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Related Experiment Video

Updated: Aug 12, 2025

Screening for Functional Non-coding Genetic Variants Using Electrophoretic Mobility Shift Assay EMSA and DNA-affinity Precipitation Assay DAPA
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Predicting the functional effect of compound heterozygous genotypes from large scale variant effect maps.

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    Biorxiv : the Preprint Server for Biology
    |January 30, 2023
    PubMed
    Summary

    Large-scale yeast functional assays for PSAT1 variants accurately predict disease severity in serine biosynthesis defects. Early L-serine supplementation can prevent symptoms, making variant knowledge actionable for rare disease treatment.

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    Area of Science:

    • Biochemistry
    • Genetics
    • Rare Diseases

    Background:

    • Pathogenic variants in PHGDH, PSAT1, and PSPH cause serine biosynthesis defects, a group of rare autosomal recessive diseases.
    • These defects present a spectrum of phenotypes, from lethal Neu-Laxova syndrome to intellectual disability, with early L-serine supplementation showing therapeutic potential.

    Approach:

    • A yeast-based assay was developed to assess the functional impact of 1,914 SNV-accessible amino acid substitutions in human PSAT1.
    • The assay was scaled to evaluate individual variants in haploid yeast and pairwise allele combinations in diploid yeast, mimicking human genotypes.

    Key Points:

    • Assay results for individual variants align with clinical interpretations and structural data, supporting their use as functional evidence.
    • Diploid assays effectively differentiate patient genotypes from healthy carriers and correlate with disease severity.
    • A predictive model accurately estimates biallelic function from haploid measurements for millions of potential genotypes.

    Conclusions:

    • Large-scale functional assays in model systems offer a powerful approach for studying rare diseases like serine biosynthesis defects.
    • This work provides a scalable method for variant interpretation and predicting disease outcomes.