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Elucidation of MRAS-mediated Noonan syndrome with cardiac hypertrophy
Erin M. Higgins, J. Martijn Bos, Heather Mason-Suares, David J. Tester, Jaeger P. Ackerman, Calum A. MacRae, Katia Sol-Church, Karen W. Gripp, Raul Urrutia, Michael J. Ackerman
Erin M. Higgins, J. Martijn Bos, Heather Mason-Suares, David J. Tester, Jaeger P. Ackerman, Calum A. MacRae, Katia Sol-Church, Karen W. Gripp, Raul Urrutia, Michael J. Ackerman
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Research Article Cardiology Genetics

Elucidation of MRAS-mediated Noonan syndrome with cardiac hypertrophy

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Abstract

Noonan syndrome (NS; MIM 163950) is an autosomal dominant disorder and a member of a family of developmental disorders termed “RASopathies,” which are caused mainly by gain-of-function mutations in genes encoding RAS/MAPK signaling pathway proteins. Whole exome sequencing (WES) and trio-based genomic triangulation of a 15-year-old female with a clinical diagnosis of NS and concomitant cardiac hypertrophy and her unaffected parents identified a de novo variant in MRAS-encoded RAS-related protein 3 as the cause of her disease. Mutation analysis using in silico mutation prediction tools and molecular dynamics simulations predicted the identified variant, p.Gly23Val-MRAS, to be damaging to normal protein function and adversely affect effector interaction regions and the GTP-binding site. Subsequent ectopic expression experiments revealed a 40-fold increase in MRAS activation for p.Gly23Val-MRAS compared with WT-MRAS. Additional biochemical assays demonstrated enhanced activation of both RAS/MAPK pathway signaling and downstream gene expression in cells expressing p.Gly23Val-MRAS. Mutational analysis of MRAS in a cohort of 109 unrelated patients with phenotype-positive/genotype-negative NS and cardiac hypertrophy yielded another patient with a sporadic de novo MRAS variant (p.Thr68Ile, c.203C>T). Herein, we describe the discovery of mutations in MRAS in patients with NS and cardiac hypertrophy, establishing MRAS as the newest NS with cardiac hypertrophy-susceptibility gene.

Authors

Erin M. Higgins, J. Martijn Bos, Heather Mason-Suares, David J. Tester, Jaeger P. Ackerman, Calum A. MacRae, Katia Sol-Church, Karen W. Gripp, Raul Urrutia, Michael J. Ackerman

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Figure 7

Serum response element reporter assay.

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Serum response element reporter assay.
Full-length, hemaglutinin-tagged ...
Full-length, hemaglutinin-tagged WT-MRAS or p.Gly23Val-MRAS was coexpressed in MEF cells along with the serum response element reporter plasmid. Serum-starved cells were stimulated with EGF (100 ng/ml) for the indicated time intervals and collected in 1X passive lysis buffer (PLB). The luciferase activity was measured and normalized to protein concentration, as measured by bicinchoninic acid assay. Luciferase activity was calculated relative to the empty vector construct from 4 independent experiments. While there was a significant difference between cells expressing WT-MRAS compared with cells transfected with an empty vector only at the 2-hour time point (P < 0.01), luciferase expression was significantly higher (P < 0.01) at all but the 0-hour time point in cells transfected with p.Gly23Val-MRAS. Data are presented as mean ± SEM. n = 8 per group. *P < 0.01 by 2-way ANOVA with Tukey’s multiple comparison test.

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