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Published on: November 27, 2019
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.
Abstract:
Pediatric acute liver failure (ALF) is life threatening with genetic, immunologic, and environmental etiologies. Approximately half of all cases remain unexplained. Recurrent ALF (RALF) in infants describes repeated episodes of severe liver injury with recovery of hepatic function between crises. We describe bi-allelic RINT1 alterations as the cause of a multisystem disorder including RALF and skeletal abnormalities. Three unrelated individuals with RALF onset ≤3 years of age have splice alterations at the same position (c.1333+1G>A or G>T) in trans with a missense (p.Ala368Thr or p.Leu370Pro) or in-frame deletion (p.Val618_Lys619del) in RINT1. ALF episodes are concomitant with fever/infection and not all individuals have complete normalization of liver function testing between episodes. Liver biopsies revealed nonspecific liver damage including fibrosis, steatosis, or mild increases in Kupffer cells. Skeletal imaging revealed abnormalities affecting the vertebrae and pelvis. Dermal fibroblasts showed splice-variant mediated skipping of exon 9 leading to an out-of-frame product and nonsense-mediated transcript decay. Fibroblasts also revealed decreased RINT1 protein, abnormal Golgi morphology, and impaired autophagic flux compared to control. RINT1 interacts with NBAS, recently implicated in RALF, and UVRAG, to facilitate Golgi-to-ER retrograde vesicle transport. During nutrient depletion or infection, Golgi-to-ER transport is suppressed and autophagy is promoted through UVRAG regulation by mTOR. Aberrant autophagy has been associated with the development of similar skeletal abnormalities and also with liver disease, suggesting that disruption of these RINT1 functions may explain the liver and skeletal findings. Clarifying the pathomechanism underlying this gene-disease relationship may inform therapeutic opportunities.
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