SLC25A3 exports mitochondrial copper to metalate cytochrome <i>c</i> oxidase and prevent cuproptosis

M Mohammad Zulkifli (Department of Biochemistry and Biophysics, MS 3474, Texas A&M University) I Ifrah Farid (Department of Biochemistry and Biophysics, MS 3474, Texas A&M University) L Laura E. Oldfather (Department of Biological Sciences, Auburn University) V Vinit C. Shanbhag (Departments of Biochemistry and Ophthalmology, Bond Life Sciences Center, University of Missouri) S Scot C. Leary (Department of Biochemistry, Microbiology and Immunology, University of Saskatchewan) M Michael J. Petris (Departments of Biochemistry and Ophthalmology, Bond Life Sciences Center, University of Missouri) P Paul A. Cobine (Department of Biological Sciences, Auburn University) V Vishal M. Gohil (Interdisiplinary program in Genetics and Genomics, College of Agriculture and Life Sciences, Texas A&M University)

Abstract

Copper (Cu) is an essential cofactor for cytochrome c oxidase (CcO), a mitochondrial respiratory chain enzyme that is metalated in the intermembrane space (IMS) primarily using Cu derived from the mitochondrial matrix pool. While Cu import into the matrix depends on the inner membrane carrier SLC25A3, the route by which matrix Cu is exported to the IMS for insertion into CcO has remained a major, unresolved step in intramitochondrial Cu trafficking. Here, we leveraged our recent discovery that the Cu ionophore elesclomol (ES) releases Cu directly into the mitochondrial matrix to show that SLC25A3 is required for exporting Cu to the IMS for CcO metalation. Loss of SLC25A3 decreases mitochondrial Cu content and CcO activity as expected. Strikingly, bypassing the loss of SLC25A3 with ES-mediated Cu delivery to the matrix fails to restore CcO function; rather, it drives toxic Cu retention and triggers cuproptosis, revealing that SLC25A3-facilitated Cu export is the limiting determinant of CcO metalation. Heterologous expression in Lactococcus lactis confirms that SLC25A3 can mediate Cu export. These results suggest that SLC25A3 is the long-sought mitochondrial Cu exporter with a dual role in enabling CcO metalation and gating susceptibility to cuproptosis.

Article Details

Volume / Issue Vol. 123, Issue 25
Published June 23, 2026
ISSN 0027-8424
Publisher National Academy of Sciences

Authors (8)

M

Mohammad Zulkifli

Department of Biochemistry and Biophysics, MS 3474, Texas A&M University

I

Ifrah Farid

Department of Biochemistry and Biophysics, MS 3474, Texas A&M University

L

Laura E. Oldfather

Department of Biological Sciences, Auburn University

V

Vinit C. Shanbhag

Departments of Biochemistry and Ophthalmology, Bond Life Sciences Center, University of Missouri

S

Scot C. Leary

Department of Biochemistry, Microbiology and Immunology, University of Saskatchewan

M

Michael J. Petris

Departments of Biochemistry and Ophthalmology, Bond Life Sciences Center, University of Missouri

P

Paul A. Cobine

Department of Biological Sciences, Auburn University

V

Vishal M. Gohil

Interdisiplinary program in Genetics and Genomics, College of Agriculture and Life Sciences, Texas A&M University