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Deleterious ZNRF3 germline variants cause neurodevelopmental disorders with mirror brain phenotypes via
Paranchai Boonsawat1, Reza Asadollahi2, Dunja Niedrist1
1Institute of Medical Genetics, University of Zurich, Zurich, Switzerland.
Abstract:
Zinc and RING finger 3 (ZNRF3) is a negative-feedback regulator of Wnt/β-catenin signaling, which plays an important role in human brain development. Although somatically frequently mutated in cancer, germline variants in ZNRF3 have not been established as causative for neurodevelopmental disorders (NDDs). We identified 12 individuals with ZNRF3 variants and various phenotypes via GeneMatcher/Decipher and evaluated genotype-phenotype correlation. We performed structural modeling and representative deleterious and control variants were assessed using in vitro transcriptional reporter assays with and without Wnt-ligand Wnt3a and/or Wnt-potentiator R-spondin (RSPO). Eight individuals harbored de novo missense variants and presented with NDD. We found missense variants associated with macrocephalic NDD to cluster in the RING ligase domain. Structural modeling predicted disruption of the ubiquitin ligase function likely compromising Wnt receptor turnover. Accordingly, the functional assays showed enhanced Wnt/β-catenin signaling for these variants in a dominant negative manner. Contrarily, an individual with microcephalic NDD harbored a missense variant in the RSPO-binding domain predicted to disrupt binding affinity to RSPO and showed attenuated Wnt/β-catenin signaling in the same assays. Additionally, four individuals harbored de novo truncating or de novo or inherited large in-frame deletion variants with non-NDD phenotypes, including heart, adrenal, or nephrotic problems. In contrast to NDD-associated missense variants, the effects on Wnt/β-catenin signaling were comparable between the truncating variant and the empty vector and between benign variants and the wild type. In summary, we provide evidence for mirror brain size phenotypes caused by distinct pathomechanisms in Wnt/β-catenin signaling through protein domain-specific deleterious ZNRF3 germline missense variants.
Insights
Germline ZNRF3 variants cause neurodevelopmental disorders (NDDs) through distinct Wnt/β-catenin signaling disruptions. Missense variants lead to macrocephaly or microcephaly, while other variants cause organ issues.
Area of Science:
- Genetics
- Developmental Biology
- Molecular Biology
Background:
- Zinc and RING finger 3 (ZNRF3) regulates Wnt/β-catenin signaling, crucial for brain development.
- Germline ZNRF3 variants are not previously linked to neurodevelopmental disorders (NDDs).
Purpose of the Study:
- To investigate the role of germline ZNRF3 variants in NDDs and other phenotypes.
- To correlate ZNRF3 genotypes with observed phenotypes and understand underlying pathomechanisms.
Main Methods:
- Identified individuals with ZNRF3 variants using GeneMatcher/Decipher.
- Performed structural modeling and in vitro transcriptional reporter assays.
- Assessed variant effects on Wnt/β-catenin signaling with Wnt3a and/or RSPO.
Main Results:
- Eight individuals with de novo missense ZNRF3 variants presented with NDD, with macrocephaly linked to the RING ligase domain.
- One individual with a microcephalic NDD had a variant in the RSPO-binding domain.
- Four individuals with truncating or deletion variants showed non-NDD phenotypes (heart, adrenal, nephrotic issues).
- Missense variants in the RING ligase domain enhanced Wnt/β-catenin signaling dominantly, while RSPO-binding domain variants attenuated it.
- Truncating/deletion variants had minimal impact on Wnt/β-catenin signaling compared to controls.
Conclusions:
- Germline ZNRF3 variants can cause NDDs with mirror brain size phenotypes (macrocephaly/microcephaly) via distinct Wnt/β-catenin signaling dysregulation.
- Protein domain-specific ZNRF3 variants lead to different pathomechanisms and clinical outcomes.
- ZNRF3 germline variants are implicated in both NDDs and other organ-specific disorders.
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