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SOX2 is not only a pioneer transcription factor with critical roles in stem cell function and cell reprogramming but also a potent oncogene for a multitude of squamous cancers. How SOX2 exerts a potent oncogenic activity in squamous lineage is largely unknown. Here we uncovered SOX2 a p...

2025-08-07 | MTBLS7120 | MetaboLights

Multiple myeloma (MM) remains an incurable hematologic malignancy despite advances in treatment. While obesity is a well-established risk factor, the underlying metabolic mechanisms by which adipocytes contribute to disease progression remain elusive. Here, we uncover a critical m...

2026-05-07 | MTBLS14445 | MetaboLights
The identity and developmental potential of a human cell is specified by its epigenome that is largely defined by patterns of chromatin modifications including histone acetylation. Here we report high-resolution genome-wide mapping of diacetylation of histone H3 at Lys 9 and Lys 14 in resting and ac...
ORGANISM(S): Homo sapiens 
Genetic control of yeast chromatin acetylation epi-polymorphisms
ORGANISM(S): Saccharomyces cerevisiae 
H3K9 acetylation was enriched in pluripotency genes in hESCs and in neural genes in neural progenitor cells Examination of H3K9 acetylation distributions in hESCs and neural progenitor cells
ORGANISM(S): Homo sapiens 
We use ChIP-seq to discover the genome-wide sites of acetylation of lysine 56 of the histone H3 (H3K56), which is a target of three histone modifying enzymes with known roles in diabetes and insulin resistance, in human adipocytes derived from mesenchymal stem cells. Surprisingly, we find that a ver...
ORGANISM(S): Homo sapiens 
Fig. S1D: An in-vitro assay that identified the acetylation sites on recombinant TULP3 with the addition of recombinant human p300.
ORGANISM(S): Homo Sapiens (ncbitaxon:9606) 
2020-10-20 | MSV000086340 | MassIVE
Fig. 2B: Semi-quantitative acetylation level on TULP3 in the presence of either empty pcDNA 3.1(+), Myc-p300, FLAG-PCAF or FLAG-GCN5 following immunoprecipitation.
ORGANISM(S): Homo Sapiens (ncbitaxon:9606) 
2020-10-22 | MSV000086358 | MassIVE
Differences in global levels of histone acetylation occur in normal and cancer cells, although the reason cells regulate these levels has remained unclear. Here we demonstrate a role for histone acetylation in regulating intracellular pH (pHi). As pHi decreases, histones are globally deacetylated by...
ORGANISM(S): Homo sapiens 
The recognition of modified histones by “reader” proteins constitutes a key mechanism regulating gene expression in the chromatin context. Compared with the great variety of readers for histone methylation, few protein modules that recognize histone acetylation are known. Here we show that the evolu...
ORGANISM(S): Homo sapiens 
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