Protein‐Driven Copper Redox Regulation: Uncovering the Role of Disulphide Bonds and Allosteric Modulation

R Rebecca Sternke‐Hoffmann (PSI Center for Life Sciences Villigen PSI Switzerland) C Chang Liu X Xue Wang H Hegne Pupart (Department of Chemistry and Biotechnology Tallinn University of Technology Tallinn Estonia) X Xun Sun J Jan Gui‐Hyon Dreiser (PSI Center for Photon Science Villigen PSI Switzerland) P Peep Palumaa (Department of Chemistry and Biotechnology Tallinn University of Technology Tallinn Estonia) Q Qinghua Liao (Departament de Química Inorgaǹica i Orgaǹica (Seccióde Química Orgaǹica) and Institut de Química TeorÌica I Computacional, Universitat de Barcelona) M Matthias Krack (PSI Center for Scientific Computing, Theory and Data Villigen PSI Switzerland) J Jinghui Luo (Center for Life Sciences, Paul Scherrer Institute, Villigen, 5232 Villigen, Switzerland)

Abstract

ABSTRACT Copper plays essential roles in enzymatic activity, redox reactions, and cellular signalling but becomes toxic when redox homeostasis is disrupted. While Cu(II) reduction is commonly attributed to unfolded or amyloid proteins, here we show that the well‐folded plasma protein human serum albumin (HSA) intrinsically reduces Cu(II) to Cu(I) in the absence of external reductants. Using x‐ray absorption spectroscopy (XAS), small‐angle x‐ray scattering (SAXS), and circular dichroism (CD), we propose a redox mechanism involving the disulphide bond Cys392‐Cys438 in domain III of HSA. Cu binding at the high‐affinity ATCUN (amino‐terminal copper and nickel binding site) motif might trigger conformational changes that expose this disulphide bond, enabling thiol‐mediated electron transfer and Cu(I) formation. Chelation with tetrathiomolybdate (TTM) impairs this reduction by restricting access to the reactive disulphide site. Comparative analysis with other globular proteins reveals that Cu reduction requires both accessible disulphide motifs and a native folded structure. Simulations and spectroscopy of SOD1 (Superoxide Dismutase 1) confirm that disulphide cleavage enhances Cu‐thiolate interaction, supporting a generalisable two‐site redox mechanism. These findings reveal a previously unrecognised mode of protein‐mediated copper reduction and suggest broader physiological roles for disulphide‐regulated redox switching in metal homeostasis.

Article Details

Volume / Issue Vol. 65, Issue 15
Published April 06, 2026
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (10)

R

Rebecca Sternke‐Hoffmann

PSI Center for Life Sciences Villigen PSI Switzerland

C

Chang Liu

X

Xue Wang

H

Hegne Pupart

Department of Chemistry and Biotechnology Tallinn University of Technology Tallinn Estonia

X

Xun Sun

J

Jan Gui‐Hyon Dreiser

PSI Center for Photon Science Villigen PSI Switzerland

P

Peep Palumaa

Department of Chemistry and Biotechnology Tallinn University of Technology Tallinn Estonia

Q

Qinghua Liao

Departament de Química Inorgaǹica i Orgaǹica (Seccióde Química Orgaǹica) and Institut de Química TeorÌica I Computacional, Universitat de Barcelona

M

Matthias Krack

PSI Center for Scientific Computing, Theory and Data Villigen PSI Switzerland

J

Jinghui Luo

Center for Life Sciences, Paul Scherrer Institute, Villigen, 5232 Villigen, Switzerland