Single-molecule imaging reveals control of parental histone recycling by free histones during DNA replication

Science Advances American Association for the Advancement of Science (AAAS) 6:38 (2020) eabc0330

Authors:

DT Gruszka, S Xie, H Kimura, H Yardimci

Understanding the interplay between CpG island-associated gene promoters and H3K4 methylation

BBA - Gene Regulatory Mechanisms Elsevier 1863:8 (2020) 194567

Authors:

Amy L Hughes, Jessica R Kelley, Robert J Klose

Abstract:

The precise regulation of gene transcription is required to establish and maintain cell type-specific gene expression programs during multicellular development. In addition to transcription factors, chromatin, and its chemical modification, play a central role in regulating gene expression. In vertebrates, DNA is pervasively methylated at CG dinucleotides, a modification that is repressive to transcription. However, approximately 70% of vertebrate gene promoters are associated with DNA elements called CpG islands (CGIs) that are refractory to DNA methylation. CGIs integrate the activity of a range of chromatin-regulating factors that can post-translationally modify histones and modulate gene expression. This is exemplified by the trimethylation of histone H3 at lysine 4 (H3K4me3), which is enriched at CGI-associated gene promoters and correlates with transcriptional activity. Through studying H3K4me3 at CGIs it has become clear that CGIs shape the distribution of H3K4me3 and, in turn, H3K4me3 influences the chromatin landscape at CGIs. Here we will discuss our understanding of the emerging relationship between CGIs, H3K4me3, and gene expression.

PRC1 catalytic activity is central to Polycomb system function

Molecular Cell Elsevier (2019)

Authors:

Neil Blackledge, NA Fursova, MK Huseyin, A Feldmann, RJ Klose

Abstract:

The Polycomb repressive system is an essential chromatin-based regulator of gene expression. Despite being extensively studied, how the Polycomb system selects its target genes is poorly understood, and whether its histone-modifying activities are required for transcriptional repression remains controversial. Here, we directly test the requirement for PRC1 catalytic activity in Polycomb system function. To achieve this, we develop a conditional mutation system in embryonic stem cells that completely removes PRC1 catalytic activity. Using this system, we demonstrate that catalysis by PRC1 drives Polycomb chromatin domain formation and long-range chromatin interactions. Furthermore, we show that variant PRC1 complexes with DNA-binding activities occupy target sites independently of PRC1 catalytic activity, providing a putative mechanism for Polycomb target site selection. Finally, we discover that Polycomb-mediated gene repression requires PRC1 catalytic activity. Together these discoveries provide compelling evidence that PRC1 catalysis is central to Polycomb system function and gene regulation.

Society News

The Biochemist Portland Press 40:2 (2018) 55

Disorder drives cooperative folding in a multidomain protein

Proceedings of the National Academy of Sciences of the United States of America Proceedings of the National Academy of Sciences 113:42 (2016) 11841-11846

Authors:

Dominika T Gruszka, Carolina ATF Mendonça, Emanuele Paci, Fiona Whelan, Judith Hawkhead, Jennifer R Potts, Jane Clarke