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Goto, N.

Publications and source records attributed to Goto, N..

2 recordsLinked to original sources

ISWI chromatin remodeling complexes recruit NSD2 and H3K36me2 in pericentromeric heterochromatin

Histone H3 lysine36 dimethylation (H3K36me2) is generally distributed in the gene body and euchromatic intergenic regions. However, we found that H3K36me2 is enriched in pericentromeric heterochromatin in some mouse cell lines. We here revealed the mechanism of heterochromatin targeting of H3K36me2. Among several H3K36 methyltransferases, NSD2 was responsible for inducing heterochromatic H3K36me2. Depletion and overexpression analyses of NSD2-associating proteins revealed that NSD2 recruitment to heterochromatin was mediated through the imitation switch (ISWI) chromatin remodeling complexes, such as BAZ1B-SMARCA5 (WICH), which directly binds to AT-rich DNA via a BAZ1B domain containing AT-hook-like motifs. The abundance and stoichiometry of NSD2, SMARCA5, and BAZ1B or BAZ2A could determine the localization of H3K36me2 in different cell types. To explore the physiological role of heterochromatic H3K36me2, we analyzed mouse tissues and embryos. As a result, H3K36me2 was found in heterochromatin at the 2- to 4-cell stages of mouse preimplantation embryos, suggesting its involvement in developmental regulation. SummaryThe authors discovered histone H3K36me2, which is believed to be enriched in potentially active genomic regions, is also located in transcriptionally inactive regions called heterochromatin in some cell types. The detailed molecular mechanism of its heterochromatin targeting is now revealed.

cell biology↗

Lymphatics constitute a novel component of the intestinal stem cell niche

Intestinal stem cells (ISCs) depend on niche factors for their proper function. However, the source of these ISC niche factors and how they support ISCs remain controversial due to their redundant expression patterns. Here, we report that the maintenance of ISCs depends on both lymphatic endothelial cells (LECs) and Rspo3+Grem1+ fibroblasts (RGFs). We found that LECs are surrounded by RGFs and located in close proximity to Lgr5+ ISCs. RSPO3 production is restricted to LECs and RGFs and they can partially compensate for each other; however, RSPO3 loss in both of LECs and RGFs drastically compromises ISC numbers, villi length, and repair after irradiation-induced injury. Mechanistically, irradiation-induced damage expands LEC and RGF numbers and enhances the latters generation of RSPO3 through IL-1 receptor activation. We propose that LECs represent a novel component of the ISC niche, which together with RGFs, provide essential RSPO3 to sustain ISCs in homeostasis and regeneration.

cell biology↗