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Updated: Jun 6, 2025

Targeted Next-generation Sequencing and Bioinformatics Pipeline to Evaluate Genetic Determinants of Constitutional Disease
Published on: April 4, 2018
Missense variants in the TRPM7 α-kinase domain are associated with recurrent pediatric acute liver failure
Lea D Schlieben1,2, Melanie T Achleitner3, Billy Bourke4
1School of Medicine, Institute of Human Genetics, Technical University of Munich, Munich, Germany.
Insights
Genetic variants in TRPM7 are identified as a novel cause of pediatric acute liver failure (PALF). This discovery aids in diagnosing unexplained PALF cases and informs clinical management strategies.
Area of Science:
- Genetics
- Pediatrics
- Hepatology
Background:
- Pediatric acute liver failure (PALF) is a rare, life-threatening condition with unknown etiology in up to 50% of cases.
- Undiagnosed PALF complicates clinical management and liver transplantation decisions.
- Whole-exome sequencing has identified genetic causes in previously unexplained PALF cases.
Purpose of the Study:
- To investigate novel genetic causes of unexplained pediatric acute liver failure (PALF).
- To analyze whole-exome sequencing and proteomic data in unsolved PALF patients.
- To identify potential new disease genes associated with PALF.
Main Methods:
- Whole-exome sequencing data analysis in 5 unsolved PALF patients.
- Proteomic analyses of patient fibroblasts.
- Comparison of TRPM7 variant frequencies between PALF and pediatric control cohorts.
Main Results:
- Rare biallelic variants in TRPM7 (transient receptor potential cation channel subfamily M member 7) were identified in PALF patients.
- TRPM7 is established as a novel disease gene for PALF.
- Reduced TRPM7 protein levels and impaired function were observed in patient fibroblasts, with one case showing disturbed Mg2+ homeostasis.
Conclusions:
- TRPM7 variants expand the genetic spectrum of recurrent PALF.
- TRPM7 should be considered in the genetic workup of children with unexplained liver failure.
- This finding has implications for diagnosing and managing PALF.
Background:
Pediatric acute liver failure (PALF) is a rare and life-threatening condition. In up to 50% of PALF cases, the underlying etiology remains unknown during routine clinical testing. This lack of knowledge complicates clinical management and liver transplantation decisions. Recently, whole-exome sequencing has identified genetic disorders in a large number of cases without specific laboratory biomarkers or metabolic fingerprints.
Methods:
We describe how further analysis of whole-exome sequencing data combined with proteomic analyses in 5 previously unsolved PALF patients, where no pathogenic variants in genes previously associated with acute liver failure were identified, revealed rare biallelic variants in transient receptor potential cation channel subfamily M member 7 (TRPM7).
Results:
We establishe TRPM7 as a novel disease gene for PALF. Yet, the cation channel kinase TRPM7 has not been associated with any Mendelian disorder. No homozygous loss-of-function variants were found in in-house exomes or publicly available databases. Rare biallelic TRPM7-variants were significantly enriched in the PALF cohort compared with a pediatric control cohort. Viral infections preceded the majority of PALF episodes. Recurrent PALF episodes characterized the disease course with rapid progression, leading to early death in 3 cases. Proteomic analyses of patient fibroblasts unveiled significantly reduced TRPM7 protein levels, indicative of functional impairment. Severely reduced Mg2+ levels in one individual with a mutation in the channel domain suggests a potential interaction between disturbed Mg2+ homeostasis and PALF. The consistent presence of mutations in the TRPM7 protein-kinase-domain across all patients suggests its specific relevance in PALF.
Conclusions:
Our data extend the genetic spectrum of recurrent PALF and prompt consideration of TRPM7 in children with unexplained liver failure.
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