RINT1 Bi-allelic Variations Cause Infantile-Onset Recurrent Acute Liver Failure and Skeletal Abnormalities

Margot A Cousin1, Erin Conboy2, Jian-She Wang3

  • 1Center for Individualized Medicine, Mayo Clinic, Rochester, MN 55905, USA; Department of Health Sciences Research, Mayo Clinic, Rochester, MN 55905, USA.

Insights

Bi-allelic RINT1 alterations cause recurrent acute liver failure (ALF) and skeletal issues in infants. This genetic defect disrupts Golgi-to-ER transport and autophagy, explaining the multisystem disorder.

Area of Science:

  • Genetics
  • Pediatric Gastroenterology
  • Cell Biology

Background:

  • Pediatric acute liver failure (ALF) is a severe condition with many unexplained cases.
  • Recurrent ALF (RALF) involves repeated liver injury episodes in infants, with incomplete recovery.
  • Genetic factors are increasingly recognized in pediatric liver diseases.

Purpose of the Study:

  • To identify the genetic cause of a multisystem disorder presenting with recurrent acute liver failure and skeletal abnormalities in infants.
  • To elucidate the molecular mechanisms underlying the identified genetic defect and its impact on cellular function.

Main Methods:

  • Genetic analysis of three unrelated individuals with RALF and skeletal abnormalities.
  • Sanger sequencing and analysis of RINT1 gene splice variants and mutations.
  • Cellular studies using dermal fibroblasts to assess RINT1 protein levels, Golgi morphology, and autophagic flux.
  • Analysis of RINT1 interactions with NBAS and UVRAG in the context of vesicle transport and autophagy.

Main Results:

  • Identified bi-allelic RINT1 alterations (splice variants and missense/deletion mutations) in all three individuals.
  • Demonstrated splice-variant mediated exon skipping, leading to reduced RINT1 protein and impaired Golgi-to-ER retrograde vesicle transport.
  • Observed disrupted autophagic flux in patient-derived fibroblasts.
  • Found that RINT1 interacts with NBAS and UVRAG, proteins involved in vesicle transport and autophagy regulation.

Conclusions:

  • Bi-allelic RINT1 alterations cause a novel multisystem disorder characterized by recurrent acute liver failure and skeletal abnormalities.
  • The findings implicate impaired RINT1-mediated Golgi-to-ER transport and autophagy in the pathogenesis of this disorder.
  • Understanding this gene-disease relationship may offer insights into therapeutic strategies for pediatric liver and skeletal diseases.

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