pipette
ESEspañol

Mechanism-selective deep mutational scanning distinguishes ERCC2 disease phenotypes

H. Cubuk, V. Aslanzadeh, Y. Shang, M. Plech, A. Pathak, G. Kudla, J. A. Marsh

PreprintReal-world use

In the authors' words

Pathogenic ERCC2 variants cause xeroderma pigmentosum (XP), trichothiodystrophy (TTD) or both, yet variant effect scores are usually interpreted only as measures of pathogenicity rather than of which disease mechanism is disrupted. XPD, the ERCC2-encoded TFIIH subunit, functions in both nucleotide excision repair and transcription. Using yeast complementation deep mutational scanning, we measured the effects of nearly all XPD amino acid substitutions. The assay was mechanism-selective: it preferentially reported transcription-associated function, with pronounced intolerance at the p44 interface, whereas many substitutions affecting DNA binding and helicase activity retained near-wild-type fitness. Accordingly, TTD variants had much lower fitness than XP variants. Computational predictors discriminated pathogenic from benign variants similarly across phenotypes, but the DMS distinguished XP from TTD variants better than all 73 predictors tested. Phenotype-specific ACMG/AMP calibration provided evidence in both directions for TTD but mainly pathogenic evidence for XP. Thus, the selectivity of functional assays, often viewed as a limitation, can reveal disease mechanisms and support phenotype-aware variant interpretation.

Main resultLimitation the authors admit

Appeared: Monday, September 28. bioRxiv. Preprint, not yet peer-reviewed.

DOI: 10.64898/2026.09.24.754105