Scp160 deletion suppresses TDP-43 aggregation and toxicity in Saccharomyces cerevisiae
Authors:Joan Castells-Ballestera and Natalia Shcherbik
doi: 10.15698/mic2026.10.888
Volume 13, pp. 358 to 377, published 06/10/2026.
Department of Cell and Molecular Biology, Rowan-Virtua University, School of Osteopathic Medicine, 2 Medical Center Drive, Stratford, NJ 08084, USA.
Keywords:
TDP-43, Scp160/Vigilin, Bfr1, protein aggregation, proteostasis, proteotoxicity, endoplasmic reticulum, Saccharomyces cerevisiae
Corresponding Author(s):
Conflict of interest statement:
The authors declare no conflicts of interest.
Please cite this article as:
Joan Castells-Balleste, Natalia Shcherbik (2026). Scp160 deletion suppresses TDP-43 aggregation and toxicity in Saccharomyces cerevisiae. Microbial Cell 13: 358-377. doi: 10.15698/mic2026.10.888
© 2026 Castells-Ballester and Shcherbik. This is an open-access article released under the terms of the Creative Commons Attribution (CC BY) license, which allows the unrestricted use, distribution, and reproduction in any medium, provided the original author and source are acknowledged.
Abstract:
Protein misfolding and aberrant protein aggregation are central features of neurodegenerative disorders, including amyotrophic lateral sclerosis, where the RNA-binding protein TDP-43 accumulates in abnormal intracellular assemblies. Although yeast models have identified multiple modifiers of TDP-43 toxicity, the cellular factors that determine how aggregation-prone proteins are organized remain incompletely understood. Here, we investigated whether the ribosome- and mRNPassociated proteins Scp160 and Bfr1 influence TDP-43 proteotoxicity and aggregate formation. We report that deletion of SCP160 or BFR1 improves growth during TDP43-GFP induction without reducing steadystate reporter abundance and decreases formation of prominent TDP43- GFP foci. Deletion of BFR1 produced an intermediate TDP-43 phenotype, with a weaker effect than SCP160 deletion on severe foci formation and toxicity. Importantly, the effect of SCP160 or BFR1 deletion on visible protein aggregation was not specific to TDP-43: severe Htt103Q-GFP aggregation was strongly reduced, and formation of VHL-GFP foci was suppressed, including under conditions of proteasome inhibition. Despite these shared effects, the two mutants were not phenotypically identical. Deletion of SCP160 produced a distinct spatial phenotype in which residual TDP43-GFP foci showed markedly increased association with Sec63- positive ER structures and reduced distance to these regions, whereas bfr1_ cells did not show the same Sec63-associated shift. Together, these findings uncouple TDP43-GFP abundance from toxicity and prominent foci formation and identify Scp160 and Bfr1 as factors that influence the intracellular partitioning of aggregation-prone and misfolded proteins, with an additional role for Scp160 in the spatial organization of TDP43 relative to the ER.