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Updated: Oct 3, 2025

Aip1p Dynamics Are Altered by the R256H Mutation in Actin
Published on: July 30, 2014
Loss-of-function variants within LMOD1 actin-binding site 2 cause pediatric intestinal pseudo-obstruction by
Keqiang Liu1,2,3, Lina Lu1, Shanshan Chen1
1Division of Pediatric Gastroenterology and Nutrition, Xinhua Hospital, Shanghai Jiao Tong University School of Medicine, Shanghai, China.
Insights
Mutations in the LMOD1 gene cause visceral myopathy, including pediatric intestinal pseudo-obstruction (PIPO). This study identifies new LMOD1 variants and clarifies their damaging effects on actin nucleation and protein stability.
Area of Science:
- Genetics
- Molecular Biology
- Cell Biology
Background:
- The leiomodin1 (LMOD1) gene is a potential cause of megacystis-microcolon-intestinal hypoperistalsis syndrome (MMIHS).
- The exact mechanism by which LMOD1 mutations cause disease is unknown, with limited cases reported.
Observation:
- A male infant with LMOD1 mutations presented with pediatric intestinal pseudo-obstruction (PIPO) but lacked MMIHS features.
- Two compound heterozygous missense variants (p.T369M and p.R421H) were identified in the actin-binding site 2 (ABS2) domain of LMOD1.
- Both variants led to reduced LMOD1 protein levels, with p.T369M being nearly undetectable, suggesting proteasome-independent degradation pathways.
Findings:
- Molecular modeling revealed that p.T369M disrupts the ABS2 domain conformation, while p.R421H impairs actin interaction.
- Both identified LMOD1 variants significantly impaired actin nucleation, a critical function of the protein.
- The study highlights the importance of the ABS2 domain for both LMOD1 function and protein stability.
Implications:
- These findings provide further genetic evidence linking LMOD1 mutations to visceral myopathies like PIPO and MMIHS.
- The study underscores the crucial role of the ABS2 domain in LMOD1's actin nucleation activity.
- This research reveals a previously unrecognized function of the ABS2 domain in maintaining LMOD1 protein stability.
Abstract:
The leiomodin1 (LMOD1) gene, encoding a potent actin nucleator, was recently reported as a potential pathogenic gene of megacystis-microcolon-intestinal hypoperistalsis syndrome (MMIHS, OMIM 619362). However, only a single patient has been reported to have LMOD1 mutations, and the underlying pathogenic mechanism remains unknown. Here, we described a male infant with LMOD1 mutations presenting typical symptoms of pediatric intestinal pseudo-obstruction (PIPO) but without megacystis and microcolon. Two compound heterozygous missense variants (c.1106C>T, p.T369M; c.1262G>A, p.R421H) were identified, both affecting highly conserved amino acid residues within the second actin-binding site (ABS2) domain of LMOD1. Expression analysis showed that both variants resulted in significantly reduced protein amounts, especially for p.T369M, which was almost undetectable. The reduction was only partially rescued by the proteasome inhibitor MG-132, indicating that there might be proteasome-independent pathways involved in the degradation of the mutant proteins. Molecular modeling showed that variant p.T369M impaired the local protein conformation of the ABS2 domain, while variant p.R421H directly impaired the intermolecular interaction between ABS2 and actin. Accordingly, both variants significantly damaged LMOD1-mediated actin nucleation. These findings provide further human genetic evidence supporting LMOD1 as a pathogenic gene underlying visceral myopathy including PIPO and MMIHS, strengthen the critical role of ABS2 domain in LMOD1-mediated actin nucleation, and moreover, reveal an unrecognized role of ABS2 in protein stability.
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