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

K Kendra R. Vann R Rajal Sharma C Chih-Chao Hsu M Maeva Devoucoux A Adam H. Tencer L Lei Zeng K Kevin Lin L Li Zhu Q Qin Li C Catherine Lachance R Ruben Rosas Ospina Q Qiong Tong (National Center for Magnetic Resonance in Wuhan, Key Laboratory of Magnetic Resonance in Biological Systems, State Key Laboratory of Magnetic Resonance and Atomic and Molecular Physics) K Ka Lung Cheung S Shuai Yang S Soumi Biswas H Hongwen Xuan J Jovylyn Gatchalian L Lorena Alamillo J Jianlong Wang (Institute of Nuclear and New Energy Technology, Tsinghua University, Beijing 100084, China) S Suk Min Jang B Brianna J. Klein Y Yue Lu P Patricia Ernst B Brian D. Strahl S Scott B. Rothbart M Martin J. Walsh M Michael L. Cleary J Jacques Côté X Xiaobing Shi M Ming-Ming Zhou T Tatiana G. Kutateladze

Abstract

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 (ASH1LBD), a plant homeodomain (ASH1LPHD) finger, and a bromo-adjacent homology (ASH1LBAH) domain, structurally characterize these domains, describe their mechanisms of action, and explore functional crosstalk between them. We find that ASH1LPHD recognizes H3K4me2/3, whereas the neighboring ASH1LBD and ASH1LBAH have DNA binding activities. The DNA binding function of ASH1LBAH is a driving force for the association of ASH1L with the linker DNA in the nucleosome, and the large interface with ASH1LPHD stabilizes the ASH1LBAH 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 ASH1LPHD 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.

Article Details

Volume / Issue Vol. 16, Issue 1
Published March 06, 2025
ISSN 2041-1723
Publisher Nature Portfolio

Journal Info

Nature Communications

Nature Portfolio

ISSN: 2041-1723 Open Access Life Sciences

Authors (31)

K

Kendra R. Vann

R

Rajal Sharma

C

Chih-Chao Hsu

M

Maeva Devoucoux

A

Adam H. Tencer

L

Lei Zeng

K

Kevin Lin

L

Li Zhu

Q

Qin Li

C

Catherine Lachance

R

Ruben Rosas Ospina

Q

Qiong Tong

National Center for Magnetic Resonance in Wuhan, Key Laboratory of Magnetic Resonance in Biological Systems, State Key Laboratory of Magnetic Resonance and Atomic and Molecular Physics

K

Ka Lung Cheung

S

Shuai Yang

S

Soumi Biswas

H

Hongwen Xuan

J

Jovylyn Gatchalian

L

Lorena Alamillo

J

Jianlong Wang

Institute of Nuclear and New Energy Technology, Tsinghua University, Beijing 100084, China

S

Suk Min Jang

B

Brianna J. Klein

Y

Yue Lu

P

Patricia Ernst

B

Brian D. Strahl

S

Scott B. Rothbart

M

Martin J. Walsh

M

Michael L. Cleary

J

Jacques Côté

X

Xiaobing Shi

M

Ming-Ming Zhou

T

Tatiana G. Kutateladze