Cyclochlorotine Hydroxylase CctR Reveals DUF3328 as a Family of Copper‐Dependent Metalloenzymes

W Wentao Huang (Department of Chemistry and Centre for Atomic Engineering of Advanced Materials, Key Laboratory of Structure and Functional Regulation of Hybrid Materials of Ministry of Education, Anhui Province Key Laboratory of Chemistry for inorganic/Organic Hybrid Functionalized Materials) J Jakob K. Reinhardt (Institute for Plant-Human Interface, Northeastern University) A Anru Tian (Whitehead Institute for Biomedical Research Cambridge MA 02142 USA) X Xiao Zhang B Binghui Li N Noah Gould (Barnett Institute of Chemical and Biological Analysis and Department of Chemistry & Chemical Biology Northeastern University Boston MA USA) S Sashirekha Nallapati (Department of Chemistry and Chemical Biology Northeastern University Boston MA 02115 USA) A Alexander R. Ivanov (Barnett Institute of Chemical and Biological Analysis and Department of Chemistry & Chemical Biology Northeastern University Boston MA USA) Y Yi Wang J Jason J. Guo (Department of Chemistry and Chemical Biology Northeastern University Boston MA 02115 USA) D David E. Budil (Department of Chemistry and Chemical Biology Northeastern University Boston MA 02115 USA) J Jing‐Ke Weng (Institute for Plant‐Human Interface Northeastern University Boston MA 02115 USA)

Abstract

Abstract DUF3328 is a protein family widely found in fungal natural product biosynthesis pathways. Although DUF3328 proteins have long been implicated in diverse modifications of inert C( sp 3 )─H bonds, including halogenation, hydroxylation, and macrocyclization, the biochemical properties and catalytic mechanisms of DUF3328 proteins remain elusive. Here, we report the characterization of the DUF3328 protein CctR, which catalyzes C( sp 3 )─H hydroxylation of fungal cyclic peptide cyclochlorotine. Through AlphaFold modeling, in vitro biochemical characterization, and spectroscopic analysis, we demonstrate that CctR is a membrane‐associated copper‐dependent enzyme that functions as a homodimer. The dimerization of CctR is mediated by its transmembrane helix, a four‐helix coiled coil, and C‐terminal disulfide bonds. The conserved HxxHC(x) n HxxHC motif, characteristic of the DUF3328 superfamily, is anchored on the dimerization interface and forms a binuclear copper coordination center. Moreover, we show that CctR is dioxygen‐dependent and requires electron input for the hydroxylation reaction. Together, these findings define DUF3328 as a previously unrecognized family of binuclear copper‐dependent metalloenzymes, capable of catalyzing diverse chemical transformations, and lay the groundwork for future discovery of novel biocatalysts within this widespread enzyme class.

Article Details

Volume / Issue Vol. 64, Issue 38
Published September 15, 2025
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (12)

W

Wentao Huang

Department of Chemistry and Centre for Atomic Engineering of Advanced Materials, Key Laboratory of Structure and Functional Regulation of Hybrid Materials of Ministry of Education, Anhui Province Key Laboratory of Chemistry for inorganic/Organic Hybrid Functionalized Materials

J

Jakob K. Reinhardt

Institute for Plant-Human Interface, Northeastern University

A

Anru Tian

Whitehead Institute for Biomedical Research Cambridge MA 02142 USA

X

Xiao Zhang

B

Binghui Li

N

Noah Gould

Barnett Institute of Chemical and Biological Analysis and Department of Chemistry & Chemical Biology Northeastern University Boston MA USA

S

Sashirekha Nallapati

Department of Chemistry and Chemical Biology Northeastern University Boston MA 02115 USA

A

Alexander R. Ivanov

Barnett Institute of Chemical and Biological Analysis and Department of Chemistry & Chemical Biology Northeastern University Boston MA USA

Y

Yi Wang

J

Jason J. Guo

Department of Chemistry and Chemical Biology Northeastern University Boston MA 02115 USA

D

David E. Budil

Department of Chemistry and Chemical Biology Northeastern University Boston MA 02115 USA

J

Jing‐Ke Weng

Institute for Plant‐Human Interface Northeastern University Boston MA 02115 USA