Skip to content
Open access

Hyperactive intestinal proteolysis underlies smn-1 mutant phenotypes

Aug 2026 · bioRxiv · 0 citations · 70 references
Biology

TL;DR

How the ubiquitously-expressed SMN-1 protein is required in a single tissue to avoid degenerative defects caused by hyperactive proteasome activity is revealed, contributing to the understanding of how mutations in ubiquitously-expressed genes can cause highly cell-specific pathologies.

Abstract

Many neurological diseases are caused by mutations in broadly-expressed genes, but the basis for their neuron-specific manifestation is unclear. In Spinal Muscular Atrophy (SMA), loss of the ubiquitously-expressed spliceosome assembly factor SMN1 causes selective degeneration of motor neurons, leading to progressive neuromuscular decline. We explored the mechanisms of this cell-specific vulnerability using SMA models in the nematode C. elegans, which likewise exhibit progressive neuromuscular defects upon loss of smn-1. Surprisingly, our results show that the intestine – not neurons or muscle – is the selectively-vulnerable tissue causing smn-1 phenotypes. RNA-Seq reveals that loss of intestinal smn-1 causes specific global splicing defects, accompanied by robust transcriptional activation of the Intracellular Pathogen Response (IPR), a stress pathway enriched for ubiquitin-proteostasis genes. Consistent with this, smn-1 mutants exhibit elevated levels of proteasome activity. Pharmacological proteasome inhibition rescues many of the smn-1 mutant defects, as does deletion of specific components of the IPR pathway. These results reveal how the ubiquitously-expressed SMN-1 protein is required in a single tissue to avoid degenerative defects caused by hyperactive proteasome activity, contributing to our understanding of how mutations in ubiquitously-expressed genes can cause highly cell-specific pathologies. SIGNIFICANCE STATEMENT Many ubiquitously expressed genes cause highly selective neurodegenerative diseases, such as Huntington’s disease and Amyotrophic Lateral Sclerosis. The basis for this cell-specific vulnerability remains unclear. We address this question for smn-1 in C. elegans. We show that smn-1 is indeed required in a cell-specific manner, but unexpectedly not in neurons, but rather in the intestine. Both survival defects and behavioral phenotypes originate from intestinal loss of smn-1. We show that these defects are caused by hyperactive protein degradation and immune responses, and that mutant defects can be resolved by reducing these proteostasis and immune pathways using genetics or pharmacology. These results shed light on how a single tissue/cell can dictate the effects of a systemic genetic disease.

Read PDF

Similar papers

Open access Sep 2026

Pharmacological Activation of Autophagy Ameliorates Neuromuscular-Associated Defects and Extends Lifespan in a Caenorhabditis elegans Model of Spinal Muscular Atrophy

Spinal muscular atrophy (SMA) is a severe neuromuscular disorder caused by homozygous deletions or mutations in the SMN1 gene, resulting in reduced levels of the ubiquitously expressed survival motor neuron protein and progressive degeneration of lower motor neurons. Although autophagy dysregulation has been implicated...

Saman Rashid, Coral Crespo Gómez, Maria Dimitriadi · 0 citations
Open access Sep 2026

Cardiomyocyte vulnerability to lamin polymer disruption revealed by saturation mutagenesis

Hundreds of mutations to the broadly expressed LMNA gene cause disease primarily within cardiac, muscular, and adipose tissues1. Tissue-specific pathogenesis arises when mutant protein dysfunction collides with the unique demands of a specific cell type. Here, we decipher the cell-type-specific consequences of ∼15,000...

Jessica Mella, Abigail E. Hein, Navraj Lally et al. · 0 citations
Sep 2026

Tmlhe deficiency induces neurodevelopmental dysfunction and synaptic excitatory/inhibitory imbalance linked to autism-like phenotypes in zebrafish.

Mutations in TMLHE, the initial enzyme for carnitine biosynthesis, are linked to autism spectrum disorder (ASD). However, the molecular mechanisms by which TMLHE defects contribute to neurodevelopmental abnormalities remain elusive. This study aimed to elucidate the role of tmlhe deficiency in vertebrate neural develop...

Ji-Tong Li, Xiao-Tong Zhao, Jie-Ru Wei et al. · 0 citations
Open access Sep 2026

Proteasome inhibition alleviates proteinuria in Lmx1b knock-in mice with dysfunctional LIM domains

Mutations in the transcription factor LMX1B have been identified as the cause of the autosomal-dominant disease nail-patella syndrome. It manifests in small or absent patellae and dysplastic or missing toe- and fingernails, but the prognosis of the patients is determined by the development of renal symptoms due to dysf...

Joshua Hermens, Lisa Lucke, O. Pieles et al. · 0 citations
Open access Sep 2026

Loss of RUBCN causes autophagy overdrive in a neurodevelopmental disorder with age-dependent neurodegeneration

The RUBCN-related disorders are established and expand as a clinically and molecularly distinct subset of autophagy-related diseases and enhances understanding of autophagy-related neurodevelopmental disorders and provides a foundation for future therapeutic investigations.

S. Efthymiou, K. Tabata, H. Dafsari et al. · 0 citations
Review Open access Aug 2026

The survival motor neuron protein: structure, functions, stability, and therapeutic targeting

The survival motor neuron (SMN) protein is an essential and highly versatile assembly factor that coordinates RNA metabolism and ribonucleoprotein (RNP) complex formation across multiple cellular compartments. Although SMN is required for the survival of virtually all cell types, its deficiency disproportionately affec...

Bradley R. Smith, Rachel Massalee, Mason Mayer et al. · 0 citations

We use cookies to run the site and, with your consent, for analytics and to show ads. See our Cookie Policy.