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Published on: September 1, 2015
PKHD1 mutations in autosomal recessive polycystic kidney disease (ARPKD)
Carsten Bergmann1, Jan Senderek, Fabian Küpper
1Department of Human Genetics, Aachen University, Aachen, Germany. cbergmann@ukaachen.de
Insights
Autosomal recessive polycystic kidney disease (ARPKD) is a genetic disorder caused by PKHD1 gene mutations. Mutation type, not location, correlates with disease severity and patient survival.
Area of Science:
- Genetics
- Pediatric Nephrology
- Hepatology
Background:
- Autosomal recessive polycystic kidney disease (ARPKD) is a significant genetic disorder causing childhood kidney and liver disease.
- The disease exhibits a wide clinical variability, with mortality rates ranging from 30-50% in the neonatal period to survival into adulthood.
- ARPKD is linked to mutations in the PKHD1 gene, which encodes the fibrocystin/polyductin protein.
Purpose of the Study:
- To compile and review known PKHD1 mutations and polymorphisms.
- To discuss potential genotype-phenotype correlations in ARPKD.
- To examine the clinical implications of PKHD1 mutations.
Main Methods:
- Compilation of all identified PKHD1 mutations and sequence variants from literature and databases.
- Analysis of mutation distribution throughout the PKHD1 gene.
- Correlation of mutation types (truncating vs. missense) with clinical phenotypes and survival outcomes.
Main Results:
- PKHD1 mutations are scattered across the gene, with most being unique to individual families.
- Genotype-phenotype correlations are primarily based on mutation type rather than specific mutation sites.
- Patients with two truncating mutations typically experience severe perinatal or neonatal demise.
- Survival beyond the neonatal period is associated with the presence of at least one missense mutation, though some missense mutations can also be severe.
Conclusions:
- The type of PKHD1 mutation is a key determinant of ARPKD severity and patient prognosis.
- Understanding these genotype-phenotype correlations aids in clinical management and genetic counseling.
- An online database is maintained for ongoing collection and dissemination of PKHD1 mutation data.
Abstract:
Autosomal recessive polycystic kidney disease (ARPKD) is an important cause of childhood renal- and liver-related morbidity and mortality. The clinical spectrum is widely variable. About 30 to 50% of affected individuals die in the neonatal period, while others survive into adulthood. ARPKD is caused by mutations in the PKHD1 (polycystic kidney and hepatic disease 1) gene on chromosome 6p12, which is among the largest human genes, with a minimum of 86 exons assembled into a variety of alternatively spliced transcripts. The longest continuous open reading frame is predicted to yield a 4,074-aa (447-kDa) multidomain integral membrane protein (fibrocystin/polyductin) of unknown function. This update compiles all known PKHD1 mutations and polymorphisms/sequence variants. Mutations were found to be scattered throughout the gene without evidence of clustering at specific sites. Most PKHD1 mutations are unique to single families ("private mutations") hampering genotype-phenotype correlations. Correlations have been drawn for the type of mutation rather than for the site of individual mutations. All patients carrying two truncating mutations displayed a severe phenotype with perinatal or neonatal demise, while patients surviving the neonatal period bear at least one missense mutation. However, some missense changes are obviously as devastating as truncating mutations. The present article intends 1) to provide an overview of PKHD1 mutations and polymorphisms/sequence variants identified so far, 2) to discuss potential genotype-phenotype correlations, and 3) to review them in the context of their clinical implications. A constantly updated list of mutations is available online (www.humgen.rwth-aachen.de) and investigators are invited to submit their novel data to this PKHD1 mutation database.
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