Search bioRxiv⌕ Search

Biology subjects

de Krijger, I.

Publications and source records attributed to de Krijger, I..

2 recordsLinked to original sources

SET1/MLL complexes control transcription independently of H3K4me3

Histone H3 lysine 4 trimethylation (H3K4me3) at gene promoters is thought to play a central role in gene transcription. H3K4 methylation is deposited by the SET1 (A/B) and MLL (1-4) multi-protein complexes, but discovering how these essential enzymes shape H3K4me3 has been extremely challenging due to their multiplicity. This has also made determining whether SET1/MLL complexes control transcription through H3K4me3, or non-catalytic activities, an impenetrable problem. Here, we overcome these challenges through leveraging genome-engineering and combinatorial SET1/MLL protein depletion, integrated with genomics, proteomics, and live-cell transcription imaging. We uncover a new SET1B complex and reveal that SET1 and MLL1/2 complexes synergise to define H3K4me3 at gene regulatory elements. Unexpectedly, by decoupling SET1/MLL complex occupancy at promoters from H3K4me3, we discover they primarily control transcription independently of H3K4me3 through counteracting promoter-proximal termination and supporting transcription burst size. These discoveries reveal a new H3K4me3-independent logic for SET1/MLL-dependent control of gene transcription.

genomics↗

Protein landscape of the chromatin states in the malaria parasite Plasmodium falciparum

Epigenetic regulation is essential for development and adaptation across eukaryotes. However, a comprehensive overview of the molecular framework of chromatin-mediated regulation, particularly in non-model organisms, is lacking. Here, we present a systematic proteomic characterization of the chromatin states in P. falciparum, an ancient human pathogen with unique genome composition and epigenetic blueprint. We adapted and systematically employed three proximity-labelling approaches to provide a high-confidence and comprehensive proteome of heterochromatin, euchromatin and (peri)centromeric chromatin comprised of 214 proteins, including both expected and new chromatin components. Characterization of 20 proteins validated our approach and i) uncovered a protein influencing parasite transmission, ii) defined complexes relevant for histone variant exchange and chromatin-RNA interactions and iii) provided evidence for the so far believed to be absent spindle assembly checkpoint and the corresponding Bub1-like kinase. This study hence offers a reference proteome of the chromatin states and a resource to uncover novel chromatin biology.

cell biology↗