Structural basis of the catalytic and allosteric mechanism of bacterial acetyltransferase PatZ

J Jun Bae Park (School of Biological Sciences, Seoul National University) G Gwanwoo Lee (School of Biological Sciences, Seoul National University) Y Yu-Yeon Han (School of Biological Sciences, Seoul National University) D Dongwook Kim (Center for Catalytic Hydrocarbon Functionalizations) K Kyoo Heo (School of Biological Sciences, Seoul National University) J Jeesoo Kim (School of Biological Sciences, Seoul National University) J Juhee Park (School of Biological Sciences, Seoul National University) H Hyosuk Yun (Department of Chemistry, Chonnam National University) C Chul Won Lee (Department of Chemistry, Chonnam National University) H Hyun-Soo Cho (Department of Systems Biology, College of Life Science and Biotechnology, Yonsei University) J Jong-Seo Kim (School of Biological Sciences) M Martin Steinegger (School of Biological Sciences, Seoul National University) Y Yeong-Jae Seok (School of Biological Sciences, Seoul National University) S Soung-Hun Roh

Abstract

GCN5-related N -acetyltransferases (GNATs) are essential for regulating bacterial metabolism by acetylating specific target proteins. Despite their importance in bacterial physiology, the mechanisms behind their enzymatic and regulatory functions remain poorly understood. In this study, we investigated the structures of Escherichia coli protein acetyltransferase Z (PatZ), a Type I GNAT, and examined its ligand interactions, catalytic mechanism, and allosteric regulation. PatZ functions as a homotetramer, with each subunit comprising a catalytic and a regulatory domain. Our results demonstrate that the regulatory domain is vital for acetyltransferase activity, as it triggers cooperative conformational changes in the catalytic domain and directly aids in the formation of substrate-binding pockets. Additionally, a protein structure-based evolutionary analysis of bacterial GNAT types revealed a distinct regulatory domain pattern across phyla, highlighting its crucial role in responding to cellular energy levels.

Article Details

Volume / Issue Vol. 122, Issue 24
Published June 17, 2025
ISSN 0027-8424
Publisher National Academy of Sciences

Authors (14)

J

Jun Bae Park

School of Biological Sciences, Seoul National University

G

Gwanwoo Lee

School of Biological Sciences, Seoul National University

Y

Yu-Yeon Han

School of Biological Sciences, Seoul National University

D

Dongwook Kim

Center for Catalytic Hydrocarbon Functionalizations

K

Kyoo Heo

School of Biological Sciences, Seoul National University

J

Jeesoo Kim

School of Biological Sciences, Seoul National University

J

Juhee Park

School of Biological Sciences, Seoul National University

H

Hyosuk Yun

Department of Chemistry, Chonnam National University

C

Chul Won Lee

Department of Chemistry, Chonnam National University

H

Hyun-Soo Cho

Department of Systems Biology, College of Life Science and Biotechnology, Yonsei University

J

Jong-Seo Kim

School of Biological Sciences

M

Martin Steinegger

School of Biological Sciences, Seoul National University

Y

Yeong-Jae Seok

School of Biological Sciences, Seoul National University

S

Soung-Hun Roh