The putative oncogene GASC1 demethylates tri- and dimethylated lysine 9 on histone H3
NATURE
Authors: Cloos, Paul A. C.; Christensen, Jesper; Agger, Karl; Maiolica, Alessio; Rappsilber, Juri; Antal, Torben; Hansen, Klaus H.; Helin, Kristian
Abstract
Methylation of lysine and arginine residues on histone tails affects chromatin structure and gene transcription(1-3). Tri- and dimethylation of lysine 9 on histone H3 (H3K9me3/me2) is required for the binding of the repressive protein HP1 and is associated with heterochromatin formation and transcriptional repression in a variety of species(4-6). H3K9me3 has long been regarded as a 'permanent' epigenetic mark(7,8). In a search for proteins and complexes interacting with H3K9me3, we identified the protein GASC1 ( gene amplified in squamous cell carcinoma 1)(9), which belongs to the JMJD2 ( jumonji domain containing 2) subfamily of the jumonji family, and is also known as JMJD2C(10). Here we show that three members of this subfamily of proteins demethylate H3K9me3/me2 in vitro through a hydroxylation reaction requiring iron and alpha-ketoglutarate as cofactors. Furthermore, we demonstrate that ectopic expression of GASC1 or other JMJD2 members markedly decreases H3K9me3/me2 levels, increases H3K9me1 levels, delocalizes HP1 and reduces heterochromatin in vivo. Previously, GASC1 was found to be amplified in several cell lines derived from oesophageal squamous carcinomas(9,11,12), and in agreement with a contribution of GASC1 to tumour development, inhibition of GASC1 expression decreases cell proliferation. Thus, in addition to identifying GASC1 as a histone trimethyl demethylase, we suggest a model for how this enzyme might be involved in cancer development, and propose it as a target for anti-cancer therapy.
Nascent chromatin capture proteomics determines chromatin dynamics during DNA replication and identifies unknown fork components
NATURE CELL BIOLOGY
Authors: Alabert, Constance; Bukowski-Wills, Jimi-Carlo; Lee, Sung-Bau; Kustatscher, Georg; Nakamura, Kyosuke; Alves, Flavia de Lima; Menard, Patrice; Mejlvang, Jakob; Rappsilber, Juri; Groth, Anja
Abstract
To maintain genome function and stability, DNA sequence and its organization into chromatin must be duplicated during cell division. Understanding how entire chromosomes are copied remains a major challenge. Here, we use nascent chromatin capture (NCC) to profile chromatin proteome dynamics during replication in human cells. NCC relies on biotin-dUTP labelling of replicating DNA, affinity purification and quantitative proteomics. Comparing nascent chromatin with mature post-replicative chromatin, we provide association dynamics for 3,995 proteins. The replication machinery and 485 chromatin factors such as CAF-1, DNMT1 and SUV39h1 are enriched in nascent chromatin, whereas 170 factors including histone H1, DNMT3, MBD1-3 and PRC1 show delayed association. This correlates with H4K5K12diAc removal and H3K9me1 accumulation, whereas H3K27me3 and H3K9me3 remain unchanged. Finally, we combine NCC enrichment with experimentally derived chromatin probabilities to predict a function in nascent chromatin for 93 uncharacterized proteins, and identify FAM111A as a replication factor required for PCNA loading. Together, this provides an extensive resource to understand genome and epigenome maintenance.