Bacteria pathogens drive host colonic epithelial cell promoter hypermethylation of tumor suppressor genes in colorectal cancer
MICROBIOME
Authors: Xia, Xiaoxuan; Wu, William Ka Kei; Wong, Sunny Hei; Liu, Dabin; Kwong, Thomas Ngai Yeung; Nakatsu, Geicho; Yan, Pearlly S.; Chuang, Yu-Ming; Chan, Michael Wing-Yan; Coker, Olabisi Oluwabukola; Chen, Zigui; Yeoh, Yun Kit; Zhao, Liuyang; Wang, Xiansong; Cheng, Wing Yin; Chan, Matthew Tak Vai; Chan, Paul Kay Sheung; Sung, Joseph Jao Yiu; Wang, Maggie Haitian; Yu, Jun
Abstract
Background: Altered microbiome composition and aberrant promoter hypermethylation of tumor suppressor genes (TSGs) are two important hallmarks of colorectal cancer (CRC). Here we performed concurrent 16S rRNA gene sequencing and methyl-CpG binding domain-based capture sequencing in 33 tissue biopsies (5 normal colonic mucosa tissues, 4 pairs of adenoma and adenoma-adjacent tissues, and 10 pairs of CRC and CRC-adjacent tissues) to identify significant associations between TSG promoter hypermethylation and CRC-associated bacteria, followed by functional validation of the methylation-associated bacteria. Results: Fusobacterium nucleatum and Hungatella hathewayi were identified as the top two methylation-regulating bacteria. Targeted analysis on bona fide TSGs revealed that H. hathewayi and Streptococcus spp. significantly correlated with CDX2 and MLH1 promoter hypermethylation, respectively. Mechanistic validation with cell-line and animal models revealed that F. nucleatum and H. hathewayi upregulated DNA methyltransferase. H. hathewayi inoculation also promoted colonic epithelial cell proliferation in germ-free and conventional mice. Conclusion: Our integrative analysis revealed previously unknown epigenetic regulation of TSGs in host cells through inducing DNA methyltransferase by F. nucleatum and H. hathewayi, and established the latter as CRC-promoting bacteria.
Keratins are asymmetrically inherited fate determinants in the mammalian embryo
NATURE
Authors: Lim, Hui Yi Grace; Alvarez, Yanina D.; Gasnier, Maxime; Wang, Yiming; Tetlak, Piotr; Bissiere, Stephanie; Wang, Hongmei; Biro, Mate; Plachta, Nicolas
Abstract
To implant in the uterus, the mammalian embryo first specifies two cell lineages: the pluripotent inner cell mass that forms the fetus, and the outer trophectoderm layer that forms the placenta(1). In many organisms, asymmetrically inherited fate determinants drive lineage specification(2), but this is not thought to be the case during early mammalian development. Here we show that intermediate filaments assembled by keratins function as asymmetrically inherited fate determinants in the mammalian embryo. Unlike F-actin or microtubules, keratins are the first major components of the cytoskeleton that display prominent cell-to-cell variability, triggered by heterogeneities in the BAF chromatin-remodelling complex. Live-embryo imaging shows that keratins become asymmetrically inherited by outer daughter cells during cell division, where they stabilize the cortex to promote apical polarization and YAP-dependent expression of CDX2, thereby specifying the first trophectoderm cells of the embryo. Together, our data reveal a mechanism by which cell-to-cell heterogeneities that appear before the segregation of the trophectoderm and the inner cell mass influence lineage fate, via differential keratin regulation, and identify an early function for intermediate filaments in development. Keratins are determinants of cell fate during mammalian embryogenesis, and are distributed asymmetrically between daughter cells during cell division.