Wnt/Fgf crosstalk is required for the specification of basal cells in the mouse trachea
DEVELOPMENT
Authors: Hou, Zhili; Wu, Qi; Sun, Xin; Chen, Huaiyong; Li, Yu; Zhang, Yongchun; Mori, Munemasa; Yang, Ying; Que, Jianwen; Jiang, Ming
Abstract
Basal progenitor cells are crucial for the establishment and maintenance of the tracheal epithelium. However, it remains unclear how these progenitor cells are specified during foregut development. Here, we found that ablation of the Wnt chaperone protein Gpr177 (also known as Wntless) in mouse tracheal epithelium causes a significant reduction in the number of basal progenitor cells accompanied by cartilage loss in Shh-Cre; Gpr177(loxp/loxp) mutants. Consistent with the association between cartilage and basal cell development, Nkx2.1(+) p63(+) basal cells are co-present with cartilage nodules in Shh-Cre; Ctnnb1(DM/loxp) mutants, which maintain partial cellcell adhesion but not the transcription regulation function of beta-catenin. More importantly, deletion of Ctnnb1 in the mesenchyme leads to the loss of basal cells and cartilage, concomitant with reduced transcript levels of Fgf10 in Dermo1-Cre; Ctnnb1loxp/loxp mutants. Furthermore, deletion of Fgf receptor 2 (Fgfr2) in the epithelium also leads to significantly reduced numbers of basal cells, supporting the importance of Wnt/Fgf crosstalk in early tracheal development.
A cancer rainbow mouse for visualizing the functional genomics of oncogenic clonal expansion
NATURE COMMUNICATIONS
Authors: Boone, Peter G.; Rochelle, Lauren K.; Ginzel, Joshua D.; Lubkov, Veronica; Roberts, Wendy L.; Nicholls, P. J.; Bock, Cheryl; Flowers, Mei Lang; von Furstenberg, Richard J.; Stripp, Barry R.; Agarwal, Pankaj; Borowsky, Alexander D.; Cardiff, Robert D.; Barak, Larry S.; Caron, Marc G.; Lyerly, H. Kim; Snyder, Joshua C.
Abstract
Field cancerization is a premalignant process marked by clones of oncogenic mutations spreading through the epithelium. The timescales of intestinal field cancerization can be variable and the mechanisms driving the rapid spread of oncogenic clones are unknown. Here we use a Cancer rainbow (Crainbow) modelling system for fluorescently barcoding somatic mutations and directly visualizing the clonal expansion and spread of oncogenes. Crainbow shows that mutations of beta-catenin (Ctnnb1) within the intestinal stem cell results in wide-spread expansion of oncogenes during perinatal development but not in adults. In contrast, mutations that extrinsically disrupt the stem cell microenvironment can spread in adult intestine without delay. We observe the rapid spread of premalignant clones in Crainbow mice expressing oncogenic Rspondin-3 (RSPO3), which occurs by increasing crypt fission and inhibiting crypt fixation. Crainbow modelling provides insight into how somatic mutations rapidly spread and a plausible mechanism for predetermining the intratumor heterogeneity found in colon cancers.