The lactate sensor NDRG3 decelerates ER-to-Golgi transport through interaction with the long isoform of syntaxin-5

P Pia E. Ferle (Faculty of Chemistry, Biochemistry III (BCIII), University of Bielefeld) N Niklas Krause (Faculty of Chemistry, Biochemistry III (BCIII), University of Bielefeld) J Judith Koliwer (Faculty of Chemistry, Biochemistry III (BCIII), University of Bielefeld) J Jörn Michael Völker (Faculty of Chemistry, Biochemistry III (BCIII), University of Bielefeld) F Fabia Becker (Faculty of Chemistry, Biochemistry III (BCIII), University of Bielefeld) A Alexander Hillebrand (Faculty of Chemistry, Biochemistry III (BCIII), University of Bielefeld) L Leonie F. Schröder (Faculty of Chemistry, Biochemistry III (BCIII), University of Bielefeld) S Stefanie Jäger (Medical School Hamburg, University of Applied Sciences and Medical University) S Seby Edassery (Department of Neurology, Feinberg School of Medicine, Northwestern University) D Dali Liu (Department of Chemistry and Biochemistry) N Nevan J. Krogan J Jeffrey N. Savas (Department of Neurology, Feinberg School of Medicine, Northwestern University) G Gabriele Fischer von Mollard (Faculty of Chemistry, Biochemistry III (BCIII), University of Bielefeld) M Michael Schwake (Faculty of Chemistry, Biochemistry III (BCIII), University of Bielefeld)

Abstract

BET1, GOSR2, and STX5 variants can cause fatal inherited diseases, including epilepsies, muscular dystrophy, and multisystemic disorders. Together with Sec22b, they form a SNARE complex that mediates fusion of ER-derived vesicles with the ER-Golgi-intermediate compartment and the cis -Golgi. The Sec1/Munc18 protein SCFD1/Sly1 accelerates ER-to-Golgi SNARE complex assembly and membrane fusion, but much less is known about downregulation of ER-to-Golgi trafficking under cellular stress conditions. Here, we identify the lactate and hypoxia sensor protein NDRG3 as a binding partner of the ER-to-Golgi SNARE complex. NDRG3 binds via its C-terminal domain to the N-terminal domain of the long isoform of Stx5, thereby impairing ER-to-Golgi trafficking under hypoxic conditions and elevated intracellular lactate levels. In NDRG3-deficient cells, hypoxia- and lactate-induced inhibition of ER-to-Golgi trafficking is abolished. Our work identifies NDRG3 as a negative regulator of ER-to-Golgi SNARE complex function, mechanistically linking hypoxia and lactate to membrane trafficking in the secretory pathway.

Article Details

Volume / Issue Vol. 122, Issue 47
Published November 25, 2025
ISSN 0027-8424
Publisher National Academy of Sciences

Authors (14)

P

Pia E. Ferle

Faculty of Chemistry, Biochemistry III (BCIII), University of Bielefeld

N

Niklas Krause

Faculty of Chemistry, Biochemistry III (BCIII), University of Bielefeld

J

Judith Koliwer

Faculty of Chemistry, Biochemistry III (BCIII), University of Bielefeld

J

Jörn Michael Völker

Faculty of Chemistry, Biochemistry III (BCIII), University of Bielefeld

F

Fabia Becker

Faculty of Chemistry, Biochemistry III (BCIII), University of Bielefeld

A

Alexander Hillebrand

Faculty of Chemistry, Biochemistry III (BCIII), University of Bielefeld

L

Leonie F. Schröder

Faculty of Chemistry, Biochemistry III (BCIII), University of Bielefeld

S

Stefanie Jäger

Medical School Hamburg, University of Applied Sciences and Medical University

S

Seby Edassery

Department of Neurology, Feinberg School of Medicine, Northwestern University

D

Dali Liu

Department of Chemistry and Biochemistry

N

Nevan J. Krogan

J

Jeffrey N. Savas

Department of Neurology, Feinberg School of Medicine, Northwestern University

G

Gabriele Fischer von Mollard

Faculty of Chemistry, Biochemistry III (BCIII), University of Bielefeld

M

Michael Schwake

Faculty of Chemistry, Biochemistry III (BCIII), University of Bielefeld