Loss of Ufsp1 does not cause major changes at the neuromuscular junction

C Cristofer Calvo (Division of Molecular Cardiovascular Biology, Cincinnati Children’s Hospital) C Coalesco Smith T Taejeong Song F Fabian Montecino-Morales (Division of Molecular Cardiovascular Biology, Cincinnati Children’s Hospital) S Sakthivel Sadayappan D Douglas P. Millay (Division of Molecular Cardiovascular Biology, Cincinnati Children’s Hospital) M Minchul Kim

Abstract

UFMylation is a Ubiquitin-like post-translational modification involved in myriad of cellular processes. Enzymes involved in this pathway, including ligases and UFM1-specific proteases, are essential for development and homeostasis. Our previous transcriptomic analyses identified an enrichment of Ufsp1 at the neuromuscular junction of skeletal muscle cells. Ufsp1, one of the two UFM1 proteases, had been considered a pseudogene due to truncation of its catalytic domain in several species, including humans. However, recent findings revealed that Ufsp1 is translated from a non-canonical start codon in humans, yielding a catalytically active enzyme. This discovery has revived interest in studying Ufsp1’s role in vivo. We generated two mutant mouse models, one with a point mutation abolishing catalytic activity and another with complete knockout of the gene. Unlike other UFMylation pathway enzymes, both Ufsp1 mutants were born in normal ratios and did not exhibit gross phenotypic abnormalities. Despite the enrichment of Ufsp1 at neuromuscular junctions, only mild structural alterations of this synapse were detected, which did not impact overall muscle function. Our findings indicate that Ufsp1 is dispensable for normal development and homeostasis in mice, but further exploration of its function is needed in pathological conditions.

Article Details

Journal PLoS ONE
Volume / Issue Vol. 20, Issue 8
Published August 01, 2025
Pages e0328690
ISSN 1932-6203
Publisher Public Library of Science

Journal Info

PLoS ONE

Public Library of Science

ISSN: 1932-6203 Open Access Health Sciences

Authors (7)

C

Cristofer Calvo

Division of Molecular Cardiovascular Biology, Cincinnati Children’s Hospital

C

Coalesco Smith

T

Taejeong Song

F

Fabian Montecino-Morales

Division of Molecular Cardiovascular Biology, Cincinnati Children’s Hospital

S

Sakthivel Sadayappan

D

Douglas P. Millay

Division of Molecular Cardiovascular Biology, Cincinnati Children’s Hospital

M

Minchul Kim