Structure-function relationship of ASH1L and histone H3K36 and H3K4 methylation.

Vann, Kendra R; Sharma, Rajal; Hsu, Chih-Chao; Devoucoux, Maeva; Tencer, Adam H; Zeng, Lei; Lin, Kevin; Zhu, Li et al. · Nat Commun · 2025

basic_science · Level V

Where this comes from

Abstract

The histone H3K36-specific methyltransferase ASH1L plays a critical role in development and is frequently dysregulated in human diseases, particularly cancer. Here, we report on the biological functions of the C-terminal region of ASH1L encompassing a bromodomain (ASH1L<sub>BD</sub>), a plant homeodomain (ASH1L<sub>PHD</sub>) finger, and a bromo-adjacent homology (ASH1L<sub>BAH</sub>) domain, structurally characterize these domains, describe their mechanisms of action, and explore functional crosstalk between them. We find that ASH1L<sub>PHD</sub> recognizes H3K4me2/3, whereas the neighboring ASH1L<sub>BD</sub> and ASH1L<sub>BAH</sub> have DNA binding activities. The DNA binding function of ASH1L<sub>BAH</sub> is a driving force for the association of ASH1L with the linker DNA in the nucleosome, and the large interface with ASH1L<sub>PHD</sub> stabilizes the ASH1L<sub>BAH</sub> fold, merging two domains into a single module. We show that ASH1L is involved in embryonic stem cell differentiation and co-localizes with H3K4me3 but not with H3K36me2 at transcription start sites of target genes and genome wide, and that the interaction of ASH1L<sub>PHD</sub> with H3K4me3 is inhibitory to the H3K36me2-specific catalytic activity of ASH1L. Our findings shed light on the mechanistic details by which the C-terminal domains of ASH1L associate with chromatin and regulate the enzymatic function of ASH1L.

Medical subject headings