMAD4-dependent activation of BMP signaling promotes intestinal differentiation. Combined disruption of TP53 and SMAD4 confers tumorigenic potential to AGOs by inhibiting p21 induction.
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