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1.
Epigenetics Chromatin ; 5: 7, 2012 Jun 21.
Article in English | MEDLINE | ID: mdl-22650316

ABSTRACT

Histone variants are non-allelic protein isoforms that play key roles in diversifying chromatin structure. The known number of such variants has greatly increased in recent years, but the lack of naming conventions for them has led to a variety of naming styles, multiple synonyms and misleading homographs that obscure variant relationships and complicate database searches. We propose here a unified nomenclature for variants of all five classes of histones that uses consistent but flexible naming conventions to produce names that are informative and readily searchable. The nomenclature builds on historical usage and incorporates phylogenetic relationships, which are strong predictors of structure and function. A key feature is the consistent use of punctuation to represent phylogenetic divergence, making explicit the relationships among variant subtypes that have previously been implicit or unclear. We recommend that by default new histone variants be named with organism-specific paralog-number suffixes that lack phylogenetic implication, while letter suffixes be reserved for structurally distinct clades of variants. For clarity and searchability, we encourage the use of descriptors that are separate from the phylogeny-based variant name to indicate developmental and other properties of variants that may be independent of structure.

2.
Genes Dev ; 26(8): 797-802, 2012 Apr 15.
Article in English | MEDLINE | ID: mdl-22465951

ABSTRACT

The linker histone H1 is a key player in chromatin organization, yet our understanding of the regulation of H1 functions by post-translational modifications is very limited. We provide here the first functional characterization of H1 acetylation. We show that H1.4K34 acetylation (H1.4K34ac) is mediated by GCN5 and is preferentially enriched at promoters of active genes, where it stimulates transcription by increasing H1 mobility and recruiting a general transcription factor. H1.4K34ac is dynamic during spermatogenesis and marks undifferentiated cells such as induced pluripotent stem (iPS) cells and testicular germ cell tumors. We propose a model for H1.4K34ac as a novel regulator of chromatin function with a dual role in transcriptional activation.


Subject(s)
Histones/metabolism , Lysine/metabolism , Transcriptional Activation , p300-CBP Transcription Factors/metabolism , Acetylation , Amino Acid Sequence , Cell Cycle/genetics , Gene Expression Regulation, Neoplastic , Histone Acetyltransferases , Histones/genetics , Humans , Lysine/genetics , Male , Molecular Sequence Data , Pluripotent Stem Cells/metabolism , Promoter Regions, Genetic , Seminoma/genetics , Seminoma/metabolism , Spermatogenesis/genetics , TATA-Binding Protein Associated Factors/metabolism , Testicular Neoplasms/genetics , Testicular Neoplasms/metabolism , Transcription Factor TFIID/metabolism , Transcription Initiation Site , Up-Regulation
3.
Genes Cancer ; 2(6): 631-47, 2011 Jun.
Article in English | MEDLINE | ID: mdl-21941619

ABSTRACT

Covalent modifications of histones can regulate all DNA-dependent processes. In the last few years, it has become more and more evident that histone modifications are key players in the regulation of chromatin states and dynamics as well as in gene expression. Therefore, histone modifications and the enzymatic machineries that set them are crucial regulators that can control cellular proliferation, differentiation, plasticity, and malignancy processes. This review discusses the biology and biochemistry of covalent histone posttranslational modifications (PTMs) and evaluates the dual role of their modifiers in cancer: as oncogenes that can initiate and amplify tumorigenesis or as tumor suppressors.

4.
Epigenetics Chromatin ; 4: 11, 2011 Jul 20.
Article in English | MEDLINE | ID: mdl-21774791

ABSTRACT

BACKGROUND: Covalent histone modifications are central to all DNA-dependent processes. Modifications of histones H3 and H4 are becoming well characterised, but knowledge of how H2A modifications regulate chromatin dynamics and gene expression is still very limited. RESULTS: To understand the function of H2A modifications, we performed a systematic analysis of the histone H2A methylation status. We identified and functionally characterised two new methylation sites in H2A: R11 (H2AR11) and R29 (H2AR29). Using an unbiased biochemical approach in combination with candidate assays we showed that protein arginine methyltransferase (PRMT) 1 and PRMT6 are unique in their ability to catalyse these modifications. Importantly we found that H2AR29me2 is specifically enriched at genes repressed by PRMT6, implicating H2AR29me2 in transcriptional repression. CONCLUSIONS: Our data establishes R11 and R29 as new arginine methylation sites in H2A. We identified the specific modifying enzymes involved, and uncovered a novel functional role of H2AR29me2 in gene silencing in vivo. Thus this work reveals novel insights into the function of H2A methylation and in the mechanisms of PRMT6-mediated transcriptional repression.

