Porphyromonas gingivalis promotes progression of esophageal squamous cell cancer via TGFβ-dependent Smad/YAP/TAZ signaling.
Yi-Jun QiYe-Lin JiaoPan ChenJin-Yu KongBian-Li GuKe LiuDan-Dan FengYa-Fei ZhuHao-Jie RuanZi-Jun LanQi-Wei LiuYou-Jia MiXiang-Qian GuoMing WangGao-Feng LiangRichard J LamontHuizhi WangFu-You ZhouXiao-Shan FengShe-Gan GaoPublished in: PLoS biology (2020)
Microbial dysbiosis in the upper digestive tract is linked to an increased risk of esophageal squamous cell carcinoma (ESCC). Overabundance of Porphyromonas gingivalis is associated with shorter survival of ESCC patients. We investigated the molecular mechanisms driving aggressive progression of ESCC by P. gingivalis. Intracellular invasion of P. gingivalis potentiated proliferation, migration, invasion, and metastasis abilities of ESCC cells via transforming growth factor-β (TGFβ)-dependent Drosophila mothers against decapentaplegic homologs (Smads)/Yes-associated protein (YAP)/Transcriptional coactivator with PDZ-binding motif (TAZ) activation. Smads/YAP/TAZ/TEA domain transcription factor1 (TEAD1) complex formation was essential to initiate downstream target gene expression, inducing an epithelial-mesenchymal transition (EMT) and stemness features. Furthermore, P. gingivalis augmented secretion and bioactivity of TGFβ through glycoprotein A repetitions predominant (GARP) up-regulation. Accordingly, disruption of either the GARP/TGFβ axis or its activated Smads/YAP/TAZ complex abrogated the tumor-promoting role of P. gingivalis. P. gingivalis signature genes based on its activated effector molecules can efficiently distinguish ESCC patients into low- and high-risk groups. Targeting P. gingivalis or its activated effectors may provide novel insights into clinical management of ESCC.
Keyphrases
- transforming growth factor
- epithelial mesenchymal transition
- gene expression
- signaling pathway
- end stage renal disease
- transcription factor
- squamous cell
- ejection fraction
- newly diagnosed
- stem cells
- prognostic factors
- peritoneal dialysis
- induced apoptosis
- immune response
- patient reported outcomes
- squamous cell carcinoma
- dendritic cells
- drug delivery
- microbial community
- oxidative stress
- young adults
- reactive oxygen species
- cell death
- single molecule
- pi k akt