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.

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