5.
Chem Biol ; 16(10): 1027-9, 2009 Oct 30.
Article in English | MEDLINE | ID: mdl-19875076

ABSTRACT

In the recent issue of Molecular Cell, Neumann et al. dissect the effect of H3K56 acetylation on chromatin structure using a novel method for generation of acetylated proteins. This is a valuable addition to the toolkit for those interested in unraveling how posttranslational modifications regulate protein function.


Subject(s)
Histones/metabolism , Acetylation , Chromatin/chemistry , Chromatin/metabolism , Histone Deacetylases/metabolism , Protein Processing, Post-Translational
6.
Biol Chem ; 389(4): 333-43, 2008 Apr.
Article in English | MEDLINE | ID: mdl-18208346

ABSTRACT

The linker histone H1 binds to the DNA entering and exiting the nucleosomal core particle and has an important role in establishing and maintaining higher order chromatin structures. H1 forms a complex family of related proteins with distinct species, tissue and developmental specificity. In higher eukaryotes all H1 variants have the same general structure, consisting of a central conserved globular domain and less conserved N-terminal and C-terminal tails. These tails are moderately conserved among species, but differ among variants, suggesting a specific function for each H1 variant. Due to compensatory mechanisms and to the lack of proper tools, it has been very difficult to study the biological role of individual variants in chromatin-mediated processes. Our knowledge about H1 variants is indeed limited, and in vitro and in vivo observations have often been contradictory. Therefore, H1 variants were considered to be functionally redundant. However, recent knockout studies and biochemical analyses in different organisms have revealed exciting new insights into the specificity and mechanisms of actions of the H1 family members. Here, we collect and compare the available literature about H1 variants and discuss possible specific roles that challenge the concept of H1 being a mere structural component of chromatin and a general repressor of transcription.


Subject(s)
Chromatin/metabolism , Histones/metabolism , Nucleosomes/metabolism , Animals , Chromatin/genetics , Histones/chemistry , Histones/genetics , Humans , Models, Biological , Nucleosomes/genetics , Protein Binding , Transcription, Genetic
7.
Neuron ; 54(3): 461-77, 2007 May 03.
Article in English | MEDLINE | ID: mdl-17481398

ABSTRACT

Via its extracellular N-terminal domain (NTD), the AMPA receptor subunit GluR2 promotes the formation and growth of dendritic spines in cultured hippocampal neurons. Here we show that the first N-terminal 92 amino acids of the extracellular domain are necessary and sufficient for GluR2's spine-promoting activity. Moreover, overexpression of this extracellular domain increases the frequency of miniature excitatory postsynaptic currents (mEPSCs). Biochemically, the NTD of GluR2 can interact directly with the cell adhesion molecule N-cadherin, in cis or in trans. N-cadherin-coated beads recruit GluR2 on the surface of hippocampal neurons, and N-cadherin immobilization decreases GluR2 lateral diffusion on the neuronal surface. RNAi knockdown of N-cadherin prevents the enhancing effect of GluR2 on spine morphogenesis and mEPSC frequency. Our data indicate that in hippocampal neurons N-cadherin and GluR2 form a synaptic complex that stimulates presynaptic development and function as well as promoting dendritic spine formation.


Subject(s)
Cadherins/metabolism , Extracellular Space/metabolism , Receptors, AMPA/metabolism , Spine/metabolism , Animals , Cells, Cultured , Embryo, Mammalian , Excitatory Postsynaptic Potentials/physiology , Green Fluorescent Proteins/metabolism , Hippocampus/cytology , Mutation , Nerve Tissue Proteins/metabolism , Neurons/ultrastructure , Patch-Clamp Techniques/methods , Protein Structure, Tertiary/physiology , Protein Transport/drug effects , Protein Transport/physiology , RNA Interference/physiology , Rats , Transfection/methods
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