Publication:
Variants in the proteasome regulator PSMF1 cause a phenotypic spectrum from parkinsonism to perinatal lethality

Placeholder

School / College / Institute

Organizational Unit
SCHOOL OF MEDICINE
Upper Org Unit
Organizational Unit
Organizational Unit

Program

KU Authors

Co-Authors

Magrinelli, F.
Tesson, C.
Angelova, P. R.
Rodriguez, J. A.
Scardamaglia, A.
O’Callaghan, B.
Lowe, S. A.
Salazar-Villacorta, A.
Chung, B. H.
Jaconelli, M.

Editor & Affiliation

Compiler & Affiliation

Translator

Other Contributor

Date

Language

eng

Embargo Status

N/A

Journal Title

Journal ISSN

Volume Title

Alternative Title

Abstract

Magrinelli et al. link biallelic PSMF1 variants to phenotypes from parkinsonism to perinatal lethality, implicating proteasomal and mitochondrial dysfunction. PI31 loss in fly and mouse models causes age-dependent motor deficits and neurodegeneration. Dissecting biological pathways highlighted by Mendelian gene discovery has provided critical insights into the pathogenesis of Parkinson’s disease (PD) and neurodegeneration. This approach ultimately catalyzes the identification of potential biomarkers and therapeutic targets. Here we identify PSMF1 as a gene implicated in parkinsonism and childhood neurodegeneration. We find that biallelic PSMF1 missense and loss-of-function variants co-segregate with phenotypes from early-onset PD to perinatal lethality with neurological manifestations across 18 pedigrees with 25 affected subjects, showing clear genotype-phenotype correlation. PSMF1 encodes the proteasome regulator PSMF1/hPI31, a highly conserved, ubiquitously expressed partner of the 20S proteasome and neurodegeneration-associated F-box-O 7 and valosin-containing proteins. We demonstrate that PSMF1 variants may affect proteasomal abundance and assembly, and are associated with alterations of mitochondrial membrane potential, respiration, dynamics and mitophagy in patient-derived fibroblasts. Furthermore, Drosophila and mouse models of PI31 loss of function exhibit age-dependent motor impairment, as well as brain-wide mitochondrial membrane depolarization and dopaminergic neurodegeneration in aged flies, and diffuse gliosis in mice. Collectively, our findings unequivocally link defective PSMF1/hPI31 to early-onset parkinsonism and neurodegeneration, and suggest proteasomal and mitochondrial dysfunction as pathogenic contributors.

Source

Publisher

Nature

Subject

Medicine

Citation

Has Part

Source

Nature Communications

Book Series Title

Edition

DOI

10.1038/s41467-026-71351-w

item.page.datauri

Link

Rights

N/A

Copyrights Note

Creative Commons license

Except where otherwised noted, this item's license is described as N/A

Endorsement

Review

Supplemented By

Referenced By

Related Goal

0

Views

0

Downloads

View PlumX Details