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- Igarashi, KazuhikoRemove Igarashi, Kazuhiko filter
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Gene Regulation
2 Results
- Cell BiologyOpen Access
Ferroptosis is controlled by the coordinated transcriptional regulation of glutathione and labile iron metabolism by the transcription factor BACH1
Journal of Biological ChemistryVol. 295Issue 1p69–82Published online: November 18, 2019- Hironari Nishizawa
- Mitsuyo Matsumoto
- Tomohiko Shindo
- Daisuke Saigusa
- Hiroki Kato
- Katsushi Suzuki
- and others
Cited in Scopus: 83Ferroptosis is an iron-dependent programmed cell death event, whose regulation and physiological significance remain to be elucidated. Analyzing transcriptional responses of mouse embryonic fibroblasts exposed to the ferroptosis inducer erastin, here we found that a set of genes related to oxidative stress protection is induced upon ferroptosis. We considered that up-regulation of these genes attenuates ferroptosis induction and found that the transcription factor BTB domain and CNC homolog 1 (BACH1), a regulator in heme and iron metabolism, promotes ferroptosis by repressing the transcription of a subset of the erastin-induced protective genes. - Genomics and ProteomicsOpen Access
Regulatory signatures of liver regeneration distilled by integrative analysis of mRNA, histone methylation, and proteomics
Journal of Biological ChemistryVol. 292Issue 19p8019–8037Published online: March 16, 2017- Yoshihiro Sato
- Yasutake Katoh
- Mitsuyo Matsumoto
- Masaki Sato
- Masayuki Ebina
- Ari Itoh-Nakadai
- and others
Cited in Scopus: 12The capacity of the liver to regenerate is likely to be encoded as a plasticity of molecular networks within the liver. By applying a combination of comprehensive analyses of the epigenome, transcriptome, and proteome, we herein depict the molecular landscape of liver regeneration. We demonstrated that histone H3 Lys-4 was trimethylated at the promoter regions of many loci, among which only a fraction, including cell-cycle-related genes, were transcriptionally up-regulated. A cistrome analysis guided by the histone methylation patterns and the transcriptome identified FOXM1 as the key transcription factor promoting liver regeneration, which was confirmed in vitro using a hepatocarcinoma cell line.