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Ringkjobing Jensen, M.

Publications and source records attributed to Ringkjobing Jensen, M..

2 recordsLinked to original sources

ECT2 peptide sequences outside the YTH domain regulate its m6A-RNA binding

The m6A epitranscriptomic mark is the most abundant and widespread internal RNA chemical modification, which through the control of RNA acts as an important actor of eukaryote reproduction, growth, morphogenesis and stress response. The main m6A readers constitute a super family of proteins with hundreds of members that share a so-called YTH RNA binding domain. The majority of YTH proteins carry no obvious additional domain except for an Intrinsically Disordered Region (IDR). In Arabidopsis thaliana IDRs are important for the functional specialization among the different YTH proteins, known as Evolutionarily Conserved C-Terminal region, ECT 1 to 12. Here by studying the ECT2 protein and using an in vitro biochemical characterization, we show that full length ECT2 and its YTH domain alone have a distinct ability to bind m6A, conversely to previously characterized YTH readers. We identify peptide regions outside of ECT2 YTH domain, in the N-terminal IDR, that regulate its binding to m6A-methylated RNA. Furthermore, we show that the selectivity of ECT2 binding for m6A is enhanced by a high uridine content within its neighboring sequence, where ECT2 N-terminal IDR is believed to contact the target RNA in vivo. Finally, we also identify small structural elements, located next to ECT2 YTH domain and conserved in a large set of YTH proteins, that enhance its binding to m6A-methylated RNA. We propose from these findings that some of these regulatory regions are not limited to ECT2 or YTH readers of the flowering plants but may be widespread among the eukaryotic YTH readers.

biochemistry↗

A previously-unrecognized motif of transcription factor RYBP, hotspot of cancer-related mutations, is essential for the integrity of Polycomb repressive complex 1

Polycomb repressive complex 1 (PRC1) catalyzes monoubiquitination of histone H2A on Lys119, promoting gene silencing. Cells at different developmental stages and in different tissues express different PRC1 isoforms. All isoforms share the same catalytic core (subunits RING1B and PCGF) and vary in the composition of regulatory subunits, clustering in two major classes. Canonical isoforms (cPRC1) are regulated by CBX-like subunits, while variant isoforms (vPRC1) are regulated by RYBP-like subunits. The molecular bases for how regulatory subunits affect the structural assembly of the complex and its catalytic activity are still largely unknown. To fill this knowledge gap, here we have specifically studied how RYBP regulates vPRC1 structure and function. Integrating the machine-learning algorithm AlphaFold2 and NMR, we have identified novel vPRC1 structural motifs in RING1B and RYBP. While the new RING1B motif is dispensable for vPRC1 assembly, the RYBP motif is essential for mediating inter-subunit interactions between RYBP and the catalytic RING1B-PCGF4 heterodimer. Importantly, the RYBP motif harbors cancer-related mutations systematically positioned on the same face of a putative transiently-forming -helix. Biochemical, biophysical and enzymatic characterization of purified cancer-related mutants confirm that this region is crucial for the structural stability of the complex. Overall, our data offer novel insights into the molecular architecture of vPRC1 and the effects of its regulatory subunit on the biochemical, structural, enzymatic, and physio-pathological properties of the complex.

biochemistry↗