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Updated: Feb 10, 2026

In Vivo Functional Study of Disease-associated Rare Human Variants Using Drosophila
Published on: August 20, 2019
Functional Characterization of Novel ATP7B Variants for Diagnosis of Wilson Disease
Sarah Guttmann1, Friedrich Bernick1, Magdalena Naorniakowska2
1Medizinische Klinik B für Gastroenterologie und Hepatologie, Universitätsklinikum Münster, Münster, Germany.
Insights
Diagnosing Wilson disease (WD) in children is challenging. Functional analysis of novel ATP7B mutations aids diagnosis, but subtle protein impairments may limit its utility.
Area of Science:
- Genetics
- Molecular Biology
- Pediatric Medicine
Background:
- Wilson disease (WD) diagnosis in children is challenging, especially without liver issues.
- ATP7B gene mutations are key in diagnosing mild pediatric WD cases.
Purpose of the Study:
- To evaluate ATP7B gene products from novel mutations to aid WD diagnosis in pediatric patients with subtle symptoms.
- To investigate the functional impact of newly identified ATP7B mutations.
Main Methods:
- Clinical and biochemical data collection, alongside ATP7B genetic analysis.
- Molecular analysis of ATP7B gene products in a cell model for novel mutations.
- Transgenic expression of ATP7B variants and functional characterization.
Main Results:
- Mutant ATP7B proteins (p.L168P, p.S1423N) showed reduced expression despite normal mRNA.
- Transgenic cells with mutants exhibited reduced intracellular copper accumulation and impaired protein trafficking.
- Cell viability was not decreased upon copper exposure compared to wild type.
Conclusions:
- Functional characterization of novel ATP7B mutants can support WD diagnosis in pediatric cases.
- Mild functional deficits in ATP7B variants might reduce the diagnostic value of this approach.
Abstract:
Background: Diagnosis of rare Wilson disease (WD) in pediatric patients is difficult, in particular when hepatic manifestation is absent. Genetic analysis of ATP7B represents the single major determinant of the diagnostic scoring system in WD children having mild symptoms. Objectives: To assess the impact of molecularly expressed ATP7B gene products in order to assist diagnosis of Wilson disease in pediatric patients having a novel mutation and subtle neuropsychiatric disease. Methods: The medical history, clinical presentation, biochemical parameters, and the genetic analysis of ATP7B were determined. Due to ambiguous clinical and biochemical findings and identification of a novel compound ATP7B mutation with unknown disease-causing status, a molecular analysis of the ATP7B gene products in a previously well characterized cell model was performed. Results: The ATP7B variants were transgenically expressed and the respective gene function molecularly characterized. Despite normal mRNA expression, low ATP7B protein expression of the mutants p.L168P and p.S1423N was observed (34.3 ± 8% and 66.0 ± 8%, respectively). Copper exposure did not result in decreased viability of transgenic cells as compared to wild type. Intracellular copper accumulation was reduced (≤47.9 ± 8%) and intracellular protein trafficking was impaired. Conclusion: Our report suggests that functional characterization of novel ATP7B mutants can assist diagnosis; however mild functional impairments of ATP7B variants may hamper the value of such approaches.
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