Methionine oxidation alters both helical assembly and disordered contacts in human TDP-43 C-terminal domain phase separation

B Busra Ozguney (Artie McFerrin Department of Chemical Engineering, Texas A&M University) R Ryan Z. Puterbaugh (Therapeutic Sciences Graduate Program, Brown University) R Renjith Viswanathan (Therapeutic Sciences Graduate Program, Brown University) J Jayakrishna Shenoy (Department of Molecular Biology, Cell Biology & Biochemistry, Brown University) P Priyesh Mohanty (Artie McFerrin Department of Chemical Engineering, Texas A&M University) J Jeetain Mittal N Nicolas L. Fawzi (Department of Molecular Biology, Cell Biology & Biochemistry, Brown University)

Abstract

TAR DNA binding protein 43 (TDP-43), a key protein linked to ALS pathology, undergoes phase separation and forms functional assemblies via condensation within cells. The conserved region (CR) within its C-terminal domain (CTD) mediates self-assembly through helix–helix interactions, while the flanking intrinsically disordered regions (IDRs) contribute to phase separation through transient interactions involving aromatic and hydrophobic residues. The CTD contains ten methionine residues distributed equally between these regions, making it particularly susceptible to oxidative modifications. While methionine oxidation is known to impair TDP-43 phase separation, neither the precise mechanism nor the specific contribution of methionines in the CR compared to the IDRs has been determined. Here, we combine NMR spectroscopy and molecular dynamics (MD) simulations to reveal if and how methionine oxidation in each region differentially affects CTD structure and phase separation. To assess the change of secondary structure caused by oxidation, we measured NMR random coil chemical shift values for methionine sulfoxide. Oxidation of CR methionines disrupts helical structure and directly impairs intermolecular helical association, while oxidation of IDR methionines disrupts long-range contacts. Hence, oxidation of methionines in both regions contributes to impaired phase separation, albeit through different mechanisms. These findings establish methionines as critical redox-sensitive modulators in TDP-43 phase behavior and provide molecular insights into how oxidative stress may contribute to TDP-43 dysregulation in neurodegenerative diseases.

Article Details

Volume / Issue Vol. 123, Issue 31
Published August 04, 2026
ISSN 0027-8424
Publisher National Academy of Sciences

Authors (7)

B

Busra Ozguney

Artie McFerrin Department of Chemical Engineering, Texas A&M University

R

Ryan Z. Puterbaugh

Therapeutic Sciences Graduate Program, Brown University

R

Renjith Viswanathan

Therapeutic Sciences Graduate Program, Brown University

J

Jayakrishna Shenoy

Department of Molecular Biology, Cell Biology & Biochemistry, Brown University

P

Priyesh Mohanty

Artie McFerrin Department of Chemical Engineering, Texas A&M University

J

Jeetain Mittal

N

Nicolas L. Fawzi

Department of Molecular Biology, Cell Biology & Biochemistry, Brown University