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A novel de novo heterozygous DYRK1A mutation causes complete loss of DYRK1A function and developmental delay. | LitMetric

A novel de novo heterozygous DYRK1A mutation causes complete loss of DYRK1A function and developmental delay.

Sci Rep

Division of Medical Genetics and Metabolism, Department of Pediatrics, Pusan National University Children's Hospital, Pusan National University School of Medicine, 20 Geumo-ro, Mulgeum-eup, Yangsan-si, Gyeongnam, 50612, Republic of Korea.

Published: June 2020

AI Article Synopsis

  • DYRK1A is a crucial gene for human development, and its haploinsufficiency can cause a recognizable syndrome with varying symptoms, including facial features and developmental delays.
  • A patient with DYRK1A haploinsufficiency syndrome was identified with specific mutations leading to a truncated protein that is unstable and inactive.
  • Experiments in cell and fruit fly models demonstrated that the mutated DYRK1A protein has minimal effects on normal functions, supporting the idea that its loss-of-function contributes to the patient's developmental issues.

Article Abstract

Dual-specificity tyrosine phosphorylation-regulated kinase 1 A (DYRK1A) is essential for human development, and DYRK1A haploinsufficiency is associated with a recognizable developmental syndrome and variable clinical features. Here, we present a patient with DYRK1A haploinsufficiency syndrome, including facial dysmorphism, delayed motor development, cardiovascular system defects, and brain atrophy. Exome sequencing identified a novel de novo heterozygous mutation of the human DYRK1A gene (c.1185dup), which generated a translational termination codon and resulted in a C-terminally truncated protein (DYRK1A-E396ter). To study the molecular effect of this truncation, we generated mammalian cell and Drosophila models that recapitulated the DYRK1A protein truncation. Analysis of the structure and deformation energy of the mutant protein predicted a reduction in protein stability. Experimentally, the mutant protein was efficiently degraded by the ubiquitin-dependent proteasome pathway and was barely detectable in mammalian cells. More importantly, the mutant kinase was intrinsically inactive and had little negative impact on the wild-type protein. Similarly, the mutant protein had a minimal effect on Drosophila phenotypes, confirming its loss-of-function in vivo. Together, our results suggest that the novel heterozygous mutation of DYRK1A resulted in loss-of-function of the kinase activity of DYRK1A and may contribute to the developmental delay observed in the patient.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC7299959PMC
http://dx.doi.org/10.1038/s41598-020-66750-yDOI Listing

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