Epigenetic engineering: histone H3K9 acetylation is compatible with kinetochore structure and function

Author:

Bergmann Jan H.1,Jakubsche Julia N.1,Martins Nuno M.1,Kagansky Alexander1,Nakano Megumi2,Kimura Hiroshi3,Kelly David A.1,Turner Bryan M.4,Masumoto Hiroshi2,Larionov Vladimir5,Earnshaw William C.1

Affiliation:

1. Wellcome Trust Centre for Cell Biology, University of Edinburgh, King's Building, Mayfield Road, Edinburgh, EH9 3JR, UK

2. Laboratory of Cell Engineering, Department of Human Genome Research, Kazusa DNA Research Institute, 2-6-7 Kazusa-Kamatari, Kisarazu, Chiba 292-0818, Japan

3. Graduate School of Frontier Biosciences, Osaka University, 1-3 Yamadaoka, Suita, Osaka 565-0871, Japan

4. Chromatin and Gene Expression Group, College of Medical and Dental Sciences, University of Birmingham, Birmingham, B15 2TT, UK

5. Laboratory of Molecular Pharmacology, National Cancer Institute, National Institutes of Health, Bldg 37, Room 5040, 9000 Rockville Pike, Bethesda, MD 20892, USA

Abstract

Human kinetochores are transcriptionally active, producing very low levels of transcripts of the underlying alpha-satellite DNA. However, it is not known whether kinetochores can tolerate acetylated chromatin and the levels of transcription that are characteristic of housekeeping genes, or whether kinetochore-associated ‘centrochromatin’, despite being transcribed at a low level, is essentially a form of repressive chromatin. Here, we have engineered two types of acetylated chromatin within the centromere of a synthetic human artificial chromosome. Tethering a minimal NF-κB p65 activation domain within kinetochore-associated chromatin produced chromatin with high levels of histone H3 acetylated on lysine 9 (H3K9ac) and an ~10-fold elevation in transcript levels, but had no substantial effect on kinetochore assembly or function. By contrast, tethering the herpes virus VP16 activation domain produced similar modifications in the chromatin but resulted in an ~150-fold elevation in transcripts, approaching the level of transcription of an endogenous housekeeping gene. This rapidly inactivated kinetochores, causing a loss of assembled CENP-A and blocking further CENP-A assembly. Our data reveal that functional centromeres in vivo show a remarkable plasticity – kinetochores tolerate profound changes to their chromatin environment, but appear to be critically sensitive to the level of centromeric transcription.

Publisher

The Company of Biologists

Subject

Cell Biology

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